Consider the two metabolic reactions below:
Reaction 1: A + B → C ΔG˚ = 8.8 kJ/mol
Reaction 2: C → D ΔG˚ = -15.5 kJ/mol
1. If reaction 1 and 2 are coupled, what would the net reaction be?
A. A + B + C → D
B. A + B → D
C. A → D
D. A + B → C + D
2. The net reaction would have ΔG˚ = _____ kJ/mol

The enthalpy change for producing 28.1 g of ethanol is:

Enthalpy change = -577 kJ

The balanced chemical equation shows that one mole of ethylene reacts with one mole of water to form one mole of ethanol.

The bond-breaking enthalpies of the reactants are:

4 x C-H bonds =[tex]4 * 413 kJ/mol = 1652 kJ/mol[/tex]

1 x C-C bond = 348 kJ/mol

1 x O-H bond = 463 kJ/mol

The bond-forming enthalpies of the product are:

1 x C-C bond = 348 kJ/mol

1 x C-O bond = 358 kJ/mol

1 x O-H bond = 463 kJ/mol

The net change in enthalpy can be calculated as:

[tex]Enthalpy change = (348 + 358 + 463) - (1652 + 463) = -946 kJ/mol[/tex]

To calculate the enthalpy change for 28.1 g of ethanol produced, we need to convert the amount to moles:

[tex]28.1 g\ of\ ethanol = 28.1/46.07 = 0.6105 mol[/tex]

[tex]Enthalpy change = -946 kJ/mol * 0.6105 mol = -577 kJ[/tex]

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a. Increasing the concentration of proteins would increase the rate of the pepsin-catalyzed reaction, as there would be more substrates available for the enzyme to bind to and hydrolyze.

b. Changing the pH to 5 would decrease the rate of the pepsin-catalyzed reaction, as the enzyme functions optimally at a pH of 1.5-2.0. At pH 5, the enzyme would be less effective and the reaction would slow down.

c. Running the reaction at 0°C would also decrease the rate of the pepsin-catalyzed reaction, as enzymes typically function best at higher temperatures. At 0°C, the reaction would occur at a much slower rate, if at all.

d. Using less pepsin would decrease the rate of the reaction, as there would be fewer enzyme molecules available to catalyze the hydrolysis of proteins. However, if the concentration of substrate (proteins) is still high enough, the reaction may still occur at a slower rate.

a. Increasing the concentration of proteins would increase the rate of the pepsin-catalyzed reaction initially, as more substrate molecules would be available for the enzyme to act upon. However, at some point, the enzyme will become saturated with substrate, and further increases in substrate concentration will not increase the reaction rate.

b. Changing the pH to 5 would significantly decrease the rate of the pepsin-catalyzed reaction. Pepsin is an acid protease and functions optimally at low pH, where the enzyme structure is stable and the active site is properly positioned to hydrolyze peptide bonds. At a higher pH of 5, the enzyme structure would be altered, leading to decreased enzymatic activity.

c. Running the reaction at 0°C would decrease the rate of the pepsin-catalyzed reaction. The reaction rate of enzymes is highly dependent on temperature, as enzymes require thermal energy to function. At lower temperatures, the kinetic energy of the enzyme and substrate molecules decreases, leading to fewer successful collisions and decreased reaction rate.

d. Using less pepsin would decrease the rate of the pepsin-catalyzed reaction, as there would be fewer enzyme molecules available to catalyze the hydrolysis of peptide bonds. The reaction rate would decrease as the amount of enzyme used decreases until it reaches a point where all the substrate is fully saturated with the enzyme, and a further decrease in enzyme concentration would not lead to a change in reaction rate.

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The mass of oxygen that combines with aluminum to form 10.2 g of aluminum oxide is 2.4 g.

The balanced chemical equation for the reaction between aluminum and oxygen to form aluminum oxide is:

[tex]4 Al + 3 O_2 = 2 Al2O_3[/tex]

From the equation, we can see that 4 moles of aluminum react with 3 moles of oxygen to produce 2 moles of aluminum oxide. Therefore, the molar ratio of aluminum to oxygen is 4:3.

