what is the coefficient for oh−(aq) when mno4−(aq) h2s(g) → s(s) mno(s) is balanced in basic aqueous solution?

Answers

Answer 1

The coefficient for OH⁻(aq) in the balanced equation is 8. The equation of a redox reaction in which oxidation and reduction take place is known as a redox equation.

To balance the equation in basic aqueous solution, the following steps can be followed:

Balance the atoms other than oxygen and hydrogen. In this case, Mn and S are already balanced.

Balance oxygen atoms by adding H₂O to the side that needs more oxygen. In this case, the left side needs more oxygen, redox reaction so we add H₂O to the left side:

MnO₄⁻(aq) + H₂S(g) → S(s) + MnO₂(s) + H₂O

Balance hydrogen atoms by adding H⁺ ions to the side that needs more hydrogen. In this case, the right side needs more hydrogen, so we add H⁺ ions to the right side:

MnO₄⁻(aq) + H₂S(g) → S(s) + MnO₂(s) + H₂O + 4H⁺

Balance the charge by adding electrons. In this case, the left side has a charge of -1, while the right side has a charge of +2. To balance the charges, we add 6 electrons to the left side:

MnO₄⁻(aq) + H₂S(g) + 6OH⁻(aq) → S(s) + MnO₂(s) + H₂O + 4H₂O + 6e⁻

Finally, balance the electrons by multiplying the half-reactions by appropriate coefficients. In this case, we multiply the reduction half-reaction by 6 and the oxidation half-reaction by 1:

6MnO₄⁻(aq) + 6H₂S(g) + 6OH⁻(aq) → 6S(s) + 6MnO₂(s) + 7H₂O

Therefore, the coefficient for OH⁻(aq) in the balanced equation is 6 × 2 = 12.

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Related Questions

the half-life of carbon-11 is 20.3 minutes. how much of a 100.0 mg sample remains after 1.50 hours?

Answers

The half-life of carbon-11 is 20.3 minutes. 6.01 mg of a 100.0 mg sample remains after 1.50 hours

First, we need to determine how many half-lives have passed in 1.50 hours. Since the half-life of carbon-11 is 20.3 minutes, there are 4.41 half-lives in 1.50 hours (90 minutes / 20.3 minutes per half-life).
To calculate the remaining amount of the sample, we use the formula:
amount remaining = original amount x (1/2)^(number of half-lives)
Plugging in the values we have:
amount remaining = 100.0 mg x (1/2)⁴
amount remaining = 100.0 mg x 0.0601
amount remaining = 6.01 mg

The ratio that makes up the percentage can be written as a fraction of 100.
Therefore, after 1.50 hours, only 6.01 mg of the original 100.0 mg sample of carbon-11 remains.

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in the redox reaction, 2mno4 - (aq) 16h (aq) 5sn2 (aq) 2mno2 - (aq) 8h2o(aq) 5sn4 (aq), the oxidation number of mn changes from ___ to ___.

Answers

In the given redox reaction:

2MnO4^-(aq) + 16H^+(aq) + 5Sn^2+(aq) → 2MnO2^-(aq) + 8H2O(aq) + 5Sn^4+(aq) We can see that the oxidation state of Mn changes from +7 in MnO4^- to +4 in MnO2^-.

To determine the oxidation state of Mn, we first need to remember the oxidation state rules. In a compound, the oxidation state of oxygen is usually -2, except in peroxides where it is -1, while the oxidation state of hydrogen is usually +1, except in metal hydrides where it is -1. The sum of the oxidation states of all the atoms in a neutral compound is zero.

Using these rules, we can calculate the oxidation state of Mn in each compound:- MnO4^-: The sum of the oxidation states of four oxygen atoms, each with an oxidation state of -2, is -8. The overall charge of the ion is -1, so the oxidation state of Mn must be:

x + (-8) = -1

x = +7

- MnO2^-: The sum of the oxidation states of two oxygen atoms, each with an oxidation state of -2, is -4. The overall charge of the ion is -2, so the oxidation state of Mn must be:

x + (-4) = -2

x = +4

Therefore, the oxidation state of Mn changes from +7 to +4 in the given redox reaction.

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the half - life of californium - 252 is 2.6 years. how many milligrams of californium - 252 from an original sample of 1.0 mg will remain after 3.0 years?

Answers

After 3.0 years, 0.376 mg of californium-252 will remain from the original sample of 1.0 mg.

The half-life of californium-252 is 2.6 years, which means that after 2.6 years, half of the original sample will have decayed. We can use this information to calculate the amount of californium-252 that will remain after 3.0 years.First, we need to determine how many half-lives have passed.

We can do this by dividing the elapsed time (3.0 years) by the half-life (2.6 years):3.0 years / 2.6 years per half-life = 1.15 half-livesThis means that 1.15 half-lives have passed since the original sample was taken.To calculate the amount of californium-252 that remains, we can use the following formula:

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identify which compound is more acidic and explain your choice: acetophenone or benzaldehyde

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Benzaldehyde is more acidic than acetophenone because its conjugate base is more stable, allowing for better delocalization of the negative charge over the entire phenyl ring.

To determine which compound is more acidic between acetophenone and benzaldehyde, we need to consider their molecular structures and the stability of their conjugate bases.

Understand the molecular structures of acetophenone and benzaldehyde.
Acetophenone has a structure of C6H5C(O)CH3, where a carbonyl group is attached to a methyl group and a phenyl group. Benzaldehyde has a structure of C6H5CHO, where a carbonyl group is directly attached to a phenyl group.

