A mixture of three gases has a total pressure of 94. 5 kPa. If the partial pressure of


the 1st gas is 65. 4 kPa and the partial pressure of the 2nd gas is 22. 4 kPa, what is the


partial pressure of the 3rd gas of the mixture?

The stability of diatomic species depends on various factors such as electron affinity and ionization energy. N2- and CN- would be stabilized by the addition of an electron, while F2+ and C2+ would be stabilized by the removal of an electron.

Chemical reactions involve the formation and breaking of bonds between molecules. The stability of a molecule is determined by the number and arrangement of its electrons. Some chemical reactions proceed by the loss or transfer of an electron to a diatomic species. In this context, we can consider the stability of diatomic species N2, NO, O2, C2, F2, and CN.
(a) The addition of an electron to form AB- would stabilize the diatomic species that has a higher electron affinity, i.e., the tendency to attract an electron. Among the given molecules, N2 and CN have the highest electron affinity. Therefore, we can expect N2- and CN- to be more stable.
(b) The removal of an electron to form AB+ would stabilize the diatomic species that has a lower ionization energy, i.e., the energy required to remove an electron. Among the given molecules, F2 and C2 have the lowest ionization energy. Therefore, we can expect F2+ and C2+ to be more stable.

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To draw a stepwise mechanism for the conversion of hex-5-en-1-ol to the cyclic ether, follow these steps:

1. Begin with hex-5-en-1-ol, which has a double bond between carbons 5 and 6, and a hydroxyl group on carbon 1.

2. Utilize an acid-catalyzed intramolecular SN2 reaction. Introduce a catalytic amount of a strong acid, such as H2SO4, which protonates the hydroxyl group on carbon 1, forming a good leaving group (H2O).

3. The negatively charged oxygen from the hydroxyl group attacks the adjacent carbon 5 of the double bond, which forms a 5-membered cyclic ether and a tertiary carbocation on carbon 6.

4. The positively charged carbon 6 gains a hydrogen atom from the surrounding solvent or acid, regenerating the acid catalyst and restoring neutral charge. Following these steps will give you the cyclic ether product from hex-5-en-1-ol.

Carbon is a chemical element with the symbol C and atomic number 6. It is a nonmetal and is tetravalent—its atoms make four electrons available to form covalent chemical bonds. It is in group 14 of the periodic table. Carbon only makes up about 0.025 percent of the Earth's crust.

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The pH of the half way point is approximately 1.59 (rounded to two significant figures).

The reaction between HF and NaOH is:

HF + NaOH → NaF + H₂O

At the half-equivalence point, half of the HF has reacted with NaOH to form NaF, and the other half remains as HF. This means that the moles of NaOH added is equal to the moles of HF consumed.

The initial moles of HF in the solution is:

0.10 mol/L × 0.50 L = 0.050 mol

At the half-equivalence point, 0.025 moles of NaOH has been added, which reacts with 0.025 moles of HF.

The moles of HF remaining in the solution is:

0.050 mol - 0.025 mol = 0.025 mol

The concentration of HF remaining in solution is:

0.025 mol / 0.25 L = 0.10 M

The dissociation of HF in water is:

HF + H2O ↔ H3O+ + F-

The Ka expression for HF is:

Ka = [H3O+][F-] / [HF]

Assuming x is the concentration of H₃O+ and F-, and the initial concentration of HF is equal to its concentration at the half-equivalence point, we can write the equilibrium expression for HF as:

Ka = x^2 / (0.10 - x)

At the half-equivalence point, the concentration of HF remaining in solution is 0.10 M.

Therefore, we can simplify the equation to:

Ka = x^2 / (0.10 - x) ≈ x^2 / 0.10

Solving for x gives:

x = sqrt(Ka × [HF]) = sqrt(6.8 × 10^-4 × 0.10) ≈ 0.026

The pH at the half-equivalence point can be calculated from the concentration of H₃O+:

pH = -log[H₃O+] = -log(0.026) ≈ 1.59

Therefore, the pH of the half way point is approximately 1.59 (rounded to two significant figures).

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The pH of the solution is approximately 1.22 when rounded to two decimal places.

To find the pH of the solution, we need to use the concentration of the HNO3 and the volume of the solution. First, we need to calculate the new concentration of the solution after it has been diluted. We can use the equation: C1V1 = C2V2
Where C1 is the initial concentration, V1 is the initial volume, C2 is the final concentration, and V2 is the final volume.

