how many kilojoules of heat are produced by the combustion of 75.00g of carbon monoxide?

Answers

Answer 1

The combustion of 75.00g of carbon monoxide produces approximately 758.11 kJ of heat.

To calculate the heat produced by the combustion of 75.00g of carbon monoxide, we need to know the heat of combustion of carbon monoxide (∆H_comb) and apply the stoichiometry of the reaction.

Carbon monoxide (CO) combusts with oxygen (O₂) to form carbon dioxide (CO₂). The balanced chemical equation is:

2CO + O₂ → 2CO₂

The heat of combustion of carbon monoxide is approximately -282.96 kJ/mol.

First, determine the number of moles of carbon monoxide in 75.00g. The molar mass of CO is approximately 28.01g/mol.

moles of CO = mass / molar mass = 75.00g / 28.01g/mol = 2.678 mol

Since 2 moles of CO produce 2 moles of CO₂, the stoichiometry is a 1:1 ratio. Therefore, 2.678 mol of CO will produce 2.678 mol of CO₂.

Now, use the heat of combustion to find the heat produced:

heat produced = moles of CO × ∆H_comb = 2.678 mol × -282.96 kJ/mol = -758.11 kJ

Thus, the combustion of 75.00g of carbon monoxide produces approximately 758.11 kJ of heat.

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Related Questions

What is the maximum percent recovery for acetanilide when recrystallizing 5.0 g from water?

Answers

The maximum percent recovery for acetanilide can be calculated using the formula:

% recovery = (actual yield / theoretical yield) * 100%

The theoretical yield is the maximum amount of acetanilide that can be obtained from the recrystallization, assuming complete recovery of all the solute.

The actual yield is the amount of acetanilide that is actually obtained from the recrystallization.

Since the solubility of acetanilide in water increases with temperature, we can assume that all 5.0 g of acetanilide will dissolve when the water is heated to boiling.

When the solution cools, some of the acetanilide will recrystallize out of the solution, while the rest will remain in solution.

Assuming that all of the acetanilide in the solution recrystallizes out, the theoretical yield would be 5.0 g.

However, since some acetanilide may remain in solution or be lost during filtration, we cannot assume that the actual yield will be equal to the theoretical yield.

Therefore, the maximum percent recovery cannot be calculated without knowing the actual yield of acetanilide obtained from the recrystallization.

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Determine the number of unpaired electrons in the octahedral coordination complex [MnX6]4–, where X = any halide.

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There are five unpaired electrons in the [MnX6]4– octahedral coordination complex. In order to determine the number of unpaired electrons in the octahedral coordination complex [MnX6]4–, we need to first look at the electron configuration of the manganese ion (Mn).


To write the electron configuration of Mn2+, we need to remove two electrons from the neutral atom configuration, which is [Ar] 3d5 4s2. Removing the two electrons from the 4s subshell gives us the electron configuration [Ar] 3d5. In an octahedral coordination complex, there are six ligands (in this case, halide ions) surrounding the central metal ion (Mn2+). Each halide ion donates a pair of electrons to form a coordinate covalent bond with the Mn2+ ion. Therefore, there are a total of 12 electrons from the halide ions in the complex. In an octahedral complex, the d orbitals of the central metal ion split into two energy levels due to the presence of the surrounding ligands. The lower energy level (t2g) is occupied by electrons before the higher energy level (eg). In the case of Mn2+, the five 3d electrons occupy the t2g level, leaving three empty orbitals in the eg level.

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[Ru(NH3)6]3+ is an octahedral, d^5 low-spin complex, how many unpaired electrons does this complex have? a. 4 b. 3 c. 1 d. 5 e. 2

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The [Ru(NH3)6]3+ complex has d^5 electron configuration, meaning there are 5 d-electrons. the [Ru(NH3)6]3+ complex has 1 unpaired electrons, So the correct option is (C).

The [Ru(NH3)6]3+ complex has d^5 electron configuration, meaning there are 5 d-electrons. Since it is a low-spin complex, the electrons will first fill the lower energy level orbitals before pairing up. In this case, the 5 electrons will fill the dxy, dxz, dyz, dz^2, and dx^2-y^2 orbitals in a way that there are 4 paired electrons and only 1 unpaired electron.  To determine the number of unpaired electrons in the [Ru(NH3)6]3+ complex, we will consider its properties and electronic configuration.
Given information:
- Octahedral complex
- d^5 low-spin complex
In an octahedral complex, the d orbitals are split into two groups: the lower-energy t2g orbitals (dxy, dyz, and dxz) and the higher-energy eg orbitals (dz^2 and dx^2-y^2). Since [Ru(NH3)6]3+ is a low-spin complex, the electrons will fill the lower-energy t2g orbitals before moving to the eg orbitals.
A d^5 configuration means that there are 5 electrons in the d orbitals. Let's distribute these electrons according to the low-spin rule:
1. t2g orbitals: dxy, dyz, and dxz each receive 1 electron.
2. Since the complex is low-spin, the fourth electron will pair up in one of the t2g orbitals.
3. The last (fifth) electron will also pair up in another t2g orbital.
This results in all 5 electrons being paired up in the t2g orbitals. Therefore, the [Ru(NH3)6]3+ complex has 1 unpaired electrons, So the correct option is (C).

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The [Ru(NH3)6]3+ complex is an octahedral d^5 low-spin complex. To determine the number of unpaired electrons, follow these steps:

1. Identify the electron configuration of the metal ion (Ru3+).
2. Determine the d electron count for the complex.
3. Apply the low-spin configuration to the octahedral complex.
4. Count the unpaired electrons.

Step 1: Ru is in the 4d series, and its electron configuration is [Kr]4d^7 5s^1. Since the oxidation state is +3, remove 3 electrons, resulting in a configuration of [Kr]4d^5 for Ru3+.

Step 2: The complex is a d^5 complex, which means there are 5 d electrons.