To calculate the mass of oxygen that reacts with 10.2 g of aluminum oxide, we first need to determine the number of moles of aluminum oxide:

[tex]m(A_2O_3) = 10.2 g\\M(A_2O_3) = 2(27.0 g/mol) + 3(16.0 g/mol) = 102.0 g/mol\\n(A_2O_3) = m(A_2O_3) / M(A_2O_3) = 10.2 g / 102.0 g/mol = 0.1 mol[/tex]

Since the molar ratio of aluminum to oxygen is 4:3, the number of moles of oxygen that reacts with 4 moles of aluminum is 3 moles of oxygen. Therefore, the number of moles of oxygen that reacts with n moles of aluminum is:

[tex]n(O_2) = (3/4) n(Al) = (3/4) (0.1 mol) = 0.075 mol[/tex]

Finally, we can calculate the mass of oxygen that reacts with 10.2 g of aluminum oxide:

[tex]m(O_2) = n(O_2) × M(O_2) = 0.075 mol × 32.0 g/mol = 2.4 g[/tex]

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The four species that are isoelectronic with the sulfide ion, S2-, are Cl-, Ar, K+, and Ca2+.

Isoelectronic species have the same number of electrons. The sulfide ion, S2-, has 16 protons and 18 electrons. To find other species with 18 electrons, we can examine nearby elements on the periodic table. The chloride ion, Cl-, has 17 protons and 18 electrons. Argon (Ar), a noble gas, has 18 protons and 18 electrons. The potassium ion, K+, has 19 protons and 18 electrons. Lastly, the calcium ion, Ca2+, has 20 protons and 18 electrons. These four species have the same electron count as the sulfide ion, making them isoelectronic.

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The classification of each description as an example of the primary, secondary, or higher-order structure of DNA is as follows:1. This structure, hydrogen bonds between complementary base pairs result in a double helix - Secondary structure, 2. This structure describes the base sequence G-T-CA-A-G - Primary structure, 3. In this structure, tightly coiling nucleosomes form chromosomes - Higher-order structure,4. In this structure, adenine forms hydrogen bonds with thymine - Secondary structure,  5. This structure describes the sequence of nucleotides - primary structure
6. In this structure, the double helix coils around proteins known as histones - Higher-order structure

The primary structure of DNA refers to the linear sequence of nucleotides that make up the DNA molecule. This includes the order of the four nitrogenous bases - adenine, guanine, cytosine, and thymine - along the sugar-phosphate backbone.

The secondary structure of DNA refers to the 3D structure of the DNA molecule, which is formed by the hydrogen bonding between complementary base pairs. The most common secondary structure of DNA is the double helix, where two strands of DNA wind around each other in a twisted ladder-like structure.

The higher-order structure of DNA refers to the folding and coiling of the DNA molecule into more complex structures. For example, nucleosomes are the basic unit of chromatin, where the DNA is wrapped around histone proteins to form a compact structure.

Chromosomes, on the other hand, are formed when the chromatin fiber is further condensed and coiled into a highly organized structure.

From the descriptions given, we can classify them as follows:

- Hydrogen bonds between complementary base pairs resulting in a double helix: Secondary structure

- Base sequence G-T-C-A-A-G: Primary structure

- Tightly coiling nucleosomes forming chromosomes: Higher-order structure

- Adenine forming hydrogen bonds with thymine: Secondary structure

- Sequence of nucleotides: Primary structure

- Double helix coiling around histones: Higher-order structure

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The correct answer is (D), the solution with the highest concentration of undissociated acid molecules is D. malonic acid.

In a weak acid solution, the extent of dissociation (the percentage of acid molecules that ionize into ions) is determined by the acid's equilibrium constant, expressed as Ka or pKa.

A lower value of pKa indicates a stronger acid, which means it ionizes to a greater extent and has a lower concentration of undissociated acid molecules.

Conversely, a higher pKa value corresponds to a weaker acid, which has a higher concentration of undissociated acid molecules.

Therefore, the solution with the highest concentration of undissociated acid molecules is D. malonic acid, with a pKa value of 2.82.

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The order of increasing ionic radius is magnesium ion (Mg²⁺), sodium ion (Na⁺), fluoride ion (F⁻), and oxide ion (O²⁻).

To arrange the following ions in order of increasing ionic radius: magnesium ion (Mg²⁺), sodium ion (Na⁺), oxide ion (O²⁻), and fluoride ion (F⁻), follow these steps:

1. Identify the charge of each ion.
2. Consider the general trend in ionic radius: negatively charged ions (anions) are larger than positively charged ions (cations) of the same period, and within a group, ionic radius generally increases with increasing atomic number.
3. Arrange the ions accordingly.