To calculate the pH of the diluted solution, first determine the moles of HNO3 present, then calculate the concentration of HNO3 in the diluted solution, and finally use the pH formula.
1. Moles of HNO3 = (Volume × Concentration)
Moles of HNO3 = (15.0 mL × 4.00 M HNO3) × (1 L / 1000 mL) = 0.060 moles HNO3
2. Concentration of HNO3 in the diluted solution:
New concentration = Moles of HNO3 / New volume
New concentration = 0.060 moles / 1.00 L = 0.060 M
3. Calculate pH using the formula: pH = -log[H+]
Since HNO3 is a strong acid, it dissociates completely in water, so [H+] = [HNO3]. Therefore:
pH = -log(0.060)

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The heat capacity of the object is approximately 4.16 J/g°C.

To calculate the heat capacity of the object, we need to use the formula:

Q = m × c × ΔT

where Q is the amount of heat absorbed, m is the mass of the object, c is its specific heat capacity, and ΔT is the change in temperature.

In this case, we are given that the temperature of the object increases by 29.8 °C when it absorbs 3803 J of heat. We don't know the mass of the object, but we can assume that it is constant. Therefore, we can rewrite the formula as:

c = Q / (m × ΔT)

Substituting the given values, we get:

c = 3803 J / (m × 29.8 °C)

However, we can rearrange the formula to solve for the mass instead:

m = Q / (c × ΔT)

Substituting the given values, we get:

m = 3803 J / (c × 29.8 °C)

Now we need to know the value of c. This will depend on the material and physical properties of the object. For example, the specific heat capacity of water is 4.18 J/g°C, while the specific heat capacity of aluminum is 0.9 J/g°C. Once we know the material, we can look up its specific heat capacity or use experimental data to determine it.

Let's assume that the object is made of water, so c = 4.18 J/g°C. Substituting this value, we get:

m = 3803 J / (4.18 J/g°C × 29.8 °C) ≈ 28.5 g

Therefore, the heat capacity of the object is: c = 3803 J / (28.5 g × 29.8 °C) ≈ 4.16 J/g°C

Note that the units of heat capacity are J/g°C, which means the amount of heat required to raise the temperature of 1 gram of the material by 1 degree Celsius.

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If 2.6 mol of [tex]N_{2}H_{4}[/tex] is completely decomposed, 88.46 grams of [tex]NH_{3}[/tex] will be produced.

The balanced chemical equation for the decomposition of [tex]N_{2}H_{4}[/tex] is: [tex]N_{2}H_{4}[/tex] (l) → 2 [tex]NH_{3}[/tex] (g) + N2 (g)

According to the equation, 1 mole of [tex]N_{2}H_{4}[/tex] produces 2 moles of [tex]NH_{3}[/tex]. Therefore, 2.6 mol [tex]N_{2}H_{4}[/tex] will produce 2 x 2.6 = 5.2 mol [tex]NH_{3}[/tex].

To convert moles of [tex]NH_{3}[/tex] to grams, we need to use the molar mass of [tex]NH_{3}[/tex], which is 17.03 g/mol.

mass of [tex]NH_{3}[/tex] = number of moles of [tex]NH_{3}[/tex] x molar mass of [tex]NH_{3}[/tex]

mass of [tex]NH_{3}[/tex] = 5.2 mol x 17.03 g/mol = 88.46 g

Therefore, if 2.6 mol of [tex]N_{2}H_{4}[/tex] is completely decomposed, 88.46 grams of [tex]NH_{3}[/tex] will be produced.

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Ba(oh)₂ is a Brønsted-Lowry base because it can accept protons. In the Brønsted-Lowry acid-base theory, an acid is a substance that donates a proton (H+) and a base is a substance that accepts a proton.

Ba(oh)₂ has two hydroxide ions (OH-) which are capable of accepting protons, making it a base. The other options (a, b, and d) do not provide an adequate explanation for why Ba(oh)₂ is a Brønsted-Lowry base.

According to the Brønsted-Lowry definition, a base is a substance that can accept a proton (H⁺) from another substance. Ba(OH)₂ is a base because it has hydroxide ions (OH⁻) that can accept a proton (H⁺) from an acid to form water (H₂O). This process is represented by the following equation, Ba(OH)₂ + H⁺ → Ba(OH)⁺ + H₂O

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To answer this question, we can use the relationship between enthalpy and equilibrium constant:

ΔG = -RTlnK

where ΔG is the change in Gibbs free energy, R is the gas constant, T is the temperature in Kelvin, and K is the equilibrium constant.