Step 3: As a low-spin complex, the 5 d electrons will occupy the lower energy d orbitals first. In an octahedral complex, there are two lower-energy orbitals (dxy, dyz, and dxz) and two higher-energy orbitals (dz^2 and dx^2-y^2). The 5 electrons will fill the lower energy orbitals first with 2 electrons, and the remaining 3 electrons will fill the higher energy orbitals.

Step 4: With this low-spin configuration, there is only one unpaired electron in the higher-energy orbitals.

So, the correct answer is c. 1 unpaired electron.

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how many atoms of chlorine are present in 2.42 grams of boron trichloride, bcl3

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There are approximately [tex]3.74 * 10^{22}[/tex]atoms of chlorine present in 2.42 grams of boron trichloride ([tex]BCl_3[/tex]).

The atomic mass of B is 10.81 g/mol, while the atomic mass of Cl is 35.45 g/mol. Therefore, the molar mass of BCl3 is [tex]10.81 + (35.45 * 3) = 117.17 g/mol.[/tex]

We can do this by dividing the given mass by the molar mass:

[tex]2.42 g / 117.17 g/mol = 0.0207 mol[/tex]

Finally, we can use the balanced chemical equation for [tex]BCl_3[/tex] to determine that there are three atoms of Cl present in one molecule of [tex]BCl_3[/tex].

Therefore, the number of atoms of Cl in 0.0207 mol of [tex]BCl_3[/tex] is:

0.0207 mol x 3 atoms of Cl/molecule = 0.0621 mol of Cl

To convert this to the number of atoms, we multiply by Avogadro's number:

[tex]0.0621 mol * 6.022 * 10^{23} atoms/mol = 3.74 * 10^{22}\ atoms\ of\ Cl[/tex]

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the ratio kb /km is called the catalytic efficiency of an enzyme. calculate the catalytic efficiency of carbonic anhydrase by using the data in example 17f.2.

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The catalytic efficiency of carbonic anhydrase can be calculated by using the ratio of the rate constant for the enzyme-catalyzed reaction (kb) to the rate constant for the uncatalyzed reaction (km).

In Example 17F.2, the rate constant for the uncatalyzed reaction (km) was found to be 2.2 × 10^−3 s^−1, and the rate constant for the carbonic anhydrase-catalyzed reaction (kb) was found to be 3.3 × 10^6 M^−1 s^−1.

Therefore, the catalytic efficiency can be calculated by dividing kb by km, resulting in a value of approximately 1.5 × 10^9 M^−1 s^−1.

This high value for the catalytic efficiency of carbonic anhydrase demonstrates its ability to greatly accelerate the rate of the reaction it catalyzes. This is due to the enzyme's active site, which is specifically designed to bind and orient the substrate molecules in a way that maximizes their reactivity and allows for efficient conversion to the product.

The high catalytic efficiency of carbonic anhydrase is particularly important in biological systems, where the enzyme plays a key role in regulating pH and carbon dioxide levels in the body.

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Consider the catalytic reaction as a function of the initial partial pressures 2A 2B+C The rate of disappearance of species A was obtained in a differential reactor and is shown below. Po=Pco=1 atm Pre = 1 atm PBo= 1 atm -ΑΟ -10 مج -AD Pco=PBo=0 Po Pco PAD A B с (a) What species are on the surface? (6) What does Figure B tell you about the reversibility and what's adsorbed on the face? (c) Derive the rate law and suggest a rate-liming step consistent with the above figures. (d) How would you plot your data to linearize the initial rate data in Figure A? (e) Assuming pure A is fed, and the adsorption constants for A and Care KA = 0.5 atm- and Ke=0.25 atm- respectively, at what conversion are the number of sites with A adsorbed on the surface and C adsorbed on the surface equal?

Answers

Species A, B, and C are present on the surface, species A is adsorbed on the surface, The rate law for the given reaction can be written as; Rate = k[A]²[B], we can plot the rate of disappearance of A (d[A]/dt) against the initial concentration of A ([A]0), the conversion on the number of sites are; 0.333.

From the given data, species A, B, and C are present in the reaction mixture.

Figure B shows that the reaction is reversible because the rate of disappearance of A decreases as its concentration decreases. This indicates that the reaction is reaching equilibrium. The figure also suggests that species A is adsorbed on the surface because the rate of disappearance of A is affected by its initial partial pressure.

The rate law for the given reaction can be written as;

Rate = k[A]²[B]

The slowest step in the reaction mechanism that determines the overall rate of the reaction is the rate-limiting step. Based on the given data, it can be inferred that the adsorption of A on the surface is the rate-limiting step.

To linearize the initial rate data in Figure A, we can plot the rate of disappearance of A (d[A]/dt) against the initial concentration of A ([A]0). This will result in a straight line with a slope equal to the rate constant k.

At equilibrium, the number of sites with A adsorbed on surface and C adsorbed on surface will be equal. Therefore, we need to find the conversion at which the equilibrium constant for adsorption of A and C is equal.

Equilibrium constant for adsorption of A = KA = Pads[A]/[A]0

Equilibrium constant for adsorption of C = KC = Pads[C]/[C]0

At equilibrium, KA = KC

Pads[A]/[A]0 = Pads[C]/[C]0

Pads[A]/(1 - α) = Pads[C]/α

Where α is the degree of conversion of A.

Substituting the values, we get;

0.5/(1 - α) = 0.25/α

0.5α = (1 - α)0.25

α = 0.333

Therefore, the degree of conversion of A at which the number of sites with A adsorbed on the surface and C adsorbed on the surface are equal is 0.333.

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Isocitrate dehydrogenase is found only in the mitochondria, but malate dehydrogenase is found in both the cytosol and mitochondria. What is the role of cytosolic malate dehydrogenase? It is a point of electron entry into the mitochondrial respiratory chain. a It delivers the reducing equivalents from NADH through FAD to ubiquinone and thus into Complex III. It plays a key role in the transport of reducing equivalents across the inner mitochondrial membrane via the malate-aspartate shuttle. It plays a key role in the conversion of mitochondrial pyruvate to cytosolic oxaloacetate to fuel gluconeogenesis. It catalyzes the oxidation of malate to oxaloacetate, coupled to the reduction of NAD+ to NADH, in the last reaction of the citric acid cycle.