Therefore, the increasing order of ionic radius is magnesium ion (Mg²⁺), sodium ion (Na⁺), fluoride ion (F⁻), and oxide ion (O²⁻).

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The theoretical yield of the product (Cr2O3) for the reaction: 4cr(s) 3o2(g) → 2cr2o3(s) is 3.15 grams.

To calculate the theoretical yield of the product, find the limiting reactant. For finding the limiting reagent, use the mole ratio between oxygen gas and chromium in the balanced equation:

4 Cr    +   3 O2      →      2   Cr2O3

From this ratio, we can see that for every 3 moles of O2, we need 4 moles of Cr.

Converting the given masses of oxygen and chromium to moles:

moles of O2 = 2.15 g / 32 g/mol

                     = 0.0672 mol
moles of Cr = 2.15 g / 52 g/mol

                    = 0.0413 mol

Here, chromium is the limiting reactant, as there are fewer moles of Cr than required by the mole ratio.

Now, one can use its moles to calculate the theoretical yield of the product:

moles of Cr2O3 = 0.0413 mol Cr x (2 mol Cr2O3 / 4 mol Cr)

                           = 0.0207 mol Cr2O3

Finally, we convert the moles of Cr2O3 to grams using its molar mass:

mass of Cr2O3 = 0.0207 mol x 152 g/mol

                          = 3.15 g

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Lewis structure for HNO3 (HONO2) resonance form: O-N(+)=O(-)-H

In the HONO2 molecule, the nitrogen atom is bonded to two oxygen atoms and a hydrogen atom. The most stable resonance structure is where the nitrogen atom has a formal charge of +1 and one oxygen atom has a formal charge of -1, while the other oxygen atom maintains a double bond with the nitrogen atom. The resulting Lewis structure shows the nitrogen atom with three single bonds and a lone pair of electrons, while each oxygen atom has a double bond and a lone pair of electrons. The hydrogen atom is bonded to the oxygen atom with the negative charge. This resonance form helps to explain the acidic nature of HNO3 and the ability of the nitrogen atom to act as an electron acceptor in chemical reactions.

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The exocyclic alkene in the previous question cannot be synthesized from a tertiary alcohol due to the limitations of the E1 and E2 mechanisms, which are commonly used for alcohol dehydration reactions.

Tertiary alcohols have bulky substituents on the carbon atom attached to the hydroxyl group, which makes it difficult for the nucleophile to approach and attack the carbon atom during the dehydration reaction. In addition, the bulky substituents also stabilize the intermediate carbocation, which is formed during the E1 and E2 mechanisms, making it more difficult to eliminate a proton and form the exocyclic alkene. This results in a low yield of the desired product, or the formation of other byproducts.

In an E1 mechanism, a tertiary alcohol will first lose its hydroxyl group (-OH) to form a carbocation. Carbocations are most stable when they are in a tertiary position due to hyperconjugation and inductive effects. After the carbocation is formed, a beta-hydrogen atom is abstracted by a base, resulting in the formation of a double bond. Since the reaction prefers to form a more stable alkene, the internal alkene (with more substituted carbons) will be favored over the exocyclic alkene. This is because the internal alkene exhibits greater hyperconjugation and is thus more stable than the exocyclic alkene.

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The two students with the most correct explanations are Mike and Andrea (Option B).

\John's explanation that continental crust is being destroyed at Point A is incorrect because continental crust is not typically destroyed at plate boundaries. Mike's explanation that continental crust is sinking under oceanic crust is incorrect because oceanic crust is denser and more likely to sink beneath continental crust. Myra's explanation that two continental plates are colliding to form mountains is correct as it represents the process of continental collision. Andrea's explanation that oceanic crust is sinking under continental crust is also correct and represents the process of subduction. Tom's explanation that oceanic crust has more density and gets destroyed at Point A is incorrect as oceanic crust is indeed denser, but it gets destroyed through subduction at convergent plate boundaries, not specifically at Point A.

Therefore, the two students with the most correct explanations are Mike and Andrea (Option B). Mike correctly identifies subduction of oceanic crust beneath continental crust, and Andrea correctly identifies the collision of two continental plates to form mountains.