We can relate ΔH to ΔG using the equation:

ΔG = ΔH - TΔS

where ΔS is the change in entropy. At equilibrium, ΔG = 0, so we can rearrange the equation to solve for the equilibrium constant:

ΔH = -TΔS

ΔS = -ΔH/T

ΔG = ΔH - TΔS = ΔH - ΔH = 0

Therefore:

ΔH = -RTlnK

-lnK = ΔH/(RT)

lnK = -ΔH/(RT)

K = e^(-ΔH/(RT))

Now we can plug in the values given in the question:

ΔH = -24.8 kJ/mol
T = 298 K
R = 8.314 J/(mol·K)

K = e^(-(-24.8 kJ/mol)/(8.314 J/(mol·K) × 298 K))

K = 3.1 × 10^3

Therefore, the equilibrium constant for the reaction is 3.1 × 10^3.

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The percent oxygen in limestone is 48% and the percent carbon is 12%.

To find the percent oxygen and carbon in limestone, we need to use the formula:
% element = (mass of element / total mass of compound) x 100%
First, we need to calculate the mass of calcium in the sample:
Mass of calcium = total mass of compound - mass of oxygen - mass of carbon
Mass of calcium = 3.75 g - 1.80 g - 0.450 g
Mass of calcium = 2.52 g
Now we can calculate the percent oxygen:
% O = (1.80 g / 3.75 g) x 100%
% O = 48%
And the percent carbon:
% C = (0.450 g / 3.75 g) x 100%
% C = 12%
Therefore, the percent oxygen in limestone is 48% and the percent carbon is 12%.
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The reaction can be written as:2Cr3+ (aq) + 7H2O2 (aq) + 6OH- (aq) → 2CrO42- (s) + 14H2O (l) this method is less commonly used because of the environmental hazards associated with the use.

Chromium can be precipitated from an aqueous solution in a two-step process as follows:

Step 1: Chromium(III) hydroxide, Cr(OH)3, is formed by adding a base, such as sodium hydroxide, NaOH, or ammonium hydroxide, NH4OH, to the solution containing the chromium ions. The reaction can be written as:

Cr3+ (aq) + 3OH- (aq) → Cr(OH)3 (s)

Step 2: The precipitated chromium(III) hydroxide is then converted to the oxide, Cr2O3, by heating in air at high temperature:

2Cr(OH)3 (s) → Cr2O3 (s) + 3H2O (g)

The reaction can also be carried out in a single step by adding a strong oxidizing agent, such as hydrogen peroxide, H2O2, to the solution containing the chromium ions. The oxidizing agent converts the chromium ions to the hexavalent form, Cr(VI), which can then be precipitated as the insoluble chromate, CrO42-. The reaction can be written as:

2Cr3+ (aq) + 7H2O2 (aq) + 6OH- (aq) → 2CrO42- (s) + 14H2O (l)

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The [tex]G^\circ_{\text{rxn}}[/tex] for the given reaction is -560.1 kJ/mol. The calculation involves converting H and S to kJ/mol and using the equation [tex]G^\circ_{\text{rxn}}[/tex] = [tex]H^\circ_{\text{rxn}} - T \cdot S^\circ_{\text{rxn}}[/tex] where T is the temperature in Kelvin.

To calculate the standard Gibbs free energy change ([tex]G_{\text{rxn}}[/tex]) for the given reaction, use the equation:

[tex]G_{\text{rxn}} = H_{\text{rxn}} - T \cdot S_{\text{rxn}}[/tex]

where [tex]H^\circ_{\text{rxn}}[/tex] and [tex]S^\circ_{\text{rxn}}[/tex] are the standard enthalpy and entropy changes, respectively, and T is the temperature in Kelvin.

First, convert the given enthalpy and entropy changes to units of kJ/mol:

[tex]H_{\text{rxn}} = -133.9 \, \text{kJ/mol} + 50.6 \, \text{kJ/mol} - 285.8 \, \text{kJ/mol} = -369.1 \, \text{kJ/mol}[/tex]

[tex]S_{\text{rxn}} = 266.9 \, \text{J/mol} \cdot \text{K} + 121.2 \, \text{J/mol} \cdot \text{K} + 191.6 \, \text{J/mol} \cdot \text{K} + 70.0 \, \text{J/mol} \cdot \text{K} = 649.7 \, \text{J/mol} \cdot \text{K} = 0.6497 \, \text{kJ/mol} \cdot \text{K}[/tex]

Next, determine the temperature of the reaction. If the temperature is not given, assume it is at standard conditions of 298 K.