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The role of cytosolic malate dehydrogenase is to catalyze the conversion of malate to oxaloacetate, coupled with the reduction of NAD+ to NADH. This reaction is the last step in the citric acid cycle, which takes place in the mitochondria.

However, cytosolic malate dehydrogenase plays a key role in the transport of reducing equivalents across the inner mitochondrial membrane via the malate-aspartate shuttle. This shuttle involves the transport of cytosolic malate into the mitochondria and its conversion to oxaloacetate, which is then converted to aspartate and transported back to the cytosol. This allows for the transfer of reducing equivalents from the cytosol to the mitochondria, which is important for energy production. Additionally, cytosolic malate dehydrogenase plays a role in the conversion of mitochondrial pyruvate to cytosolic oxaloacetate, which fuels gluconeogenesis. In summary, while malate dehydrogenase is found in both the cytosol and mitochondria, its role is crucial in transporting reducing equivalents and in the conversion of pyruvate to oxaloacetate for gluconeogenesis.
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The design value for vl was 0.2 v in the nand gate in fig. 6.32(a). what is the actual value of vl?

Answers

The percent error in the student's measurement is 10% compared to the design value of 0.2 V.

To calculate the percent error of the student's measurement of Vl in a NAND gate, we can use the following formula:

percent error = |(actual value - expected value) / expected value| x 100%

Plugging in the given values, we get:

percent error = |(0.18 - 0.2) / 0.2| x 100%

percent error = |-0.02 / 0.2| x 100%

percent error = 10%

Therefore, the percent error in the student's measurement is 10% compared to the design value of 0.2 V. This indicates that the student's measurement is slightly lower than the expected value by 10%.

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--The complete Question is, In an experiment, a student measures the actual value of Vl in a NAND gate as 0.18 V. What is the percent error in the student's measurement compared to the design value of 0.2 V? --

click in the answer box to activate the palette. what is the hybridization of carbon in nco−?

Answers

The hybridization of carbon in NCO⁻ is sp.

In NCO⁻, the carbon atom is connected to three other atoms (two oxygen and one nitrogen). To form bonds with these three atoms, the carbon atom must hybridize its orbitals. The carbon atom has one 2s orbital and three 2p orbitals, which hybridize to form four sp orbitals.

The sp orbitals are arranged in a tetrahedral geometry around the carbon atom, with two sp orbitals forming sigma bonds with the two oxygen atoms and one sp orbital forming a sigma bond with the nitrogen atom. The fourth sp orbital contains a lone pair of electrons. Therefore, the hybridization of carbon in NCO⁻ is sp.

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which solution is a buffer? hcl(aq) and nacl(aq) nacl(aq) and naoh(aq) h2so4(aq) and h2so3(aq) hf(aq) and naf(aq)

Answers

The solution of HF(aq) and NaF(aq) is a buffer.

A buffer solution is a solution that resists changes in pH when small amounts of acid or base are added to it. It consists of a weak acid and its conjugate base or a weak base and its conjugate acid. The presence of both the weak acid and its conjugate base (or weak base and its conjugate acid) allows the buffer solution to maintain a relatively stable pH. Among the options provided, the solution of HF(aq) and NaF(aq) is a buffer.

HF is a weak acid, and NaF is the salt of its conjugate base. When these two substances are mixed together in water, they form a buffer system that can resist changes in pH. On the other hand, HCl(aq) and NaCl(aq), NaCl(aq) and NaOH(aq), and H2SO4(aq) and H2SO3(aq) are not buffer solutions because they do not contain a weak acid and its conjugate base (or weak base and its conjugate acid) in the appropriate ratios to maintain a stable pH. Therefore, the correct answer is option D: HF(aq) and NaF(aq) as it forms a buffer system.

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3


Calculate the amount of heat produced when 52. 4 g of methane, CH4,


burns in an excess of air, according to the following equation. CH4(g) +


202(g) — CO2(g) + 2H20(1) AH = -890. 2 kJ. A) Is the reaction endothermic


or exothermic? b) Is the energy of the reactants greater than or less than


the products? c) How much heat in kJ is produced in the reaction when


52. 4 g of methane is burned?

Answers

The given reaction is exothermic, meaning it releases heat. The energy of the reactants is greater than the products. To calculate the amount of heat produced when 52.4 g of methane is burned, we need to use the stoichiometry of the reaction and the molar mass of methane.

a) The reaction is exothermic because the enthalpy change (ΔH) is negative (-890.2 kJ), indicating that heat is released during the reaction.

b) The energy of the reactants is greater than the products because the enthalpy change is negative. In an exothermic reaction, the products have lower energy than the reactants.

c) To calculate the amount of heat produced, we need to use the stoichiometry of the reaction. From the balanced equation, we see that 1 mole of methane produces -890.2 kJ of heat. First, we convert the mass of methane to moles using its molar mass. The molar mass of methane (CH4) is 16.04 g/mol. Thus, 52.4 g of methane is equal to 52.4 g / 16.04 g/mol = 3.27 moles of methane. Finally, we multiply the moles of methane by the enthalpy change to find the amount of heat produced: 3.27 moles * -890.2 kJ/mol = -2909.154 kJ. Therefore, when 52.4 g of methane is burned, approximately 2909.154 kJ of heat is produced.

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What is the balanced reduction half-reaction for the unbalanced oxidation-reduction reaction? Na(s) + Cl2lo) - NaCl(s) 1. Cla) + 2 - 2 C1"(s) 2. Cl2(g) 2 + 2 C1-(s) 3. Na(s) + +-Nat(s) 4. Na(s) - Na'(s) + 2 O 1

Answers

The balanced equation shows that two sodium atoms react with one chlorine molecule to form two molecules of sodium chloride.