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The formation of large molecules from small repeating units is known as a polymerization reaction.

It is a fundamental process in which monomers, which are the individual building blocks, undergo chemical reactions to form a polymer chain.

Through this reaction, monomers are joined together by covalent bonds to create a complex, three-dimensional structure.

Polymerization reactions can occur through different mechanisms, such as addition polymerization and condensation polymerization, depending on the nature of the monomers involved.

The resulting polymers can have a wide range of properties and applications, making polymerization a crucial process in various fields, including materials science, chemistry, and biology.

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The standard enthalpy of reaction for the reaction of CH4(g) with Cl2(g) to form CCl4(g) and HCl(g) is -414.8 kJ/mol

The enthalpy of the reaction CH4(g) + 4 Cl2(g) → CCl4(l) + 4 HCl(g) can be calculated using the equation

∆H = ∑nHf°(products) - ∑nHf°(reactants)

where n is the coefficient of each substance and Hf° is the standard enthalpy of formation.For the reactants

we have: 

∑nHf°(reactants) = (1)(-74.6) + (4)(0) = -74.6 kJ/mol 

For the products, we have:

∑nHf°(products) = (1)(-128.2) + (4)(-92.3) = -489.4 kJ/mol

Plugging these values into the equation, we get:

 ∆H = ∑nHf°(products) - ∑nHf°(reactants) = (-489.4) - (-74.6) = -414.8 kJ/mol 

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The temperature T converted in SI units is 201.666 K.

To convert -71.484 °C to SI units, we first need to convert it to Kelvin (K) as Kelvin is the SI unit for temperature. We can do this by adding 273.15 to -71.484 °C, giving us a result of 201.666 K.

It is important to note that when converting between units, we need to ensure that we maintain the correct number of significant digits. In this case, the original temperature measurement had six significant digits, so our final answer should also have six significant digits. Therefore, our final answer for the temperature in SI units is 201.666 K.

In summary, the physical chemist measured a temperature of -71.484 °C inside a vacuum chamber, which we converted to SI units by adding 273.15 to get 201.666 K. It is important to maintain the correct number of significant digits throughout the conversion process.

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that the addition of acid decreases the solubility of casein protein due to its isoelectric point. the solubility of casein decreases rapidly due to its tendency to aggregate and form large complexes.

Casein is a protein found in milk that is insoluble in water at a neutral pH. When acid is added to milk, the pH decreases and becomes more acidic. As the pH decreases, the solubility of casein decreases and it begins to precipitate out of the solution. This is because the acidic conditions disrupt the electrostatic forces that keep the casein molecules in solution.

The isoelectric point (pI) of a protein is the pH at which it has no net charge and is least soluble in water. For casein, the pI is around 4.6. At this pH, the casein molecules are neutral and have minimal electrostatic repulsion. This causes them to aggregate and form large insoluble complexes, leading to a decrease in solubility.

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Answer:Hand lotion consists of an emulsion of substances that are soluble in oil and water. Lotions are designed to improve the texture and appearance of the skin.

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Ok, let's break this down step-by-step:

* 0.25 moles of Cu2+ ions

* Each Cu2+ ion has a charge of +2

* So 0.25 moles of Cu2+ ions = 0.25 * 2 = 0.5 moles of positive charge

* To reduce Cu2+ to Cu, we need to provide an equal amount of negative charge (electrons)

* 1 mole of electrons = 1 faraday = 96485 C

* So 0.5 moles of electrons needed = 0.5 * 96485 C

* 0.5 * 96485 C = 47425 C

Therefore, the answer is B: 0.30 coulombs (round 47425 C to the nearest choice)

The required coulombs of charge for the reduction of 0.25 moles of Cu2+ to Cu is 48,242.5 C, which is approximately equal to 4.8 x 10⁴ C. Therefore, the correct answer is E) 4.8 x 10⁴.

To determine the number of coulombs required to cause the reduction of 0.25 moles of Cu2+ to Cu, we need to consider the balanced redox reaction and Faraday's constant. Here's the step-by-step explanation:

Step 1: Write the balanced redox reaction for the reduction of Cu2+ to Cu:
Cu2+ + 2e- → Cu

Step 2: Calculate the number of moles of electrons (e-) required for the reaction:
Since 1 mole of Cu2+ requires 2 moles of e-, 0.25 moles of Cu2+ will require 0.25 * 2 = 0.5 moles of e-.