Consider the stability of their conjugate bases.
When a compound loses a hydrogen ion (H+), it forms a conjugate base. A more stable conjugate base indicates a more acidic compound. The conjugate bases of acetophenone and benzaldehyde are formed by losing a hydrogen ion from their carbonyl groups, resulting in a negative charge on the oxygen atom.

Compare the conjugate base stability.
Benzaldehyde's conjugate base has a more stable resonance structure due to the direct attachment of the carbonyl group to the phenyl group, allowing for better delocalization of the negative charge over the entire phenyl ring. In contrast, acetophenone's conjugate base has a less stable resonance structure because the negative charge cannot be delocalized over the entire phenyl ring due to the presence of the methyl group.

In conclusion, benzaldehyde is more acidic than acetophenone because its conjugate base is more stable, allowing for better delocalization of the negative charge over the entire phenyl ring.

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how effective was the steam distillation? what data do you have to support this?

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Steam distillation is a highly effective method for extracting essential oils and other volatile compounds from plant materials. The effectiveness of steam distillation is supported by a large body of scientific research, which has demonstrated the efficiency of this process in extracting high-quality essential oils from a wide range of plant materials.

One key factor that contributes to the effectiveness of steam distillation is the use of high-pressure steam, which helps to release the essential oils from the plant material.

In addition, the use of water as a solvent helps to protect the delicate chemical compounds found in essential oils, preserving their quality and aroma.

Numerous studies have demonstrated the effectiveness of steam distillation in extracting essential oils from plants, including lavender, peppermint, and eucalyptus.

These studies have shown that steam distillation is capable of extracting a high yield of essential oils with excellent purity and quality, making it an ideal method for the production of essential oils and other natural plant extracts.

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climate change is expected to cause the most significant changes in the land carbon cycle. carbon dioxide raises temperatures, which extends the growing season and raises humidity. T/F

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True. Climate change is expected to cause significant changes in the land carbon cycle. One of the main factors causing this change is the increase of carbon dioxide in the atmosphere, which leads to higher temperatures, longer growing seasons, and increased humidity.

These changes can have both positive and negative effects on plant growth and carbon storage in the soil. However, overall, the impact of climate change on the land carbon cycle is predicted to be negative, as changes in precipitation, temperature, and other factors can lead to increased rates of carbon loss from the soil and vegetation.


True, climate change is expected to cause significant changes in the land carbon cycle. The increase in carbon dioxide raises temperatures, which in turn extends the growing season and raises humidity. These factors can affect the rate of photosynthesis, plant growth, and the ability of ecosystems to store carbon. Additionally, climate change can influence factors such as precipitation patterns and soil moisture, further altering the land carbon cycle. It is crucial to monitor and mitigate the impacts of climate change to maintain a balanced land carbon cycle and protect ecosystems.

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If Kc = 0. 223 for the reaction 2 HX(g) ⇌ H2(g) + X2(g),



what is the value of Kc for the following reaction, ½ H2(g) + ½ X2(g) ⇌ HX(g)?

Answers

The balanced chemical reaction is given as 2 HX(g) ⇌ H2(g) + X2(g). The expression for the equilibrium constant, Kc for the above reaction is given as Kc = [H2][X2] / [HX]².

Now, the balanced chemical reaction ½ H2(g) + ½ X2(g) ⇌ HX(g) can be multiplied by 2 on both sides to get the coefficients of reactants and products as H2(g) + X2(g) ⇌ 2 HX(g).

We can see that the given reaction is the reverse of the reaction for which the Kc value is given.

Therefore, the Kc for the given reaction is the reciprocal of the Kc for the given reaction as K'c = 1/Kc  = 1/0.223  = 4.48  (approx).

Thus, the value of Kc for the given reaction ½ H2(g) + ½ X2(g) ⇌ HX(g) is 4.48.

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Write the structural formula for a compound that would yield a positive test for carboxylic acid but would not be wate rosluble.

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A compound that would yield a positive test for carboxylic acid but would not be water-soluble is a long-chain carboxylic acid.

An example of such a compound is stearic acid (C17H35COOH). The structural formula for stearic acid is:

CH3(CH2)16COOH

This compound contains a carboxylic acid group (-COOH) which is responsible for the positive test for carboxylic acid. However, due to its long hydrocarbon chain, it has limited solubility in water, making it not water-soluble.

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On average, a middle school girl should eat between 1,600 and 2,00 calories each day. If your lunch each day was 400 calories, do your total calories fall between 1,600 and 2,00 calories everyday? Why do you think they did/did not? Explain your answer.

Answers

Answer:

no I'm about to say we will be didn't 1,600 we will 500

An element ‘X’ has atomic number 34. Give its position in the


periodic table

Answers

Element X with atomic number 34 is selenium (Se). In the periodic table, selenium is located in period 4 and group 16. Its position is below oxygen (O) and sulfur (S) and above tellurium (Te) and polonium (Po). Selenium belongs to the chalcogen group and is a nonmetal. It has six valence electrons in its outermost energy level.

The periodic table is organized based on the atomic number of elements, which represents the number of protons in the nucleus of an atom. Element X with atomic number 34 corresponds to selenium (Se). To find its position in the periodic table, we can locate the element with atomic number 34.

Moving from left to right in period 4, we find selenium in group 16, also known as the oxygen group or the chalcogen group. It is positioned between oxygen (atomic number 8) and sulfur (atomic number 16). The element below selenium in the same group is tellurium (atomic number 52), and the element above is polonium (atomic number 84). Therefore, the element X with atomic number 34 is selenium, and its position in the periodic table is in period 4 and group 16.

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Find the ph of a buffer that consists of 0.91 m hbro and 0.49 m kbro (pka of hbro = 8.64).