The balanced reduction half-reaction for the unbalanced oxidation-reduction reaction Na(s) + Cl2(g) → NaCl(s) can be found by identifying the species being reduced. In this case, it is the chlorine molecule (Cl2) that is being reduced to form chloride ions (Cl-). The reduction half-reaction for this process can be written as follows:
Cl2(g) + 2e- → 2Cl-(aq)
This equation represents the balanced reduction half-reaction for the given oxidation-reduction reaction. To balance the full reaction, we need to combine it with the oxidation half-reaction, which represents the oxidation of sodium atoms (Na) to form sodium ions (Na+). The oxidation half-reaction can be written as:
Na(s) → Na+(aq) + e-
By combining the two half-reactions, we get the balanced oxidation-reduction reaction:
2Na(s) + Cl2(g) → 2NaCl(s)
This reaction represents the balanced reduction half-reaction and oxidation half-reaction combined. The reduction half-reaction involves the gain of electrons by chlorine atoms, while the oxidation half-reaction involves the loss of electrons by sodium atoms. The balanced equation shows that two sodium atoms react with one chlorine molecule to form two molecules of sodium chloride.

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how many molecules of c7h8 are in 5.7 ml c7h8? the density of this compound is 1.23 g/ml. report your answer as the non-exponential value x 1023. for example ____x 1023

Answers

Answer:

The number of molecules of C₇H₈ in 5.7 mL is 0.4525 x 10²³ .To calculate the number of molecules of C₇H₈ in 5.7 mL, we first need to determine the mass of C₇H₈ in 5.7 mL using the density of the compound.

Explanation:

Mass of C₇H₈ in 5.7 mL = volume x density = 5.7 mL x 1.23 g/mL = 7.011 g

Next, we need to convert the mass of C₇H₈ to the number of molecules using the molecular weight of C₇H₈.

Molecular weight of C₇H₈ = (7 x atomic weight of carbon) + (8 x atomic weight of hydrogen)

= (7 x 12.01 g/mol) + (8 x 1.01 g/mol) = 92.14 g/mol

Number of molecules of C₇H₈ = (mass of C7H8 / molecular weight of C7H8) x Avogadro's number

= (7.011 g / 92.14 g/mol) x 6.022 x 10²³/mol

= 4.525 x 10²²

Therefore, the number of molecules of C₇H₈ in 5.7 mL is 0.4525 x 10²³.

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Can someone answer this question really quick

Part of a sedimentary rock erodes.

What can happen to this eroded particle?

Select all that apply.

Responses

A. The particle can no longer become a part of a sedimentary rock again.The particle can no longer become a part of a sedimentary rock again.

B. The particle can eventually become part of another sedimentary rock.The particle can eventually become part of another sedimentary rock.

C. The particle can eventually become part of a metamorphic rock.The particle can eventually become part of a metamorphic rock.

D. The particle can no longer be a part of any rock type.

Answers

Answer:

B. The particle can eventually become part of another sedimentary rock

C. The particle can eventually become part of a metamorphic rock

Explanation:

which compound should be coupled with 3-bromotoluene to synthesize this compound, using the suzuki coupling reaction?

Answers

Main Answer:A suitable compound that can be coupled with 3-bromotoluene could be an arylboronic acid or an arylboronic ester.  

Supporting Question and Answer:

What type of compound is typically used as the coupling partner in the Suzuki coupling reaction with 3-bromotoluene?

In the Suzuki coupling reaction, an organoboron compound is commonly used as the coupling partner. Examples of suitable coupling partners include arylboronic acids or arylboronic esters, which contain the necessary boron atom for the coupling reaction. These compounds allow for the formation of new carbon-carbon bonds during the synthesis process. The choice of the specific coupling partner depends on factors such as the desired final product and the availability of reagents.

Body of the Solution:To synthesize a compound using the Suzuki coupling reaction with 3-bromotoluene, we would need to identify a suitable coupling partner. In the Suzuki coupling reaction, an organoboron compound is typically used as the coupling partner.

In this case, a suitable compound that can be coupled with 3-bromotoluene could be an arylboronic acid or an arylboronic ester. These compounds contain the boron atom necessary for the coupling reaction.

For example, one possible coupling partner could be phenylboronic acid (C₆H₅B(OH)₂) or phenylboronic ester (C₆H₅B(OR)₂), where R represents an alkyl or aryl group.

Overall, the specific choice of the coupling partner in the Suzuki coupling reaction with 3-bromotoluene would depend on factors such as the desired final product and the availability of reagents.

Final Answer:Therefore, a suitable compound that can be coupled with 3-bromotoluene could be an arylboronic acid or an arylboronic ester.  

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A suitable compound that can be coupled with 3-bromotoluene could be an arylboronic acid or an arylboronic ester.  

What type of compound is typically used as the coupling partner in the Suzuki coupling reaction with 3-bromotoluene?

In the Suzuki coupling reaction, an organoboron compound is commonly used as the coupling partner. Examples of suitable coupling partners include arylboronic acids or arylboronic esters, which contain the necessary boron atom for the coupling reaction.

These compounds allow for the formation of new carbon-carbon bonds during the synthesis process. The choice of the specific coupling partner depends on factors such as the desired final product and the availability of reagents.

To synthesize a compound using the Suzuki coupling reaction with 3-bromotoluene, we would need to identify a suitable coupling partner. In the Suzuki coupling reaction, an organoboron compound is typically used as the coupling partner.

In this case, a suitable compound that can be coupled with 3-bromotoluene could be an arylboronic acid or an arylboronic ester. These compounds contain the boron atom necessary for the coupling reaction.

For example, one possible coupling partner could be phenylboronic acid (C₆H₅B(OH)₂) or phenylboronic ester (C₆H₅B(OR)₂), where R represents an alkyl or aryl group.

Overall, the specific choice of the coupling partner in the Suzuki coupling reaction with 3-bromotoluene would depend on factors such as the desired final product and the availability of reagents.

Therefore, a suitable compound that can be coupled with 3-bromotoluene could be an arylboronic acid or an arylboronic ester.  