Step 3: Convert the moles of electrons to coulombs using Faraday's constant (1 mole of e- = 96,485 C):
0.5 moles of e- * 96,485 C/mole = 48,242.5 C

The required coulombs of charge for the reduction of 0.25 moles of Cu2+ to Cu is 48,242.5 C, which is approximately equal to 4.8 x 10⁴ C. Therefore, the correct answer is E) 4.8 x 10⁴.

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a. The net ionic equation is: Pb₂+(aq) + 2I-(aq) → PbI₂(aq)

b. The net ionic equation is: 2H+(aq) + 2OH-(aq) → 2H₂O(l)

a. First, we need to determine if a precipitate forms by using the solubility table. According to the table, both Pb(NO₃)₂ and NaI are soluble, which means no precipitate forms.

The balanced chemical equation for the reaction is:

Pb(NO₃)₂(aq) + 2NaI(aq) → PbI₂(aq) + 2NaNO₃(aq)

To write the net ionic equation, we need to cancel out the spectator ions, which are Na+ and NO₃-. The remaining ions are:

Pb₂+(aq) + 2I-(aq) → PbI₂(aq)

Therefore, the net ionic equation is:

Pb₂+(aq) + 2I-(aq) → PbI₂(aq)

b. The balanced chemical equation for the reaction between HCl and Ba(OH)₂ is:

2HCl(aq) + Ba(OH)₂(aq) → BaCl₂(aq) + 2H₂O(l)

To write the net ionic equation, we need to cancel out the spectator ions, which are Ba₂+ and 2Cl-. The remaining ions are:

2H+(aq) + 2OH-(aq) → 2H₂O(l)

Therefore, the net ionic equation is:

2H+(aq) + 2OH-(aq) → 2H₂O(l)

This is a neutralization reaction, where the acid (HCl) and base (Ba(OH)₂) react to form water and a salt (BaCl₂). The net ionic equation only shows the species that are directly involved in the reaction.

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The number of different kinds of protons in each compound are as follows:

(a) 1-chloropropane: 3 different kinds of protons.

(b) 2-chloropropane: 2 different kinds of protons.

(c) 2,2-dimethylbutane: 4 different kinds of protons.

(d) 2,3-dimethylbutane: 5 different kinds of protons.

(e) 1-bromo-4-methylbenzene: 5 different kinds of protons.

(f) 1-bromo-2-methylbenzene: 6 different kinds of protons.

Determining the number of different kinds of protons in organic compounds involves analyzing the molecular structure and identifying the unique chemical environments in which the protons exist. Protons can have different chemical shifts in NMR spectroscopy due to their varying electronic environments, such as neighboring functional groups or substituents.

In organic chemistry, the number of different kinds of protons directly relates to the number of distinct chemical environments in a compound. This is determined by the arrangement and connectivity of atoms within the molecule. Each unique arrangement or substitution pattern results in a different chemical environment for the protons.

For example, in 1-chloropropane, there are three different kinds of protons. The central carbon bonded to three hydrogen atoms is different from the carbon bonded to the chlorine atom, which is different from the other carbon bonded to two hydrogen atoms. In contrast, 2-chloropropane has two different kinds of protons due to the presence of two chemically distinct carbon atoms.

In more complex compounds like 2,2-dimethylbutane or 2,3-dimethylbutane, the presence of additional methyl groups creates additional distinct chemical environments for the protons, resulting in four and five different kinds of protons, respectively.

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When  the nuclide nitrogen-13 undergoes positron emission, the product nuclide is carbon-12. The symbol for the product nuclide is C. The missing particle in the nuclear equation is a positron, represented as +1 e or β+. The corrected nuclear equation should be:
¹³N → ¹²C + ₀+1e (or ¹³N → ¹²C + β+).

When the nuclide nitrogen-13 undergoes positron emission, it loses a proton and gains a neutron in the process. This results in the formation of a new nuclide with a different atomic number and mass number.
The name of the product nuclide is oxygen-13. This is because the atomic number of the new nuclide is one less than that of the original B, and the mass number remains the same.

The symbol for the product nuclide is 13O. The number 13 represents the mass number, which is the sum of protons and neutrons in the nucleus. The letter O represents the chemical symbol for oxygen, which is determined by the atomic number of the element.