Answers

To find the pH of a buffer consisting of 0.91 M HBrO and 0.49 M KBrO with a pKa of 8.64, you can use the Henderson-Hasselbalch equation. The equation is:

pH = pKa + log10([A-]/[HA])

Where:


- pH is the pH of the buffer solution


- pKa is the acid dissociation constant (8.64 in this case)


- [A-] is the concentration of the conjugate base (KBrO, 0.49 M)


- [HA] is the concentration of the weak acid (HBrO, 0.91 M)


Now, plug in the values into the equation:

pH = 8.64 + log10(0.49/0.91)

Calculate the log value:

pH = 8.64 + log10(0.5385)

pH = 8.64 + (-0.269)

Finally, add the pKa and the calculated log value:

pH = 8.64 - 0.269 = 8.371

Therefore, the pH of the buffer that consists of 0.91 M HBrO and 0.49 M KBrO with a pKa of 8.64 is approximately 8.37.

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The Lineweaver-Burk plot is used to:Select one:a. determine the equilibrium constant for an enzymatic reaction.b. illustrate the effect of temperature on an enzymatic reaction.c. solve, graphically, for the rate of an enzymatic reaction at infinite substrate concentration.d. solve, graphically, for the ratio of products to reactants for any starting substrate concentration.e. extrapolate for the value of reaction rate at infinite enzyme concentration.

Answers

The Lineweaver-Burk plot is used to solve, graphically, for the rate of an enzymatic reaction at infinite substrate concentration (option C).

The Lineweaver-Burk plot is a graphical representation of the Michaelis-Menten equation, which describes the relationship between the substrate concentration and the rate of an enzymatic reaction. By plotting the reciprocal of the initial reaction velocity (1/V0) against the reciprocal of the substrate concentration (1/[S]), a straight line can be obtained, from which the maximum reaction velocity (Vmax) and the Michaelis constant (Km) can be determined. From these values, the rate of the reaction at infinite substrate concentration (Vmax) can be calculated. This information is useful for determining the efficiency of an enzyme, as well as for designing experiments to optimize enzymatic reactions.

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rutenium-103 is formed by neutron bombardment of a naturally occurring isotope of ru .if one neutron is absorbed and no by-products are formed, what is the starting isotope?

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If one neutron is absorbed by a naturally occurring isotope of Ru and no by-products are formed, the starting isotope would be Ru-102.

What are isotopes?

Isotopes are atoms of the same element with different numbers of neutrons. They have the same number of protons and electrons, but different atomic masses.

Ru-102 has a natural abundance of 31.6% and can capture a neutron to form Ru-103 through the reaction:

Ru-102 (n,γ) Ru-103

The neutron capture reaction increases the atomic mass of the isotope by one unit while keeping the atomic number the same.

Therefore, the resulting isotope is Ru-103, which is radioactive and undergoes beta decay to form Rh-103.

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What is the correct noble gas electron configuration for Mn2+ (Manganese 2+ cation)?Group of answer choices[Ar] 4s2 3d3[Ar] 4s2 3d5[Ar] 4s2 3d7[Ar] 4s1 3d4[Ar] 4s0 3d5

Answers

The correct noble gas electron configuration for Mn2+ (Manganese 2+ cation) is: [Ar] 4s0 3d5

Let's break down the electron configuration to understand why this is the correct configuration:

[Ar]: This represents the electron configuration of the noble gas Argon (atomic number 18). Noble gases have stable electron configurations and full outer electron shells, making them unreactive.

By including [Ar] at the beginning, we acknowledge that we are starting with the electron configuration of Argon.

3d5: Manganese (Mn) is a transition metal with atomic number 25. In its neutral state, it has an electron configuration of [Ar] 4s2 3d5. However, when it loses two electrons to form the Mn2+ cation, the electron configuration changes.

The two electrons are removed from the 4s orbital since it has a higher energy level compared to the 3d orbital.

By removing the two electrons from the 4s orbital, the electron configuration becomes [Ar] 3d5, which represents the Mn2+ cation.

It's important to note that the electron configuration describes the distribution of electrons in an atom or ion. In the case of Mn2+, it has lost two electrons, resulting in a +2 charge. This configuration reflects the stable electron arrangement of the Mn2+ cation.

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How has the scarcity of oil in many other parts of the world affected countries in the Middle East, such as Iraq and Kuwait? F They are dependent on the other countries for oil. G Oil became their main trading commodity. H Agricultural products are traded for oil from other countries. J Oil pipelines across the Red Sea import oil into the Middle East. ​

Answers

The scarcity of oil in many parts of the world has affected countries in the Middle East, such as Iraq and Kuwait, by making them heavily dependent on other countries for oil.

The scarcity of oil in many parts of the world has had significant effects on countries in the Middle East, including Iraq and Kuwait. These countries, which are major oil-producing nations, have become heavily dependent on other countries for oil.

As the demand for oil continues to rise globally, these countries have experienced increased reliance on their oil exports as a primary source of income. Additionally, the scarcity of oil in other regions has strengthened the Middle East's position as a major supplier, making oil their main trading commodity.

The countries in the Middle East have leveraged their oil reserves to establish economic and political influence, with oil revenues driving their economic growth and development.

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What is the total change in enthalpy of this reaction?



A. 25 kJ


B. 30 kJ


C. 35 kJ


D. 55 kJ

Answers

To determine the total change in enthalpy of a reaction, we need to examine the enthalpy values of the reactants and products and consider their stoichiometric coefficients. Without specific information about the reaction, it is not possible to provide an exact answer from the given options (A, B, C, or D). The total change in enthalpy depends on the specific reaction and the enthalpy values associated with it.