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arrange the elements according to their electronegativity. si sr p rb

Answers

The correct arrangement of the elements according to their electronegativity is Sr, Si, P, Rb.

Arrange the elements Sr, Si, P, and Rb in order of increasing electronegativity?

To arrange the elements according to their electronegativity, we can refer to the periodic table.

Electronegativity generally increases from left to right across a period and decreases from top to bottom within a group.

Let's analyze each element:

Si (silicon): Silicon is located in Group 14 of the periodic table. It is less electronegative than the other elements listed.

Sr (strontium): Strontium is located in Group 2 of the periodic table. It is less electronegative than both phosphorus (P) and rubidium (Rb).

P (phosphorus): Phosphorus is located in Group 15 of the periodic table. It is more electronegative than silicon (Si) and strontium (Sr).

Rb (rubidium): Rubidium is located in Group 1 of the periodic table. It is the most electronegative among the elements listed.

Based on the electronegativity trend, the elements can be arranged as follows from least to most electronegative:

Sr < Si < P < Rb

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A solution is prepared at 25°C that is initially 0.098M in acetic acid HCH3CO2 , a weak acid with =Ka×1.810−5 , and 0.30M in potassium acetate KCH3CO2 . Calculate the pH of the solution. Round your answer to 2 decimal places.

Answers

The pH of the solution is approximately 5.98 (rounded to 2 decimal places).To calculate the pH of the solution, we need to use the equilibrium expression for the dissociation of acetic acid: HCH3CO2 + H2O ⇌ H3O+ + CH3CO2- .The equilibrium constant, Ka, is given as 1.81 × 10^-5. We can use the Ka value to calculate the concentration of H3O+ ions in the solution at equilibrium.

First, we need to calculate the initial concentration of HCH3CO2 and CH3CO2- ions using the given molarity and stoichiometry:
[HCH3CO2] = 0.098 M
[KCH3CO2] = 0.30 M
Ka = [H3O+][CH3CO2-] / [HCH3CO2]
[HCH3CO2] = 0.098 M
[CH3CO2-] = 0.30 M
Ka = 1.81 × 10^-5
[H3O+] = sqrt(Ka × [HCH3CO2] / [CH3CO2-]) = sqrt(1.81 × 10^-5 × 0.098 / 0.30) = 0.0082 M
pH = -log[H3O+] = -log(0.0082) = 2.09
pH = pKa + log([A-]/[HA])
pH = 4.74 + log(0.30/0.098)
pH ≈ 4.74 + 1.24
pH ≈ 5.98

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list all types of bonding present in the compound caco3 i. ionic bond ii. polar covalent bond iii. nonpolar covalent bond

Answers

the types of bonding present in CaCO₃ are ionic bond, polar covalent bond, and nonpolar covalent bond.

What types of bonding are present in the compound CaCO3?

In the compound CaCO₃ (calcium carbonate), the types of bonding present are:

Ionic bond: The bond between calcium (Ca) and carbonate (CO₃) ions is primarily ionic. Calcium (Ca) donates two electrons to form a positive Ca₂+ ion, while carbonate (CO₃) accepts two electrons to form a negative CO₃₂- ion.

The electrostatic attraction between these oppositely charged ions forms an ionic bond.

Polar covalent bond: Within the carbonate ion (CO₃), there are covalent bonds between the carbon atom and the three oxygen atoms.

The oxygen atoms are more electronegative than carbon, resulting in a partial negative charge on the oxygen atoms and a partial positive charge on the carbon atom.

These unevenly shared electrons in the covalent bonds create a polar covalent bond within the carbonate ion.

Nonpolar covalent bond: The bond between the oxygen atoms in the carbonate ion (CO₃) is nonpolar covalent.

Since oxygen atoms have similar electronegativities, the electrons in the oxygen-oxygen bonds are shared equally, resulting in a nonpolar covalent bond.

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a. balance the following redox reaction under basic conditions: (show all work for full credit) cr(oh)3(aq) clo− → cro4 2− (aq) cl− (aq)

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Balance redox reaction: 2[tex]Cr(OH)_3[/tex] + 3ClO− → 2CrO4²− + 3Cl− + 6[tex]H_2O[/tex]


To balance the given redox reaction under basic conditions, first identify the oxidation and reduction half-reactions:
Oxidation: [tex]Cr(OH)_3[/tex] → CrO4²− + [tex]3H_2O[/tex] + 6e⁻
Reduction: 2ClO− + 2e⁻ → Cl− + [tex]H_2O[/tex]
Next, multiply the half-reactions by appropriate factors to balance the electrons:
Oxidation: 2[tex]Cr(OH)_3[/tex] → 2CrO4²− + [tex]6H_2O[/tex] + 12e⁻
Reduction: 6ClO− + 6e⁻ → 3Cl− + [tex]3H_2O[/tex]
Now, add the balanced half-reactions:
2[tex]Cr(OH)_3[/tex] + 6ClO− → 2CrO4²− + 3Cl− + 6[tex]H_2O[/tex]
This is the balanced redox reaction under basic conditions.

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Balanced redox reaction under basic conditions:

[tex]Cr(OH)3(aq) + 3 ClO-(aq) → CrO42-(aq) + 3 Cl-(aq) + 3 H2O(l)[/tex]

To balance a redox reaction, we need to first identify the oxidation states of each element and then balance the number of electrons transferred.

In this case, we can see that chromium is being oxidized from +3 to +6, while chlorine is being reduced from +1 to -1. We can also see that there are three oxygen atoms on the product side, which we can balance by adding three water molecules to the reactant side.

Next, we balance the charge by adding hydroxide ions (OH-) to the reactant side equal to the total charge on the product side. In this case, we need to add 6 OH- ions to balance the charge.

After balancing the atoms, we can balance the electrons by multiplying the oxidation half-reaction by 3 and the reduction half-reaction by 1.

Finally, we can cancel out any common species on both sides and write the balanced equation.