Using the given values, we get:

[tex]\Delta G_{\text{rxn}} = (-369.1 \, \text{kJ/mol}) - (298 \, \text{K})(0.6497 \, \text{kJ/mol} \cdot \text{K}) = -560.1 \, \text{kJ/mol}[/tex]

Therefore, the standard Gibbs free energy change for the reaction is -560.1 kJ/mol.

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The solubility of SbOCl in water is relatively low, and the concentration of the product is not high enough to form a visible precipitate due to which the solution of antimony(iii) chloride have no visible precipitate in it.

Although the equilibrium equation shows that SbCl3 reacts with water to form insoluble SbOCl, the solution of antimony(III) chloride has no visible precipitate in it due to several reasons. Firstly, the solubility of SbOCl in water is relatively low, and the concentration of the product is not high enough to form a visible precipitate.

Additionally, the formation of SbOCl depends on the concentration of hydroxide ions, which may not be present in sufficient quantities to drive the reaction to completion. Furthermore, SbCl₃ can exist in different forms, including monomers, dimers, and trimers, which can affect its solubility in water.

Finally, the presence of other ions in the solution, such as chloride or hydrogen ions, can also affect the solubility of SbOCl. Overall, these factors can contribute to the absence of a visible precipitate in the solution of antimony(III) chloride.

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The emf of this concentration cell is -0.076 V.The emf of a concentration cell can be calculated using the Nernst equation. In this case, the cell has two half-cells, one with a higher concentration of Mg2+ ions and the other with a lower concentration.

The Mg2+ ions will move from the higher to lower concentration side to balance the concentration gradient, creating a potential difference between the two electrodes.

Using the Nernst equation, we can calculate the emf of this concentration cell:

emf = E°cell - (RT/nF)ln(Q)

where E°cell is the standard cell potential, R is the gas constant, T is the temperature, n is the number of electrons transferred, F is Faraday's constant, and Q is the reaction quotient.

For this concentration cell, the standard cell potential is 0.00 V (since both electrodes are made of the same metal), n is 2 (since Mg2+ gains 2 electrons to form Mg), and Q can be calculated using the concentrations given:

Q = [Mg2+ (0.70 M)] / [Mg2+ (0.32 M)] = 2.19

Plugging in the values and solving for emf, we get:

emf = 0.00 V - (0.0257 V/K)(298 K/2)(ln 2.19) = -0.076 V

Therefore, the emf of this concentration cell is -0.076 V.

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ΔS°rxn = 127.1 J/(mol·K), ΔG°rxn = -16.7 kJ/mol

To calculate the standard entropy change, ΔS°rxn, we use the standard molar entropies of the reactants and products. ΔS°rxn = ΣS°(products) - ΣS°(reactants). The standard enthalpy of the reaction, ΔH°rxn, is given as -44.2 kJ/mol. From these values, we can calculate the standard Gibbs free energy of the reaction, ΔG°rxn = ΔH°rxn - TΔS°rxn, where T is the temperature in Kelvin (25°C = 298 K).

Therefore, ΔS°rxn = 127.1 J/(mol·K) and ΔG°rxn = -44.2 kJ/mol - (298 K) * (127.1 J/(mol·K)) = -16.7 kJ/mol. The negative value of ΔG°rxn indicates that the reaction is spontaneous and thermodynamically favorable under standard conditions at 25°C.

In summary, the standard entropy change of the reaction is positive, indicating an increase in the disorder of the system. The standard Gibbs free energy change is negative, indicating that the reaction is spontaneous and thermodynamically favorable.

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Answer:The parent nuclide that initially underwent decay to form Lead-210 is Polonium-218.

Explanation: Polonium-218 undergoes a series of decays in which it emits two alpha-particles and two beta-particles, resulting in the formation of Lead-210. The decay series is as follows:

Polonium-218 → (alpha decay) → Lead-214 → (beta decay) → Bismuth-214 → (alpha decay) → Polonium-210 → (alpha decay) → Lead-206 → (beta decay) → Bismuth-206 → (beta decay) → Polonium-206 → (alpha decay) → Lead-202 → (beta decay) → Thallium-202 → (beta decay) → Lead-202 → (alpha decay) → Mercury-198 → (beta decay) → Gold-198 → (beta decay) → Mercury-198 → (alpha decay) → Lead-194 → (beta decay) → Bismuth-194 → (beta decay) → Polonium-194 → (alpha decay) → Lead-190 → (beta decay) → Bismuth-190 → (alpha decay) → Thallium-186 → (beta decay) → Lead-186 → (beta decay) → Bismuth-186 → (beta decay) → Polonium-186 → (alpha decay) → Lead-182 → (beta decay) → Bismuth-182 → (alpha decay) → Thallium-178 → (beta decay) → Lead-178 → (alpha decay) → Polonium-174 → (alpha decay) → Lead-170 → (beta decay) → Bismuth-170 → (beta decay) → Polonium-170 → (alpha decay) → Lead-166 → (beta decay) → Bismuth-166 → (beta decay) → Polonium-166 → (alpha decay) → Lead-162 → (beta decay) → Bismuth-162 → (alpha decay) → Thallium-158 → (beta decay) → Lead-158 → (beta decay) → Bismuth-158 → (beta decay) → Polonium-158 → (alpha decay) → Lead-154 → (beta decay) → Bismuth-154 → (alpha decay) → Thallium-150 → (beta decay) → Lead-150 → (alpha decay) → Polonium-146 → (alpha decay) → Lead-142 → (beta decay) → Bismuth-142 → (beta decay) → Polonium-142 → (alpha decay) → Lead-138 → (beta decay) → Bismuth-138 → (beta decay) → Polonium-138 → (alpha decay) → Lead-134 → (beta decay) → Bismuth-134 → (alpha decay) → Thallium-130 → (beta decay) → Lead-130 → (beta decay) → Bismuth-130 → (beta decay) → Polonium-130 → (alpha decay) → Lead-126 → (beta decay) → Bismuth-126 → (alpha decay) → Thallium-122 → (beta decay) → Lead-122 → (beta decay) → Bismuth-122 → (beta decay) → Polonium-122 → (alpha decay) → Lead-118 → (beta decay) → Bismuth-118 → (alpha decay) → Thallium-114 → (beta decay) → Lead-114 → (alpha decay) → Polonium-110 → (alpha decay) → Lead-106 → (beta decay) → Bismuth-106 → (beta decay) → Polonium-106 → (alpha decay) → Lead-102 →

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Atoms of selenium (Se) with six electrons in its outer orbit will tend to form negatively charged ions. The ionic charge of the ions formed by selenium will be -2.

Selenium belongs to Group 16 of the periodic table, also known as the oxygen family or chalcogens. Elements in this group typically have six valence electrons. Valence electrons are the electrons in the outermost energy level of an atom, and they play a significant role in determining the reactivity and chemical behavior of an element.

To achieve a stable electron configuration, atoms of selenium will gain two electrons to fill their outer orbit and achieve a full valence shell of eight electrons. By gaining two electrons, selenium will form negatively charged ions. The ionic charge of these ions will be -2, indicating an excess of two electrons compared to the number of protons in the nucleus.

It is important to note that the tendency to form ions and the resulting ionic charge depend on the number of valence electrons and the octet rule, which states that atoms tend to gain, lose, or share electrons to achieve a stable electron configuration with eight valence electrons (except for hydrogen and helium, which follow the duet rule).

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The mass of KCl needed to prepare 1000 ml of a 1.50 M solution is 173.65 grams.

To compute the mass of KCl needed, we need to use the formula:
mass (in grams) = moles x molar mass
First, we need to calculate the number of moles of KCl required for a 1.50 M solution:
1.50 mol/L x 1 L = 1.50 moles
The molar mass of KCl is 74.55 g/mol.

Using this information, we can calculate the mass of KCl needed:
mass = 1.50 moles x 74.55 g/mol = 173.65 grams
Therefore, 173.65 grams of KCl is required to prepare 1000 ml of a 1.50 M solution.

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To find final pressure of a system, we'll use Boyle's Law, which states that the product of the initial pressure and volume (P1V1) is equal to the product of the final pressure and volume (P2V2) for a given amount of gas at a constant temperature. final pressure of system is approximately 0.39 atm

Given information: Initial pressure (P1) = 1.25 atm, Initial volume (V1) = 0.75 L, Final volume (V2) = 2.4 L. We need to find the final pressure (P2). According to Boyle's Law: P1V1 = P2V2, Substitute the given values: (1.25 atm)(0.75 L) = P2(2.4 L)

It's important to note that the temperature of the gas was not given, but we assumed that it remained constant throughout the process since Boyle's law only applies to constant temperature conditions.Now, we can solve for P2:
P2 = (1.25 atm)(0.75 L) / (2.4 L)
P2 ≈ 0.39 atm

So, the final pressure of the system is approximately 0.39 atm. This result demonstrates the inverse relationship between pressure and volume, meaning that as the volume of a gas increases, its pressure decreases, provided the temperature and the amount of gas remain constant.