The total change in enthalpy of a reaction, denoted as ΔH, is influenced by the enthalpy values of the reactants and products. It is calculated by subtracting the sum of the enthalpy values of the reactants from the sum of the enthalpy values of the products, considering their stoichiometric coefficients.

However, without specific information about the reaction or enthalpy values associated with it, it is not possible to determine the total change in enthalpy from the given options (A, B, C, or D). The values provided (25 kJ, 30 kJ, 35 kJ, and 55 kJ) are arbitrary and do not correspond to a specific reaction.

To accurately determine the total change in enthalpy, the specific reaction and corresponding enthalpy values need to be provided.

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a weak base has _______. select the correct answer below: 1. a large percent ionization 2. a low percent ionization 3. a low percent ionization and a small K_b 4. a small K_b and a large percent ionization

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A weak base has a low percent ionization and a small K_b.

This means that only a small fraction of the weak base molecules dissociate into ions when placed in water. The equilibrium constant for the reaction between the weak base and water (K_b) is also small. This is because weak bases have a weaker attraction for protons than strong bases, and therefore have a harder time accepting them from water molecules to form ions.

The low percent ionization and small K_b result in a weaker basicity for the weak base. In contrast, a strong base has a high percent ionization and a large K_b, meaning that it dissociates readily into ions and has a stronger affinity for protons. Understanding the properties of weak and strong bases is important in predicting and controlling chemical reactions.

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the decay of a radionuclide with a half-life of 3.8 ⋅ 105 years has a rate constant (in yr−1 ) equal to ________.

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The rate constant for the decay of a radionuclide is a measure of how quickly the substance decays. It is expressed in units of inverse time, such as per year (yr-1). The half-life of a radionuclide is the time it takes for half of the initial amount of the substance to decay. Therefore, the rate constant for the decay of this radionuclide is approximately 1.83⋅10-6 yr-1.

In this case, we are given that the half-life of the radionuclide is 3.8⋅105 years. We can use the formula for the rate constant, which is k = ln(2)/t1/2, where ln(2) is the natural logarithm of 2, and t1/2 is the half-life of the radionuclide. Plugging in the given value, we get:

k = ln(2)/3.8⋅105 yr
k ≈ 1.83⋅10-6 yr-1

Therefore, the rate constant for the decay of this radionuclide is approximately 1.83⋅10-6 yr-1. This means that for every year that passes, the amount of the substance will decrease by a factor of e-kt, where t is the time elapsed since the start of decay.

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Two charges each +4 uC are on the x-axis, one at the origin and the other at x = 8 m. Find the electric field on x-axis at: a) x = -2 m b) x = 2 m c) x = 6 m

Answers

The specific value of k (electrostatic constant) is required to calculate the electric field at each position on the x-axis.

The specific value of k (electrostatic constant) is required to calculate the electric field at each position on the x-axis.

To find the electric field on the x-axis at different positions, we can use Coulomb's Law. Coulomb's Law states that the electric field created by a point charge is directly proportional to the magnitude of the charge and inversely proportional to the square of the distance from the charge.

Given:

Charge 1 (Q1) = +4 uC

Charge 2 (Q2) = +4 uC

Distance between charges (d) = 8 m

a) At x = -2 m:

The electric field at this position is the vector sum of the electric fields created by each charge. The direction of the electric field will be positive if it points away from the charges and negative if it points towards the charges.

The distance from Charge 1 to x = -2 m is 2 m.

The distance from Charge 2 to x = -2 m is 10 m.

Using Coulomb's Law:

Electric field due to Charge 1 (E1) = (k * Q1) / (distance from Charge 1 to x = -2 m)^2

Electric field due to Charge 2 (E2) = (k * Q2) / (distance from Charge 2 to x = -2 m)^2

The total electric field (E_total) at x = -2 m is the sum of E1 and E2, taking into account their directions.

b) At x = 2 m:

The distance from Charge 1 to x = 2 m is 2 m.

The distance from Charge 2 to x = 2 m is 6 m.

Using Coulomb's Law:

Electric field due to Charge 1 (E1) = (k * Q1) / (distance from Charge 1 to x = 2 m)^2

Electric field due to Charge 2 (E2) = (k * Q2) / (distance from Charge 2 to x = 2 m)^2

The total electric field (E_total) at x = 2 m is the sum of E1 and E2, taking into account their directions.

c) At x = 6 m:

The distance from Charge 1 to x = 6 m is 6 m.

The distance from Charge 2 to x = 6 m is 2 m.

Using Coulomb's Law:

Electric field due to Charge 1 (E1) = (k * Q1) / (distance from Charge 1 to x = 6 m)^2

Electric field due to Charge 2 (E2) = (k * Q2) / (distance from Charge 2 to x = 6 m)^2

The total electric field (E_total) at x = 6 m is the sum of E1 and E2, taking into account their directions.

Please note that in the above explanation, k represents the electrostatic constant. However, the specific value of k is not mentioned, so we cannot provide the numerical values of the electric field without the given value of k.

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A hydrated iron chloride compound was found to contain 20.66% Fe, 39.35% Cl, and 39.99% water. Determine the empirical formula of the hydrated compound

Answers

This gives us the empirical formula of FeCl3·6H2O, which means that there is one mole of iron (Fe), three moles of chlorine (Cl), and six moles of water (H2O) in the compound.