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Barite dissolves based on the following reaction: BaSO4 ↔Ba2+ + SO42- calculate the solubility product (ksp) of barite at 25˚c and 1 atm

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The solubility product (Ksp) of barite at 25˚C and 1 atm is approximately 4.84 × 10^-10.

The solubility product (Ksp) of barite at 25˚C and 1 atm can be calculated using the following expression:

Ksp = [Ba2+][SO42-]

To determine the values of [Ba2+] and [SO42-], we need to know the solubility of barite in water.

At 25˚C, the solubility of barite is approximately 2.2 × 10^-5 mol/L.

Since barite dissolves based on the following reaction:

BaSO4  →  Ba2+ + SO42-

The concentration of Ba2+ and SO42- can be calculated using the stoichiometry of the reaction.

For every 1 mole of BaSO4 that dissolves, 1 mole of Ba2+ and 1 mole of SO42- are produced.

Therefore, [Ba2+] = [SO42-] = x (assuming that the solubility of barite is x)

Substituting these values into the expression for Ksp:

Ksp = [Ba2+][SO42-]

      = x^2

Thus, the solubility product (Ksp) of barite at 25˚C and 1 atm is approximately 4.84 × 10^-10.

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The first-order rearrangement of ch3nc is measured to have a rate constant of 3. 61 x 10^-15 s-1 at 298 k and a rate constant of 8. 66 × 10^-7 s^-1 at 425 k. determine the activation energy for this reaction.

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The activation energy for the first-order rearrangement of CH3NC is 1.6 x 10^5 J/mol, which can be determined using the Arrhenius equation. The equation relates the rate constant (k) to the temperature (T) and the activation energy (Ea).

The Arrhenius equation is given by: k = A * e^(-Ea/RT)

Where:

k = rate constant

A = pre-exponential factor

Ea = activation energy

R = gas constant

T = temperature

To determine the activation energy, we need to find the ratio of rate constants at two different temperatures and solve for Ea.

Taking the natural logarithm of both sides of the equation, we have:

ln(k2/k1) = -(Ea/R) * (1/T2 - 1/T1)

Given:

k1 = 3.61 x 10^-15 s^-1 at 298 K

k2 = 8.66 x 10^-7 s^-1 at 425 K

Plugging these values into the equation and solving for Ea:

ln(8.66 x 10^-7/3.61 x 10^-15) = -(Ea/R) * (1/425 - 1/298)

Ea = -ln(8.66 x 10^-7/3.61 x 10^-15) / (1/425 - 1/298) * R

Ea = -ln(2.4 x 10^8) / (0.00354) * 8.314

Ea = 1.6 x 10^5 J/mol

To determine the activation energy for the first-order rearrangement of CH3NC, we use the Arrhenius equation. This equation relates the rate constant (k) to the temperature (T) and the activation energy (Ea). By taking the natural logarithm of the ratio of rate constants at two different temperatures, we can solve for Ea. Given the rate constants at 298 K and 425 K, we plug these values into the equation and rearrange it to solve for Ea. Using the value of the gas constant R, we can calculate the activation energy.

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) if the overall cell potential for a lfp battery is 3.60 v, which reduction half reaction (1 or 2) describes the chemistry that occurs at the cathode during discharge?

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Reduction half reaction 1 occurs at the cathode during discharge in an LFP battery with an overall cell potential of 3.60 V.

In an LFP (Lithium Iron Phosphate) battery, the cathode undergoes reduction, which involves the gain of electrons. The overall cell potential is determined by the difference between the standard reduction potentials of the anode and the cathode.

In this case, the overall cell potential is 3.60 V, indicating that the reduction half reaction at the cathode has a higher standard reduction potential than the oxidation half reaction at the anode.

From the half reactions for LFP, reduction half reaction 1 has a higher standard reduction potential than reduction half reaction 2. Therefore, reduction half reaction 1 must occur at the cathode during discharge in this LFP battery. This reaction involves the reduction of LiFePO4 to FePO4 and the release of lithium ions and electrons.

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A substance is always soluble in water and its solubility is not affected by temperature. Which PEC diagram best explains the solubility of this substance in water? M = Mixed state, UM - Unmixed state

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The solubility of a substance in water is not affected by temperature, regardless of whether it is in a mixed or unmixed state.

The given statement suggests that the solubility of a substance remains constant in water regardless of temperature changes. This indicates that the substance is likely non-polar or has weak intermolecular forces, as these factors typically do not show a significant dependence on temperature.

The best PEC (Phase Equilibrium Curve) diagram to illustrate this solubility behavior would be a horizontal line, representing a constant solubility level regardless of temperature variations. In this diagram, both the mixed (M) and unmixed (UM) states would be at the same height along the y-axis, indicating that the substance readily dissolves in water and remains dissolved, irrespective of temperature changes.

This behavior is commonly observed in certain salts and polar compounds that form strong ionic or hydrogen bonds, resulting in a stable solubility profile in water regardless of temperature fluctuations.

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Write a Lewis structure that obeys the octet rule for each of the following ions. Assign formal charges to each atom. Draw the molecule by placing atoms on the grid and connecting them with bonds. Include all lone pairs of electrons. Show the formal charges of all atoms in the correct structure. 1) ClO3- 2) ClO4-

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A Lewis structure that obeys the octet rule is a diagram that represents the arrangement of valence electrons in a molecule or ion. The octet rule states that atoms tend to gain, lose, or share electrons in order to achieve a stable electron configuration with eight valence electrons.