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The electronic transition in a hydrogen atom that is associated with the largest emission of energy is from n = 2 to n = 1.

This is because the energy difference between these two energy levels is the largest, and as the electron transitions from a higher energy level (n = 2) to a lower energy level (n = 1), it releases energy in the form of a photon. This is known as the Lyman series of spectral lines, and the wavelength of the emitted photon can be found using the Rydberg equation. This information can be found on a data sheet or periodic table that includes the energy levels and wavelengths of hydrogen's spectral lines.

The hydrogen atom is the simplest and most well-known atomic system in physics and chemistry. It consists of a single proton in the nucleus and a single electron orbiting around the nucleus. The hydrogen atom is the basis for understanding many principles of atomic and molecular physics, such as electronic structure, spectroscopy, and chemical bonding.

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The reagents that can oxidize VO^2+ to VO^2+ but not oxidize Pb^2+ to PbO2 under standard conditions in an acidic solution are Cr2O7^2-, Ag^+, and Co^3+.

To find a reagent that can oxidize VO^2+ to VO^2+ but not oxidize Pb^2+ to PbO2, we need to compare their standard reduction potentials.

From the Standard Reduction Potentials table, we have:

VO^2+ + H2O + 2e^- -> VO^2+ + 2OH^-; E° = +0.34V

Pb^2+ + 2e^- -> Pb; E° = -0.13V

We need a reagent that has a reduction potential between these two values. From the options given, the following have reduction potentials in the required range:

Cr2O7^2- + 14H^+ + 6e^- -> 2Cr^3+ + 7H2O; E° = +1.33V

Ag^+ + e^- -> Ag; E° = +0.80V

Co^3+ + e^- -> Co^2+; E° = +1.82V

Therefore, the reagents that can oxidize VO^2+ to VO^2+ but not oxidize Pb^2+ to PbO2 under standard conditions in an acidic solution are Cr2O7^2-, Ag^+, and Co^3+.

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The concentration of sodium ions in 0.300 M NaNO₃ is also 0.300 M.

NaNO₃ dissociates in water to give Na+ and NO₃- ions. Since NaNO₃ is a strong electrolyte, it completely dissociates into ions.

0.300 M NaNO₃ means that there are 0.300 moles of NaNO₃ in 1 liter of solution. Each mole of NaNO₃ dissociates into 1 mole of Na+ ions and 1 mole of NO₃- ions.

Therefore, the concentration of Na+ ions is also 0.300 M. This means that there are 0.300 moles of Na+ ions in 1 liter of solution. The concentration of Na+ ions and NaNO₃ is the same because Na+ ions come from NaNO₃.

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We need to identify the limiting reactant, which is the reactant that is completely consumed and determines the maximum amount of product that can be formed, we found the maximum amount of Chromium (III) Phosphate formed is 107.35 g.

First, we need to calculate the number of moles for each reactant. The molar mass of Chromium (Cr) is 52 g/mol, and the molar mass of Phosphoric acid (H3PO4) is 98 g/mol.

Number of moles of Chromium = 25.0 g / 52 g/mol = 0.481 moles

Number of moles of Phosphoric acid = 57.0 g / 98 g/mol = 0.581 moles

Next, we determine the stoichiometric ratio between Chromium (III) Phosphate (CrPO4) and the reactants from the balanced equation. The balanced equation is: 3Cr + 2H3PO4 → CrPO4 + 3H2

From the equation, we can see that 3 moles of Chromium (Cr) react with 2 moles of Phosphoric acid (H3PO4) to form 1 mole of Chromium (III) Phosphate (CrPO4). Comparing the moles of reactants to the stoichiometric ratio, we find that 0.481 moles of Chromium is less than the required 1 mole of Chromium for the reaction. Therefore, Chromium is the limiting reactant.

Since 1 mole of Chromium (III) Phosphate has a molar mass of 107.35 g, the maximum amount of Chromium (III) Phosphate formed is 107.35 g.

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To determine the limiting reagent of the given reaction, we need to compare the amounts of each reactant and their respective stoichiometric coefficients. One is present in a smaller amount

The reactant that is completely consumed and limits the amount of product that can be formed is the limiting reagent.In this case, we have 76.4 g of C2H3Br3 and 49.1 g of O2. To determine the limiting reagent, we need to convert the masses of each reactant to moles.