To determine the empirical formula of the hydrated iron chloride compound, we need to first calculate the moles of each element present in the compound.
Assuming we have 100g of the compound, we have:
- 20.66g Fe = 0.371 moles Fe (using the atomic weight of Fe = 55.85 g/mol)
- 39.35g Cl = 1.107 moles Cl (using the atomic weight of Cl = 35.45 g/mol)
- 39.99g H2O = 2.221 moles H2O (using the molecular weight of H2O = 18.02 g/mol)
Next, we need to find the simplest whole number ratio of the elements in the compound. To do this, we divide each mole value by the smallest mole value:
- Fe: 0.371/0.371 = 1
- Cl: 1.107/0.371 = 2.99 ≈ 3
- H2O: 2.221/0.371 = 5.99 ≈ 6
This gives us the empirical formula of FeCl3·6H2O, which means that there is one mole of iron (Fe), three moles of chlorine (Cl), and six moles of water (H2O) in the compound.
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Given the electrochemical reaction, , what is the value of Ecell at 25 °C if [Mg2+] = 0.100 M and [Cu2+] = 1.75 M?
Half-reaction
E° (V)
+1.40
+1.18
+0.80
+0.54
+0.34
-0.04
-1.66
-2.37
-2.93
+2.75 V, +2.67 V, +2.79 V, -2.00 V, +2.71 V
15.
Which statement about pure water is correct? Pure water does not ionize, pH > pOH, pH = 7 for pure water at any temperature, Kw is always equal to 1.0 × 10-14, OR [H3O+] = [OH-]?
17. The standard cell potential for the reaction is 1.104 V. What is the value of Ecell at 25 °C if [Cu2+] = 0.250 M and [Zn2+] = 1.29 M?
+1.083 V
–1.104 V
+1.104 V
+1.062 V
+1.125 V

Answers

1. The value of Ecell at 25 °C for the given electrochemical reaction, where [Mg²⁺] = 0.100 M and [Cu²⁺] = 1.75 M, is approximately +2.75 V.

15. The value of Ecell at 25 °C for the given electrochemical reaction, where [Mg²⁺] = 0.100 M and [Cu²⁺] = 1.75 M, is approximately +2.75 V.

17. The value of Ecell at 25 °C for the given standard cell potential of 1.104 V, with [Cu²⁺] = 0.250 M and [Zn²⁺] = 1.29 M, is approximately +1.083 V.

1. To calculate the cell potential (Ecell) at 25 °C, we need to use the Nernst equation:

Ecell = E°cell - (RT/nF) * ln(Q)

Given the concentrations of [Mg²⁺] and [Cu²⁺] in the reaction, we can determine the reaction quotient (Q). Since the reaction is not specified, I assume the reduction half-reaction for copper (Cu²⁺ + 2e⁻ → Cu) and the oxidation half-reaction for magnesium (Mg → Mg²⁺ + 2e⁻).

Using the Nernst equation and the given E° values for the half-reactions, we can calculate the value of Ecell:

Ecell = E°cell - (0.0257 V/K * 298 K / 2) * ln([Cu²⁺]/[Mg²⁺])

= 2.75 V - (0.0129 V) * ln(1.75/0.100)

≈ 2.75 V - (0.0129 V) * ln(17.5)

≈ 2.75 V - (0.0129 V) * 2.862

≈ 2.75 V - 0.037 V

≈ 2.713 V

Therefore, the value of Ecell at 25 °C for the given reaction with [Mg²⁺] = 0.100 M and [Cu²⁺] = 1.75 M is approximately +2.75 V.

15. Kw, the ion product of water, represents the equilibrium constant for the autoionization of water: H₂O ⇌ H₃O⁺ + OH⁻. In pure water, at any temperature, the concentration of both H₃O⁺ and OH⁻ ions is equal, and their product (Kw) remains constant.

Kw = [H₃O⁺][OH⁻] = 1.0 × 10⁻¹⁴

This constant value of Kw implies that the product of [H₃O⁺] and [OH-] in pure water is always equal to 1.0 × 10⁻¹⁴ at equilibrium. The pH and pOH of pure water are both equal to 7 (neutral), as the concentration of H₃O⁺ and OH⁻ ions are equal and each is 1.0 × 10⁻⁷ M.

Therefore, the correct statement about pure water is that Kw is always equal to 1.0 × 10⁻¹⁴.

17. Given the reduction half-reaction for copper (Cu²⁺ + 2e⁻ → Cu) and the oxidation half-reaction for zinc (Zn → Zn²⁺ + 2e⁻), the overall reaction can be written as:

Zn(s) + Cu²⁺(aq) → Zn²⁺(aq) + Cu(s)

Using the Nernst equation and the given E°cell value, we can calculate the value of Ecell:

Ecell = E°cell - (0.0257 V/K * 298 K / 2) * ln([Zn²⁺]/[Cu²⁺])

= 1.104 V - (0.0129 V) * ln(1.29/0.250)

≈ 1.104 V - (0.0129 V) * ln(5.16)

≈ 1.104 V - (0.0129 V) * 1.644

≈ 1.104 V - 0.0212 V

≈ 1.083 V

Therefore, the value of Ecell at 25 °C for the given standard cell potential of 1.104 V, with [Cu²⁺] = 0.250 M and [Zn²⁺] = 1.29 M, is approximately +1.083 V.

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identify which ions have noble-gas configurations. check all that apply. s2− co2 ag sn2 zr4

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A noble-gas configuration means that an ion has the same number of electrons in its outermost energy level as a noble gas element. These noble gases are helium, neon, argon, krypton, xenon, and radon.

Let's analyze each ion listed:

- s2−: This ion has gained two electrons and has the same electron configuration as the noble gas element, neon. Therefore, s2− has a noble-gas configuration.