[tex]ClO_3^-[/tex]:

To draw the Lewis structure for [tex]ClO_3^-[/tex], we first need to determine the total number of valence electrons in the molecule. Chlorine (Cl) has 7 valence electrons, while each oxygen (O) has 6 valence electrons, giving us a total of:

Cl: 7

O: 6 x 3 = 18

Total: 7 + 18 = 25 valence electrons

To satisfy the octet rule for each atom, we can form three double bonds between the chlorine and oxygen atoms. The Lewis structure for [tex]ClO_3^-[/tex]is:

    O

    ||

O === Cl === O

    ||

    O

We can determine the formal charges on each atom by subtracting the number of lone pair electrons and half the number of bonding electrons from the number of valence electrons for each atom. The formal charges for the Lewis structure of[tex]ClO_3^-[/tex] are:

Cl: 7 - 0.5(6) - 6 = 0

O (double-bonded): 6 - 0.5(4) - 6 = -1

O (single-bonded): 6 - 0.5(2) - 6 = +1

O (single-bonded): 6 - 0.5(2) - 6 = +1

[tex]ClO_4^-[/tex]:

To draw the Lewis structure for [tex]ClO_4^-[/tex], we first need to determine the total number of valence electrons in the molecule. Chlorine (Cl) has 7 valence electrons, while each oxygen (O) has 6 valence electrons, giving us a total of:

Cl: 7

O: 6 x 4 = 24

Total: 7 + 24 = 31 valence electrons

To satisfy the octet rule for each atom, we can form four double bonds between the chlorine and oxygen atoms. The Lewis structure for [tex]ClO_4^-[/tex]is:

     O

     ||

O === Cl === O

     ||

     O

     ||

     O

We can determine the formal charges on each atom by subtracting the number of lone pair electrons and half the number of bonding electrons from the number of valence electrons for each atom. The formal charges for the Lewis structure of [tex]ClO_4^-[/tex] are:

Cl: 7 - 0.5(8) - 4 = 0

O (double-bonded): 6 - 0.5(4) - 6 = -1

O (double-bonded): 6 - 0.5(4) - 6 = -1

O (double-bonded): 6 - 0.5(4) - 6 = -1

O (double-bonded): 6 - 0.5(4) - 6 = -1

[tex]ClO_4^-[/tex]:

To draw the Lewis structure for [tex]ClO_4^-[/tex], we first need to determine the total number of valence electrons in the molecule. Chlorine (Cl) has 7 valence electrons, while each oxygen (O) has 6 valence electrons, giving us a total of:

Cl: 7

O: 6 x 4 = 24

Total: 7 + 24 = 31 valence electrons

To satisfy the octet rule for each atom, we can form four double bonds between the chlorine and oxygen atoms. The Lewis structure for [tex]ClO_4^-[/tex]is:

     O

     ||

O === Cl === O

     ||

     O

     ||

     O

We can determine the formal charges on each atom by subtracting the number of lone pair electrons and half the number of bonding electrons from the number of valence electrons for each atom. The formal charges for the Lewis structure of [tex]ClO_4^-[/tex] are:

Cl: 7 - 0.5(8) - 4 = 0

O (double-bonded): 6 - 0.5(4) - 6 = -1

O (double-bonded): 6 - 0.5(4) - 6 = -1

O (double-bonded): 6 - 0.5(4) - 6 = -1

O (double-bonded): 6 - 0.5(4) - 6 = -1

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The Lewis structures of the compounds are shown in the images that are attached here.

What is the Lewis structure?

A diagrammatic representation of a molecule or ion that depicts the configuration of atoms, their connectivity, and the distribution of valence electrons is called a Lewis structure, often referred to as a Lewis dot structure or an electron dot structure.

Lewis structures are valuable in understanding the bonding and structural characteristics of molecules. They help visualize the arrangement of electrons, identify bonding patterns, and predict molecular geometry and reactivity.

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how many grams of sodium chlorate are required to generate 50.0 g sodium chloride according to the following equation: 2naclo3→2nacl 3o2

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To generate 50.0 g of sodium chloride according to the given chemical equation, we need 91.12 g of sodium chlorate.

To calculate the grams of sodium chlorate required to generate 50.0 g of sodium chloride, we first need to use the balanced chemical equation to determine the molar ratio of sodium chlorate to sodium chloride. From the equation 2NaClO3 → 2NaCl + 3O2, we can see that for every 2 moles of sodium chlorate, 2 moles of sodium chloride are produced.
The molar mass of sodium chloride is 58.44 g/mol, and so 50.0 g of sodium chloride corresponds to 50.0 g / 58.44 g/mol = 0.8557 moles.
Since the molar ratio of sodium chlorate to sodium chloride is 2:2, or simply 1:1, we know that we need 0.8557 moles of sodium chlorate to generate 50.0 g of sodium chloride.
The molar mass of sodium chlorate is 106.44 g/mol, and so to convert moles to grams, we can simply multiply the number of moles by the molar mass. Therefore, we need:
0.8557 moles x 106.44 g/mol = 91.12 g of sodium chlorate.
Therefore, to generate 50.0 g of sodium chloride according to the given chemical equation, we need 91.12 g of sodium chlorate.

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The mechanism for the reaction described by the equation2N2O5(g) → 4NO2(g) + O2(g)is suggested to be1. N2O5(g) → NO2(g) + NO3(g)2. NO2(g) + NO3(g) → NO2(g) + O2(g) + NO(g)

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The mechanism proposed for the reaction described by the equation 2N2O5(g) → 4NO2(g) + O2(g) involves two steps:

Step 1: N2O5(g) → NO2(g) + NO3(g)

In this step, one molecule of N2O5 decomposes into a molecule of NO2 and a molecule of NO3.

Step 2: NO2(g) + NO3(g) → NO2(g) + O2(g) + NO(g)

In this step, the NO2 molecule reacts with the NO3 molecule to produce a molecule of NO2, a molecule of O2, and a molecule of NO.

Overall, these two steps result in the decomposition of two molecules of N2O5 to produce four molecules of NO2 and one molecule of O2.

The proposed mechanism is consistent with the observed reaction stoichiometry and can also explain the experimentally observed rate law for this reaction.

The first step is the rate-determining step and is a unimolecular reaction, while the second step is a bimolecular reaction.

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a strong acid has _______. (select all that apply) select all that apply: a large percent ionization a low percent ionization a low ka value a large ka value

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A strong acid has a large percent ionization and a large Ka value.

A strong acid is characterized by its ability to completely ionize or dissociate in water, resulting in a high concentration of hydrogen ions (H+) in solution. This high degree of ionization is reflected in both the percent ionization and the Ka value of the acid.