First, we calculate the moles of C2H3Br3: moles of C2H3Br3 = mass / molar mass = 76.4 g / (molar mass of C2H3Br3)

Next, we calculate the moles of O2:

moles of O2 = mass / molar mass = 49.1 g / (molar mass of O2)

Now, we compare the moles of each reactant to their stoichiometric coefficients in the balanced equation. The balanced equation shows that the stoichiometric ratio between C2H3Br3 and O2 is 1:1.

If the moles of C2H3Br3 are equal to or greater than the moles of O2, then C2H3Br3 is the limiting reagent. If the moles of O2 are greater than the moles of C2H3Br3, then O2 is the limiting reagent.

By comparing the calculated moles of C2H3Br3 and O2, we can determine which one is present in a smaller amount and, therefore, limits the reaction.

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The TRUE statement is: A basic solution has [H3O+] < [OH-].

In aqueous solutions, the concentration of hydrogen ions (H+) and hydroxide ions (OH-) determines whether the solution is acidic, neutral or basic. An acid solution has a higher concentration of H+ ions than OH- ions, while a basic solution has a higher concentration of OH- ions than H+ ions. In a neutral solution, the concentration of H+ ions and OH- ions are equal.

The pH of a solution is a measure of the concentration of H+ ions. A pH value of 7 is considered neutral, while a pH value less than 7 is considered acidic and a pH value greater than 7 is considered basic.

In a basic solution, the concentration of OH- ions is higher than the concentration of H+ ions. This means that the concentration of H3O+ ions (which are formed when water molecules combine with H+ ions) will be lower than the concentration of OH- ions. Therefore, the statement "A basic solution has [H3O+] < [OH-]" is true.

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At 50C, the water molecules that evaporate from an open dish:

4. Return to the surface as frequently as others escape from the liquid

5. Have more kinetic energy per molecule than those remaining in the liquid

At 50°C, when water molecules evaporate from an open dish, the process involves several aspects related to the behavior of the molecules. First and foremost, the water molecules that evaporate have more kinetic energy per molecule than those remaining in the liquid. This is because the higher kinetic energy allows them to overcome the attractive forces between the molecules and escape into the vapor phase.

As these high-energy molecules leave the liquid, the average kinetic energy of the remaining water molecules decreases, causing the remaining water to become cooler, not warmer. The evaporation process acts as a cooling mechanism for the liquid.

It is also important to note that the water molecules that evaporate are not broken down into their constituent elements, oxygen and hydrogen. Instead, they remain as intact H2O molecules in the vapor phase.

Additionally, the process does not involve the formation of bubbles of vapor that rise through the liquid. This phenomenon is observed during boiling, which is distinct from evaporation.

Finally, the water molecules in the vapor phase return to the liquid surface as frequently as others escape from the liquid, maintaining a dynamic equilibrium between the two phases. This constant exchange of molecules ensures that the system stays in balance.

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The calculated number of oxygen molecules is approximately 9.888 × [tex]10^2^5[/tex] molecules, which does not match any of the given options (None of the options are right).

To determine the number of oxygen molecules in the given sample, we can use the ideal gas law equation:

PV = nRT

Where:

P = pressure = 800.0 torr

V = volume = 4.50 L

n = number of moles

R = ideal gas constant = 0.0821 L·atm/(mol·K)

T = temperature = 27°C = 300 K (converted to Kelvin)

We can find n by rearranging the equation:

n = PV / RT

Substituting the given values:

n = (800.0 torr) * (4.50 L) / (0.0821 L·atm/(mol·K)) * (300 K)

Simplifying:

n ≈ 164.2 mol

To convert from moles to molecules, we can use Avogadro's number, which states that there are 6.022 × [tex]10^2^3[/tex]  molecules in one mole.

The amount of moles is multiplied by Avogadro's number:

Number of molecules = (164.2 mol) * (6.022 ×[tex]10^2^3[/tex] molecules/mol)

Number of molecules ≈ 9.888 × [tex]10^2^5[/tex] molecules

None of the given options match the calculated value. Option e is the proper response as a result.

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C) The sample of oxygen gas contains [tex]1.16 x 10^23[/tex] oxygen molecules.