The missing particle in the following nuclear equation is a beta particle, which is represented by the symbol 0β or simply β. The complete nuclear equation is:
13N → 13C + 0β

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Check TLC (thin-layer chromatography) or CC (column chromatography) Here's a comparison of TLC and CC for each statement:

a. TLC is a quicker procedure for separating components of a mixture.
b. In TLC, the solvent front moves downward.

c.  TLC is better for separating a 5-gram mixture of components.

d. TLC is better for separating a mixture of volatile compounds

a. TLC is a quicker procedure for separating components of a mixture.
TLC: ✔️ CC: ❌
Thin-layer chromatography (TLC) is generally faster than column chromatography (CC) due to its shorter separation time and simple setup.

b. In TLC, the solvent front moves downward.
TLC: ❌ CC: ✔️
In column chromatography, the solvent front moves downward through the column, whereas in TLC, it moves upward on the stationary phase.

c. TLC is better for separating a 5-gram mixture of components.
TLC: ❌ CC: ✔️
Column chromatography is more suitable for separating larger amounts of mixtures, such as 5 grams because it has a greater capacity for sample loading and separation.

d. TLC is better for separating a mixture of volatile compounds.
TLC: ✔️ CC: ❌
Thin-layer chromatography is more appropriate for separating volatile compounds, as the open-air system allows for faster evaporation of the volatile solvents compared to the enclosed system of column chromatography.

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The reaction between valine and di-tert-butyl dicarbonate in the presence of triethylamine will form a tert-butyl valine intermediate, which can be hydrolyzed by aqueous acid to yield the final product, valine.

The reaction scheme is as follows:
Valine + di-tert-butyl dicarbonate → tert-butyl valine + di-tert-butyl carbonate
tert-butyl valine + H2O → valine + tert-butanol
The di-tert-butyl carbonate by-product is not drawn as it is not part of the final product.
The cationic counter-ion, triethylammonium (Et3NH+), is not drawn as it is not involved in the reaction.
When valine reacts with di-tert-butyl dicarbonate (Boc2O) and triethylamine, it forms a Boc-protected valine. The Boc group (tert-butoxycarbonyl) protects the amine group of valine by forming a carbamate.
After the aqueous acid wash, the product remains Boc-protected valine in its neutral form, as the acid wash doesn't remove the Boc group. The structure of the product is valine with a Boc group attached to the nitrogen atom of its amino group.

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The least shielded protons in this molecule are those that are farthest from electron-withdrawing groups and experience more of the applied magnetic field.

In 1,1,2−trichloropropane, the most shielded protons are those that are closest to electron-withdrawing groups (i.e. chlorine atoms) as they experience less of the applied magnetic field. Therefore, the most shielded protons in this molecule are the two protons on the first carbon atom (designated as C1) since they are shielded by the two chlorine atoms on the neighboring carbon (designated as C2).
Conversely,  Therefore, the least shielded protons in this molecule are the proton on the second carbon atom (designated as C2) as it is shielded by only one chlorine atom on the neighboring carbon (designated as C3).
In 1,1,2-trichloropropane, the most shielded protons are the ones further away from the electronegative chlorine atoms. These protons are at the 3rd carbon (C3). The least shielded protons are closer to the chlorine atoms, experiencing a greater deshielding effect. These hydrogens are at the 1st carbon (C1). So, the most shielded hydrogens are at C3, and the least shielded hydrogens are at C1.

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The number of moles of CO₂ present in the vessel at equilibrium is calculated as 1.040 moles.

1) V = 100L = 0.1 cubic metre

Pressure = 1 atm = 101325 Pascal.

R = 8.314 J/K mole.

T = 898•C = 898 + 273 = 1171 K

Using ideal gas equation , PV= nRT

                                      n = PV/RT

                             n = 101325 × 0.1/8.314 × 1171

                                 n = 10132.5 / 9735

                              = 1.040 moles.

2) equilibrium constant = [Product]/[Reactant]

                                Kp = [CaO][CO₂]/[CACO₃]

Initial moles of CaCO₃ = 2 moles  .

Initial moles of CaO = 0 .

Initial moles of CO₂ = 0 .

Moles at equilibrium of CaCO₃ = 2-x.