The percent ionization of an acid is the ratio of the concentration of ionized acid (H+) to the initial concentration of the acid, expressed as a percentage.

For a strong acid, the percent ionization is close to 100% because almost all of the acid molecules dissociate into ions when dissolved in water. This indicates that a large proportion of the acid molecules contribute to the formation of ions, leading to a high concentration of H+ ions in the solution.

The Ka value, or acid dissociation constant, is a measure of the strength of an acid in terms of its ability to donate a proton (H+) to water.

It is the equilibrium constant for the ionization of the acid and is defined as the ratio of the concentration of the products (H+ and the corresponding conjugate base) to the concentration of the acid.

In the case of a strong acid, the Ka value is very large because the equilibrium lies heavily on the side of the products, indicating complete ionization.

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What is the pH of a buffer that results when 0. 50 mole of H3PO4 is mixed with 0. 25 mole of NaOH and diluted with water to 1. 00 L?


(The acid dissociation constants of phosphoric acid are Ka1 = 7. 5 x 10^-3, Ka2 = 6. 2 x 10^-8, and Ka3 = 3. 6 x 10^-13)

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the pH of the buffer solution formed by mixing 0.50 mole of H3PO4 with 0.25 mole of NaOH and diluting to 1.00 L is approximately 1.06.

ToTo determine the pH of the buffer solution formed when 0.50 mole of H3PO4 is mixed with 0.25 mole of NaOH and diluted to 1.00 L, we need to consider the dissociation of H3PO4 and the subsequent reaction with NaOH.

Given:
Moles of H3PO4 = 0.50 mole
Moles of NaOH = 0.25 mole
Total volume of solution = 1.00 L

First, we need to determine which components of the H3PO4 dissociate and react with NaOH. H3PO4 is a triprotic acid, meaning it has three acidic hydrogen atoms (H+). NaOH is a strong base that will react with the acidic hydrogen ions.

Based on the given dissociation constants, the acidic hydrogen atoms with the highest Ka value (Ka1 = 7.5 x 10^-3) will react with NaOH. The other two hydrogen atoms (with Ka2 = 6.2 x 10^-8 and Ka3 = 3.6 x 10^-13) will remain as H+ ions.

Since H3PO4 is a triprotic acid, we can calculate the concentration of H+ ions from the dissociation of the first acidic hydrogen using the equation:

[H+] = √(Ka1 × (moles of H3PO4 / total To)

[H+] = √(7.5 x 10^-3 × (0.50 mole / 1.00 L))

[H+] ≈ 0.0866 M

Taking the negative logarithm (pH = -log[H+]), we can calculate the pH:

pH = -log(0.0866)

pH ≈ 1.06

Therefore, the pH of the buffer solution formed by mixing 0.50 mole of H3PO4 with 0.25 mole of NaOH and diluting to 1.00 L is approximately 1.06.

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What type of geometry (according to valence bond theory) does V exhibit in the complex ion, [V(NH3)4]2+?
see-saw
square bipyramidal
trigonal pyramidal
bent
square planar

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The geometry of the complex ion [V(NH₃)₄]²⁺ according to valence bond theory is square planar.

In the complex ion [V(NH₃)₄]²⁺ , vanadium (V) has a +2 oxidation state. Its electronic configuration is [Ar] 3d³. When it forms the complex with four NH₃ ligands, the d-orbitals are hybridized with an available s-orbital and two p-orbitals, forming dsp² hybridization.

This hybridization results in four dsp² hybrid orbitals that are oriented in a square planar geometry. The four NH₃ ligands then form sigma bonds with these dsp² hybrid orbitals, resulting in the square planar geometry observed in the [V(NH₃)₄]²⁺ complex ion.

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Devise a 4-step synthesis of 2-bromopropane to 1-bromopropane. Br 1. reagent 1 2. reagent 2 Br 3. reagent 3 4. reagent 4 Identify reagent 1: Identify reagent 2: H20+ dilute Identify reagent 4: BH3, THF (CH3)2C0- PBrz PBr? CH,C00" Br2 Br2, H20

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Here is a 4-step synthesis of 2-bromopropane to 1-bromopropane:

How to convert 2-bromopropane to 1-bromopropane?

Step 1: Convert 2-bromopropane to 1-bromo-2-propanol

Reagent 1: H2O

Reaction conditions: Mix 2-bromopropane with a dilute aqueous solution of H2O

Mechanism: The water molecule acts as a nucleophile and attacks the electrophilic carbon atom of the 2-bromopropane molecule, leading to the formation of a protonated intermediate. This intermediate then undergoes deprotonation to form 1-bromo-2-propanol.

Step 2: Convert 1-bromo-2-propanol to 2-bromo-1-propanol

Reagent 2: NaOH or KOH

Reaction conditions: Mix 1-bromo-2-propanol with a solution of NaOH or KOH in water

Mechanism: The hydroxide ion from the NaOH or KOH solution acts as a nucleophile and attacks the electrophilic carbon atom of the 1-bromo-2-propanol molecule, leading to the formation of a deprotonated intermediate. This intermediate then undergoes protonation to form 2-bromo-1-propanol.

Step 3: Convert 2-bromo-1-propanol to 1-bromo-1-propanol

Reagent 3: HBr or PBr3

Reaction conditions: Mix 2-bromo-1-propanol with HBr or PBr3

Mechanism: HBr or PBr3 reacts with the alcohol group of 2-bromo-1-propanol, leading to the formation of a bromide ion. This bromide ion then attacks the electrophilic carbon atom of the molecule, leading to the formation of 1-bromo-1-propanol.

Step 4: Convert 1-bromo-1-propanol to 1-bromopropane

Reagent 4: Zn or LiAlH4

Reaction conditions: Mix 1-bromo-1-propanol with Zn or LiAlH4 in an ether solvent

Mechanism: Zn or LiAlH4 reduces the alcohol group of 1-bromo-1-propanol to a hydrogen atom, leading to the formation of 1-bromopropane.

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