- CO2: This molecule does not have an ion charge, but it has a total of 16 electrons. The electron configuration for carbon is 1s2 2s2 2p2 and for oxygen is 1s2 2s2 2p4. When combined, CO2 has an electron configuration of 1s2 2s2 2p6, which is the same as the noble gas element, neon. Therefore, CO2 has a noble-gas configuration.

- Ag: This element is not an ion but a neutral atom. Its electron configuration is [Kr] 5s1 4d10. The noble gas element before silver in the periodic table is xenon, which has an electron configuration of [Xe] 6s2 4f14 5d10. Since Ag has one electron in its outermost energy level and Xe has two, Ag does not have a noble-gas configuration.

- Sn2−: This ion has gained two electrons and has an electron configuration of [Kr] 5s2 4d10 5p2, which is the same as the noble gas element, xenon. Therefore, Sn2− has a noble-gas configuration.

- Zr4+: This ion has lost four electrons and has an electron configuration of [Kr] 4d2 5s0, which is not a noble-gas configuration.

Therefore, the ions that have noble-gas configurations are s2−, CO2, and Sn2−.

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The ions that have noble-gas configurations are S2-, Ag+, and Zr4+.

Noble-gas configurations refer to the electronic configuration of noble gases, which have complete valence electron shells. Ions that have noble-gas configurations have the same number of electrons as the nearest noble-gas element. To determine which ions have noble-gas configurations, we need to compare the number of electrons in the ion with the number of electrons in the nearest noble-gas element. Among the given ions, S2- has 18 electrons, which is the same as the electron configuration of the nearest noble gas element, argon (Ar). Ag+ has 36 electrons, which is the same as the electron configuration of krypton (Kr), and Zr4+ has 36 electrons, which is also the same as Kr. On the other hand, Co2+ and Sn2+ do not have noble-gas configurations as they do not have the same number of electrons as the nearest noble-gas element.

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1. Using your determined value of Ksp, calculate how many milligrams of Ag2CrO4 will dissolve in 10.0 mL of H2O.
Ksp=8.26*10-11.
2. Use your Ksp and show, by calculation, that Ag2CrO4 should precipitate when 5mL of 0.004M AgNO3 are added to 5mL of 0.0024M K2CrO4.
Ksp=8.26*10-11
Please show work on both.

Answers

1. 0.026 mg of [tex]Ag_2CrO_4[/tex] will dissolve in 10 mL of [tex]H_2O[/tex]. 2. [tex]Ag_2CrO_4[/tex] will precipitate when 5 mL of 0.004M [tex]AgNO_3[/tex] are added to 5 mL of 0.0024M [tex]K_2CrO_4[/tex].


1. To determine how many milligrams of [tex]Ag_2CrO_4[/tex] will dissolve in 10.0 mL of [tex]H_2O[/tex],

we can use the Ksp value of 8.26*10-11.

First, we can calculate the molar solubility of [tex]Ag_2CrO_4[/tex], which is the square root of the Ksp value: √(8.26*10-11) = 9.08*10-6 M.

Then, we can convert the molar solubility to milligrams per milliliter (mg/mL) by multiplying it by the molar mass of [tex]Ag_2CrO_4[/tex] (331.74 g/mol) and dividing by 1000: 9.08*10-6 M * 331.74 g/mol / 1000 mL = 0.00301 mg/mL.

Therefore, 0.00301 mg/mL * 10 mL = 0.0301 mg of [tex]Ag_2CrO_4[/tex] will dissolve in 10 mL of [tex]H_2O[/tex].

2. To determine if [tex]Ag_2CrO_4[/tex] will precipitate when 5 mL of 0.004M [tex]AgNO_3[/tex] are added to 5 mL of 0.0024M K2CrO4,

we can use the Ksp value of 8.26*10-11.

First, we need to calculate the ion product (Qsp) using the concentrations of Ag+ and CrO42- ions:

Qsp = [Ag+]2 [CrO42-] = (0.004 M)2 (0.0024 M) = 3.84*10-8.

Comparing Qsp to Ksp, we can see that Qsp is greater than Ksp, which means that [tex]Ag_2CrO_4[/tex] will precipitate.

Therefore, [tex]Ag_2CrO_4[/tex] will form a yellow precipitate when 5 mL of 0.004M [tex]AgNO_3[/tex] are added to 5 mL of 0.0024M [tex]K_2CrO_4[/tex].

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Using Ksp, solubility of Ag2CrO4 in 10.0 mL H2O is 2.19 x 10^-5 mg. (8.26 x 10^-11 = [Ag+]^2[CrO4^-2], Ag2CrO4 MW= 331.73 g/mol)

Qsp = [Ag+]^2 [CrO4^-2] = 1.67 x 10^-12, Qsp < Ksp, Ag2CrO4 precipitates. (Ksp = 8.26 x 10^-11, AgNO3 + K2CrO4 -> Ag2CrO4↓+ 2KNO3)a

To calculate how many milligrams of Ag2CrO4 will dissolve in 10.0 mL of H2O, we first need to find the molar solubility (S) of the compound. Using the Ksp value of 8.26x10^-11, we can write the expression for the equilibrium constant and solve for S. S = sqrt(Ksp), which gives us S = 9.09x10^-6 M. We can then use the molar mass of Ag2CrO4 (331.74 g/mol) to convert the molar solubility to milligrams of Ag2CrO4 per 10.0 mL of water, giving us 3.01 mg of Ag2CrO4. To show that Ag2CrO4 should precipitate when 5 mL of 0.004 M AgNO3 is added to 5 mL of 0.0024 M K2CrO4, we need to calculate the ion product (IP) and compare it to the Ksp. IP = [Ag+][CrO42-] = (0.004 M)(0.0024 M) = 9.6x10^-6, which is greater than the Ksp value of 8.26x10^-11. Since IP > Ksp, the solution is supersaturated and Ag2CrO4 should precipitate.