To determine the number of oxygen molecules in the given sample, we need to use the ideal gas law equation, PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature in Kelvin. Rearranging the equation to solve for n, we get n = (PV)/(RT). Using the given values and converting temperature to Kelvin, we get n = (800.0 torr x 4.50 L)/[(0.08206 L·atm/mol·K) x (27°C + 273.15)] = 0.1826 moles of oxygen. Finally, we can use Avogadro's number[tex](6.02 x 10^23 molecules/mol)[/tex]  to convert moles to molecules and get the answer, which is [tex]1.16 x 10^23[/tex] oxygen molecules. Therefore, the correct answer is an option [C].

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The equilibrium constant for this reaction at 297.0 K is approximately 2.98 x 10^6.

For the reaction 3Fe2O3(s) + H2(g) = 2Fe3O4(s) + H2O(g), we can determine the equilibrium constant at 297.0 K using the given values for the enthalpy change (H°) and the entropy change (S°). We can use the Gibbs free energy equation to find the equilibrium constant:
ΔG° = ΔH° - TΔS°
where ΔG° is the Gibbs free energy change, ΔH° is the enthalpy change, T is the temperature in Kelvin, and ΔS° is the entropy change. At equilibrium, ΔG° = 0, so we can solve for the equilibrium constant (K) using:
0 = ΔH° - TΔS°
ΔH° = TΔS°
K = e^(-ΔG°/RT)
Using the given values, ΔH° = -6.0 kJ = -6000 J and ΔS° = 88.7 J/K. The temperature is given as 297.0 K. We can now calculate ΔG°:
ΔG° = -6000 J - (297.0 K)(88.7 J/K) = -6000 J - 26335.9 J = -32335.9 J
Now, we can find the equilibrium constant K using the equation K = e^(-ΔG°/RT), where R is the ideal gas constant (8.314 J/mol K):
K = e^(-(-32335.9 J)/[(8.314 J/mol K)(297.0 K)]) = e^(32335.9 J / 2467.938 J) ≈ 2.98 x 10^6
Thus, the equilibrium constant for this reaction at 297.0 K is approximately 2.98 x 10^6.

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The substances hydrochloric acid, a strong acid contains ions, Sodium citrate, a soluble salt contains ions,  Acetic acid, a weak acid contains both ions and molecules, Ethanol, a nonelectrolyte contains only molecules.

Hydrochloric acid, a strong acid, ionizes completely in water to form H⁺ and Cl⁻ ions. So, the solution of hydrochloric acid contains ions.

Sodium citrate, a soluble salt, dissociates into Na⁺ and citrate ions in water. So, the solution of sodium citrate contains ions.

Acetic acid, a weak acid, partially dissociates into H⁺ and acetate ions in water. So, the solution of acetic acid contains both ions and molecules.

Ethanol, a nonelectrolyte, does not dissociate into ions in water. So, the solution of ethanol contains only molecules.

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The wide diversity of minerals can be attributed to the vast array of elements that make up minerals and the numerous Earth processes that form minerals.

The Earth's crust contains a variety of elements that can combine in countless ways to form minerals. Elements that commonly form minerals include silicon, oxygen, aluminum, iron, calcium, sodium, and potassium.

The combination of these elements can also vary widely, resulting in a vast range of mineral compositions and colors.

Additionally, various Earth processes, such as igneous, sedimentary, and metamorphic processes, contribute to the creation of minerals. Through these processes, existing minerals can be transformed or new minerals can be formed.

The temperature and pressure conditions during these processes also play a significant role in the types of minerals that are created.

For example, diamonds are formed under immense pressure deep within the Earth's mantle, while quartz crystals can form in hot springs at the Earth's surface.

Overall, the wide diversity of minerals is a reflection of the complexity and richness of the Earth's composition and geological history.

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The types of isomers for [[tex]Pt(en)Cl_2[/tex]] are:

cis isomer

trans isomer

[[tex]Pt(en)Cl_2[/tex]] refers to a complex ion of platinum(II) with ethylenediamine (en) and two chloride ions ([tex]Cl^-[/tex]). The complex has two possible isomers based on the relative orientation of the ligands around the central metal ion.

The two isomers are:

cis-[[tex]Pt(en)Cl_2[/tex]]: In this isomer, the two ethylenediamine ligands are adjacent to each other, and the two chloride ligands are opposite to each other.

trans-[[tex]Pt(en)Cl_2[/tex]]: In this isomer, the two ethylenediamine ligands are opposite to each other, and the two chloride ligands are adjacent to each other.

Both of these isomers are examples of geometrical isomers. They are not optical isomers since they are not mirror images of each other. They are also not fac or mer isomers since those terms are used to describe coordination compounds with more than two ligands.

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