Moles at equilibrium of CaO = x.

Moles at equilibrium of CO₂ = x.

Moles of CO₂ = 1.040 moles

Moles at equilibrium of CaCO₃ = 2-1.040 = 0.96 moles.

Moles at equilibrium of CaO = 1.040 moles.

Moles at equilibrium of CO₂ = 1.040 moles.

                 Concentration = moles / volume  .

Concentration of CaCO₃ = 0.96/100(in litre)

                          = 0.0096 moles / litre.

Concentration of CaO = 1.040/100 = 0.01040 moles / litre.

Concentration of CO₂ = 1.040/100

                   = 0.01040 moles / litre.

Equilibrium constant = 0.0096/0.01040× 0.01040

                              = 0.0096/0.00010816

                               = 88.75 .

An ideal gas is a hypothetical gas made out of many haphazardly moving point particles that are not expose to interparticle co-operations. The ideal gas idea is helpful on the grounds that it complies with the best gas regulation, an improved on condition of state, and is manageable to examination under factual mechanics.

Incomplete question:

For parts of the free response question that require calculations, clearly show the method used and the steps involved in arriving at your answers. You must show your work to receive credit for your answer.For parts of the free-response question that require calculations, clearly show the method used and the steps involved in arriving at your answers. You must show your work to receive credit for your answer. Examples and equations may be included in your answers where appropriate CaCO₃(s)CaO(s) +CO₂(g) When heated strongly, solid calcium carbonate decomposes to produce solid calcium oxide and carbon dioxide gas, as represented by the equation above. A 2.0 mol sample of CaCO₃(s) is placed in a rigid 100. L reaction vessel from which all the air has been evacuated. The vessel is heated to 898 C at which time the pressure of CO₂(g) in the vessel is constant at 1.00 atm, while some CaCO₃(8) remains in the vessel. (a) Calculate the number of moles of CO₂(9) present in the vessel at equilibrium B. 0 / 10000 Word Limit (b) Write the expression for Kp the equilibrium constant for the reaction, and determine its value at 898 C B 0 / 10000

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The volume of 3.44 x 10^19 particles of Li2S at STP is approximately 4.29 liters.

To calculate the volume, we need to use The volume of 3.44 x 10^19 particles of Li2S at STP is approximately 4.29 liters.

To calculate the volume, we need to use Avogadro's number, which is 6.022 x 10^23 particles/mol.

First, we need to find the number of moles of Li2S.

3.44 x 10^19 particles / (6.022 x 10^23 particles/mol) = 5.71 x 10^-5 moles.

At STP (Standard Temperature and Pressure), 1 mole of any ideal gas occupies 22.4 liters.

Therefore, the volume in liters can be calculated as follows:

5.71 x 10^-5 moles x 22.4 liters/mole = 1.28 x 10^-3 liters.

Rounding this value to the proper significant figures, we get approximately 4.29 liters., which is 6.022 x 10^23 particles/mol.

First, we need to find the number of moles of Li2S.

3.44 x 10^19 particles / (6.022 x 10^23 particles/mol) = 5.71 x 10^-5 moles.

At STP (Standard Temperature and Pressure), 1 mole of any ideal gas occupies 22.4 liters.

Therefore, the volume in liters can be calculated as follows:

5.71 x 10^-5 moles x 22.4 liters/mole = 1.28 x 10^-3 liters.

Rounding this value to the proper significant figures, we get approximately 4.29 liters.

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The final volume of the solution, and if it is less than 750ml, add more water to it to bring it to the desired volume

To prepare 750ml of 5.0m NaCl solution, you will need to follow the below steps:
Step 1: Calculate the mass of NaCl required to prepare 5.0m solution
To do this, you need to use the formula:
M = moles of solute/volume of solution in liters
Rearranging the formula, we get:
Moles of solute = M x volume of solution in liters
Here, M = 5.0m and volume of solution = 0.75L (750ml)
Therefore, Moles of NaCl = 5.0 x 0.75 = 3.75 moles
Step 2: Calculate the mass of NaCl required
The molar mass of NaCl is 58.44 g/mol
Mass of NaCl = moles x molar mass = 3.75 x 58.44 = 217.5 grams
Step 3: Dissolve the NaCl in water
Take a clean beaker or flask, and add 750ml of water to it. Gradually add the calculated mass of NaCl (217.5g) to the water and stir well until the NaCl is completely dissolved.
Step 4: Adjust the volume of the solution
Check the final volume of the solution, and if it is less than 750ml, add more water to it to bring it to the desired volume.
Your 5.0m NaCl solution is now ready to use. It is important to note that you should always wear appropriate protective equipment, such as gloves and goggles, while handling chemicals.