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carbon-14 (146c) primarily enters living organisms in the form of _______.

Answers

carbon-14, the longest-lived radioactive isotope of carbon, whose decay allows the accurate dating of archaeological artifacts

The carbon-14 nucleus has six protons and eight neutrons, for an atomic mass of 14. The isotope also is used as a tracer in following the course of particular carbon atoms through chemical or biological transformations. In carbon-14 dating, measurements of the amount of carbon-14 present in an archaeological specimen, such as a tree, are used to estimate the specimen’s age. Carbon-14 present in molecules of atmospheric carbon dioxide enters the biological carbon cycle. Green plants absorb it from the air, and it is then passed on to animals through the food chain.Carbon-14 decays slowly in a living organism, and the amount lost is continually replenished as long as the organism takes in air or food.

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(NH4)2CrO4(aq) mixed with BaCI2(aq)

Write a chemical equation describing the formation of the precipitate, overall equation, and complete ionic equation, and net ionic equation. Identify spectator ions

Answers

The chemical equation for the reaction between (NH4)2CrO4(aq) and BaCl2(aq) can be written as follows (NH4)2CrO4(aq) + BaCl2(aq) → BaCrO4(s) + 2 NH4Cl(aq).

This equation represents a double displacement reaction, where the ammonium chromate (NH4)2CrO4 reacts with barium chloride (BaCl2) to form barium chromate (BaCrO4) as a precipitate, and ammonium chloride (NH4Cl) remains in the solution.

The complete ionic equation breaks down all the soluble ionic compounds into their constituent ions:

2 NH4+(aq) + CrO42-(aq) + Ba2+(aq) + 2 Cl-(aq) → BaCrO4(s) + 2 NH4+(aq) + 2 Cl-(aq)

In the net ionic equation, spectator ions are removed as they do not participate in the actual chemical reaction:

CrO42-(aq) + Ba2+(aq) → BaCrO4(s)

In this net ionic equation, the spectator ions are NH4+ and Cl-. They appear on both sides of the equation and do not undergo any change during the reaction. They are present in the solution but do not contribute to the formation of the precipitate. The formation of the yellow precipitate of barium chromate (BaCrO4) indicates the completion of the reaction.

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which is the best use for a fume hood? f covering volatile compounds g mixing chemicals that release o2 h removing toxic vapors j storing glassware

Answers

The best use for a fume hood is: Removing toxic vapors. The correct option is b.

What is Fume Hood?

A fume hood is a specialized piece of laboratory equipment designed to protect the user and the environment from potentially harmful substances. It achieves this by capturing and removing toxic vapors, gases, and fumes from the air within the hood.

Removing toxic vapors is the primary purpose of a fume hood. It is equipped with an exhaust system that draws air and any hazardous substances away from the user and vents them out of the laboratory, ensuring the air in the workspace remains clean and safe.

Storing glassware (a) does not require the use of a fume hood, as it does not involve the handling or release of toxic substances. Covering volatile compounds (c) may benefit from a fume hood to control and capture any vapors that may be released, but it is not the primary use.

Mixing chemicals that release O₂ (d) does not necessarily require a fume hood unless those chemicals also release toxic vapors or fumes that need to be safely extracted.

In summary, the best use for a fume hood is to remove toxic vapors, safeguarding the health and safety of laboratory personnel and maintaining a controlled working environment. b. is the right option.

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Complete question:

Which is the best use for a fume hood?

a. Storing glassware

b. Removing toxic vapors

c. Covering volatile compounds

d. Mixing chemicals that release O₂

when a solution of lead(ii) nitrate, pb(no3)2, is added to a solution of potassium chloride, kcl, a precipitate forms. a) what are the ions involved in this reaction. ACombinationBDecompositionCDisplacementDDouble displacement

Answers

The ions involved in this reaction are lead(II) ions (Pb2+) and chloride ions (Cl-) from the lead(II) nitrate solution, and potassium ions (K+) and nitrate ions (NO3-) from the potassium chloride solution.

This reaction is a double displacement reaction because the cations and anions of the reactants switch partners to form new compounds (lead chloride and potassium nitrate) that precipitate out of solution.

The main contrast between single displacement reactions and double displacement reactions is that single displacement reactions replace a part of another chemical species.

In a double-replacement process, the negative and positive ions of two ionic compounds switch places to produce two new compounds. The general formula for a double-replacement reaction, often called a double-displacement reaction, is AB+CDAD+CB.

A double displacement reaction occurs when a part of two ionic compounds is switched, resulting in the formation of two new elements. This pattern represents a twofold displacement reaction. Double displacement processes are most prevalent in aqueous solutions where ions precipitate and exchange takes place.

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The binary compound (HnX) of which of the following atoms would you predict has the
lowest boiling point?
a. N
b. Si
c. O
d. S
e. Se

Answers

The one with the lowest boiling point is b. Si.

A chemist mixes 66. g of water with 39. g of acetic acid and 5.1 g of butanoic acid. Calculate the percent by mass of each component of this solution. Round each of your answers to 2 significant digits. component mass percent water 0 % х Х 5 ? acetic acid % butanoic acid A chemist prepares a solution of zinc oxalate (ZC,0) by weighing out 1.79 kg of zinc oxalate into a 100 ml. volumetric flask and filling the Mask to the mark with water Calculate the concentration in g/dl of the chemist's inc oxidate solution. Round your answer to 3 significant digits.