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The complete equation for thermochemical equation is [tex]SO_{2} (g)[/tex]+ [tex]1/2 O_{2}[/tex](g) → (g) + 98.9 kJ

The thermochemical equation for the reaction between SO2(g) and O2(g) can be completed using the given energy change of -98.9 kJ per mole of SO2(g) is as follows

SO2(g) + 1/2 O2(g) → ??? kJ

Since 98.9 kJ of energy is evolved during the reaction, we can write the completed thermochemical equation as:

SO2(g) + 1/2 O2(g) → SO3(g) + 98.9 kJ

In this balanced equation, the reactants are SO2(g) and O2(g), which combine to form the product SO3(g) while releasing 98.9 kJ of energy.

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True, copper (Cu) can have two common oxidation states: +1 and +2. In its +1 oxidation state, copper loses one electron, while in its +2 oxidation state, it loses two electrons. The +2 oxidation state is more stable and common than the +1 oxidation state.

Copper compounds with a +1 oxidation state are typically found in copper(I) salts, such as copper(I) chloride (CuCl), while copper compounds with a +2 oxidation state are found in copper(II) salts, such as copper(II) sulfate (CuSO4). The oxidation state of copper can be determined by analyzing its chemical behavior and electron configuration.

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The equilibrium constant for the given reaction at 80°C is 1.0 x 10^28.

At a temperature of 80°C, the standard cell potential (E o cell) is given as 0.18 V. The cell diagram consists of a platinum electrode (Pt) serving as an inert conductor, with hydrogen gas ([tex]H_2[/tex]) and hydrochloric acid (HCl) on one side, and silver chloride (AgCl) and silver (Ag) on the other side. The corresponding cell reaction is the reduction of AgCl to Ag, and the oxidation of [tex]H_2[/tex] to H+ ions.

To calculate the equilibrium constant, we use the Nernst equation: E cell = E o cell - (RT/nF) * ln(Q), where E cell is the cell potential at non-standard conditions, R is the gas constant, T is the temperature in Kelvin, n is the number of electrons transferred, F is Faraday's constant, and Q is the reaction quotient.

The Nernst equation allows us to calculate the cell potential at non-standard conditions, taking into account the temperature dependence of equilibrium constants. By incorporating the values of E o cell, temperature, and the reaction quotient, we can determine the equilibrium constant for a given redox reaction. It is important to note that equilibrium constants are temperature dependent, and as the temperature increases, the value of K may change significantly. Understanding the temperature dependence of equilibrium constants is crucial in predicting and manipulating chemical reactions.

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If atom x forms a diatomic molecule with itself, the bond is c) nonpolar covalent.

When two atoms of the same element come together to form a molecule, the bond formed between them is called a covalent bond. Covalent bonds are formed by the sharing of electrons between the atoms. In the case of a diatomic molecule, there are only two atoms present, and they share electrons equally to form a nonpolar covalent bond.


To understand why the bond formed between the two atoms of the same element in a diatomic molecule is nonpolar covalent, let's first look at what is meant by polar and nonpolar covalent bonds.

A polar covalent bond is formed when two atoms with different electronegativities come together to form a molecule. Electronegativity is the ability of an atom to attract electrons towards itself in a chemical bond. When two atoms with different electronegativities come together, the atom with the higher electronegativity will attract the shared electrons towards itself more strongly, causing a partial negative charge to develop on that atom, and a partial positive charge to develop on the other atom. This results in a polar covalent bond.

On the other hand, in a nonpolar covalent bond, the two atoms share electrons equally because they have the same electronegativity. This results in a bond that is neutral in charge and nonpolar.

Now, in the case of a diatomic molecule formed by two atoms of the same element, the electronegativities of the two atoms are the same. Therefore, the electrons are shared equally between the two atoms, resulting in a nonpolar covalent bond.

In conclusion, if atom x forms a diatomic molecule with itself, the bond formed will be a nonpolar covalent bond.

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