Answers

Answer:  the percent by mass of water, acetic acid, and butanoic acid in the solution are approximately 59.95%, 35.41%, and 4.63%, respectively.

Explanation:

To calculate the percent by mass of each component in the solution, we first need to find the total mass of the solution:

Total mass = mass of water + mass of acetic acid + mass of butanoic acid

Total mass = 66 g + 39 g + 5.1 g

Total mass = 110.1 g

Now we can calculate the percent by mass of each component:

Percent by mass of water = (mass of water / total mass) x 100%

Percent by mass of water = (66 g / 110.1 g) x 100%

Percent by mass of water = 59.95% (rounded to 2 significant digits)

Percent by mass of acetic acid = (mass of acetic acid / total mass) x 100%

Percent by mass of acetic acid = (39 g / 110.1 g) x 100%

Percent by mass of acetic acid = 35.41% (rounded to 2 significant digits)

Percent by mass of butanoic acid = (mass of butanoic acid / total mass) x 100%

Percent by mass of butanoic acid = (5.1 g / 110.1 g) x 100%

Percent by mass of butanoic acid = 4.63% (rounded to 2 significant digits)

Therefore, the percent by mass of water, acetic acid, and butanoic acid in the solution are approximately 59.95%, 35.41%, and 4.63%, respectively.

On paper, draw Lewis structures for the following molecules or polyatomic ions. Show all lone pairs and include any non-zero formal charges. Draw all reasonable resonance structures where appropriate.
SF6, NO2-, C2H3O2- (acetate ion), H3PO4, N2O
Please leave an explanation if possible!

Answers

Lewis structures, also known as Lewis dot structures, are diagrams that show the bonding between atoms and the distribution of valence electrons in a molecule or polyatomic ion.

The Lewis structures for the given molecules and polyatomic ions, along with their resonance structures where applicable:

[tex]SF_6[/tex]:

Sulfur hexafluoride ([tex]SF_6[/tex]) has 6 fluorine atoms bonded to a central sulfur atom. To draw the Lewis structure, we first add up the valence electrons of all atoms in the molecule:

6 (F) + 1 (S) = 7 valence electrons

The Lewis structure of [tex]SF_6[/tex] is:

   F     F

    \   /

     S= F

    /   \

   F     F

The Lewis structures for the given molecules and polyatomic ions, along with their resonance structures where applicable:

[tex]SF_6[/tex]:

Sulfur hexafluoride ([tex]SF_6[/tex]) has 6 fluorine atoms bonded to a central sulfur atom. To draw the Lewis structure, we first add up the valence electrons of all atoms in the molecule:

6 (F) + 1 (S) = 7 valence electrons

The Lewis structure of [tex]SF_6[/tex] is:

   F     F

    \   /

     S= F

    /   \

   F     F

Each of the six fluorine atoms is singly bonded to the central sulfur atom, which has six valence electrons. The sulfur atom also has two lone pairs of electrons, one above and one below the plane of the molecule, making its electron geometry octahedral.

[tex]NO_2^-[/tex]:

The nitrite ion ([tex]NO_2^-[/tex]) has a central nitrogen atom bonded to two oxygen atoms and carrying a negative charge. To draw the Lewis structure, we first add up the valence electrons of all atoms in the ion:

5 (N) + 2(2 x O) + 1 (extra electron) = 18 valence electrons

The Lewis structure of [tex]NO_2^-[/tex] is:

      O

      |

   O = N

      |

      O (-)

The nitrogen atom is double-bonded to one of the oxygen atoms and single-bonded to the other, with a lone pair of electrons on the nitrogen atom. The extra electron gives the ion a negative charge, which is placed on the oxygen atom to minimize formal charge. This structure has resonance, as shown below:

      O

      ||

   O = N

      |

      O (-)

In this resonance structure, the double bond is between the nitrogen and the other oxygen atom. Both structures contribute to the overall stability of the ion.

[tex]C_2H_3O_2^-[/tex] (acetate ion):

The acetate ion ([tex]C_2H_3O_2^-[/tex]) has a central carbon atom bonded to two oxygen atoms and one hydrogen atom, with an overall negative charge. To draw the Lewis structure, we first add up the valence electrons of all atoms in the ion:

2 (C) + 3 (H) + 2(2 x O) + 1 (extra electron) = 12 valence electrons

The Lewis structure of [tex]C_2H_3O_2^-[/tex] is:

     O (-)

      |

   O = C - H

      |

      O

The carbon atom is double-bonded to one of the oxygen atoms and single-bonded to the other, with a lone pair of electrons on the carbon atom. The extra electron gives the ion a negative charge, which is placed on the oxygen atom to minimize formal charge.

[tex]H_3PO_4[/tex]:

Phosphoric acid ([tex]H_3PO_4[/tex]) has a central phosphorus atom bonded to four oxygen atoms and three hydrogen atoms. To draw the Lewis structure, we first add up the valence electrons of all atoms in the molecule:

1 (P) + 3 (H) + 4(2 x O) = 16 valence electrons

The Lewis structure of[tex]H_3PO_4[/tex] is:

     H     H

      |    |

   H--P----O

      |    |

      O    O

[tex]N_2O[/tex]:

   O(-1)

    |

N == N

    |

   O

Dinitrogen monoxide ([tex]N_2O[/tex]) has two nitrogen atoms bonded to one oxygen atom. Each nitrogen has five valence electrons and the oxygen has six, so a total of 16 electrons are needed to form the Lewis structure. One nitrogen forms a triple bond with the oxygen, and the other nitrogen forms a single bond with the same oxygen. The negative charge is on the oxygen. The molecule has a resonance structure where the single bond can switch between the two nitrogen atoms.

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