Given that [Ni (CO)4] = 0.85 M at equilibrium for the equation
Ni (s) + 4CO (g) <-------> Ni (CO) 4 (g) Kc= 5.0 x 104 M-3
calculate the concentration of CO (g) at equilibrium.

Answers

Answer 1

The concentration of CO (g) at equilibrium is approximately 0.064 M.

We can use the equilibrium expression for the reaction:
Kc = [Ni (CO)4] / ([Ni][CO]^4)

We are given that [Ni (CO)4] = 0.85 M, and we can assume that the initial concentration of Ni (s) is negligible compared to the concentration of CO (g) and Ni (CO)4 (g).

Therefore, we can use the following approximation: [Ni] ≈ 0.

Substituting the given values and approximation into the equilibrium expression, we get:
5.0 x 104 M-3 = 0.85 M / (0 x [CO]^4)
Solving for [CO], we get:
[CO] = (0.85 M / 5.0 x 104 M-3)1/4
[CO] ≈ 0.086 M

Therefore, the concentration of CO (g) at equilibrium is approximately 0.086 M.

To find the concentration of CO (g) at equilibrium, we can use the expression for the equilibrium constant, Kc, which is:
Kc = [Ni(CO)₄] / ([Ni] * [CO]⁴)

Given that [Ni(CO)₄] = 0.85 M and Kc = 5.0 x 10⁴ M⁻³, we can solve for the concentration of CO:
5.0 x 10⁴ M⁻³ = 0.85 M / ([Ni] * [CO]⁴)

Since [Ni] is a solid, its concentration remains constant and does not affect the equilibrium, so we can rewrite the equation as: 5.0 x 10⁴ M⁻³ = 0.85 M / [CO]⁴

Now, solve for [CO]:
[CO]⁴ = 0.85 M / (5.0 x 10⁴ M⁻³)
[CO]⁴ ≈ 1.7 x 10⁻⁵ M

To find [CO], take the fourth root of the result:
[CO] = (1.7 x 10⁻⁵ M)^(1/4)
[CO] ≈ 0.064 M

Thus, the concentration of CO (g) at equilibrium is approximately 0.064 M.

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Related Questions

Determine a K value for PbCl2 (5) + 3 OH (aq) + Pb(OH)3 + 2 C1- (aq). If 0.30 moles of NaOH is added to 1.0 L of saturated lead (II) chloride, with extra solid present, what is the [OH-]? Ksp of PbCl2 is 1.17 x 10-5 and the K of Pb(OH)3 is 8.00 x 1013 (answer: 3.27 x 10 M) k = ksplike) (1.17+185) (8.00x103) = 93 10 8 ko [Pb(OH)₂ ] [17² [0473

Answers

K value for PbCl2 (5) + 3 OH (aq) + Pb(OH)3 + 2 C1- (aq) is  3.27 x 10 M (rounded to two significant figures)

To solve for the [OH-], we need to first write out the balanced chemical equation and the expression for the solubility product constant (Ksp) of PbCl2:

PbCl2 (s) ↔ Pb2+ (aq) + 2 Cl- (aq)
Ksp = [Pb2+][Cl-]^2 = 1.17 x 10^-5

Next, we can use the Ksp of PbCl2 to determine the concentration of Pb2+ ions in the saturated solution:

1.17 x 10^-5 = [Pb2+][Cl-]^2
1.17 x 10^-5 = [Pb2+](2x)^2  (where 2x is the molar concentration of Cl- ions)
[Pb2+] = x = 2.42 x 10^-3 M

Now, we can use the K value given for Pb(OH)3 to determine the concentration of hydroxide ions produced when Pb2+ ions react with OH- ions:

K = [Pb2+][OH-]^3 / [Pb(OH)3]
8.00 x 10^13 = (2.42 x 10^-3)[OH-]^3 / (1.0 x 10^-18)
[OH-]^3 = (8.00 x 10^13)(1.0 x 10^-18) / (2.42 x 10^-3)
[OH-]^3 = 3.32 x 10^10
[OH-] = 3.27 x 10^-4 M

Since we added 0.30 moles of NaOH to the solution, we need to adjust the concentration of [OH-] accordingly:

[OH-] = (0.30 moles / 1.0 L) / 2 = 0.15 M
[OH-] = 3.27 x 10^-4 M + 0.15 M = 3.27 x 10^-1 M or 3.27 x 10 M (rounded to two significant figures)

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What are each of the following observations an example of?Drag the appropriate items to their respective bins.There is a gas leak in the kitchen andyou smell gas in the bedroom after 10minutes.When person applies perfume in onecorner of the room you can smell itsfragrance in another room.If the tightly packed food is placed inthe kitchen for a long time then youcan smell the gas as it penetratesthrough the small holes in the plastic.When a small hole is made in the topof a coke bottle the carbon dioxide gasmoves out of the bottle over time.Diffusion. Effusion

Answers

The gas leak in the kitchen is an example of Effusion, which is the process of releasing a gas from a pressurized container or source.

What is Effusion?

Effusion is the process in which molecules or atoms of a gas escape from a container due to thermal energy. In this process, the particles escape through small orifices or pores in the container. It is a diffusion process that is driven by the kinetic energy of the particles. The rate of effusion depends on the temperature, pressure, and the molar mass of the escaping gas. Effusion is different from the process of vaporization, which is the transition of a liquid to a gas by the addition of heat.

The smell of perfume in another room is an example of Diffusion, which is the process of spreading of a substance throughout a medium, such as air or water. The smell of gas penetrating through the small holes in the plastic is also an example of Diffusion. Finally, the carbon dioxide gas moving out of the bottle over time is also an example of Effusion.

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t 22 °c, an excess amount of a generic metal hydroxide, m(oh)2,m(oh)2, is mixed with pure water. the resulting equilibrium solution has a ph of 10.30.10.30. what is the spksp of the salt at 22 °c?

Answers

At 22°C, the autoionization constant of water (Kw) is 1.0×10[tex]^-14.[/tex]

The balanced equation for the dissolution of metal hydroxide,  in water is:

[tex]M(OH)2(s) ⇌ M2+(aq) + 2OH-(aq)[/tex]

Let's assume that x moles dissolve in water, which will produce x moles of [tex]M2+[/tex] and [tex]2x[/tex] moles of [tex]OH-[/tex] ions. The concentration of [tex]OH-[/tex] ions in the solution will be given by:

[tex][OH-] = 2x / V[/tex]

where V is the volume of the solution in liters.

Since the solution has a pH of 10.30, the concentration of [tex]H+[/tex] ions in the solution will be:

[tex][H+][/tex] = [tex]10^-10.30 = 4.466 × 10^-11[/tex]

At equilibrium, the product of the concentrations of the metal ion and hydroxide ion is equal to the solubility product constant (Ksp) of ] [tex]M(OH)2[/tex]

Ksp = [tex][M2+][OH-]2[/tex]

Substituting the expressions for [tex][OH-][/tex] and [tex][H+[/tex]] in terms of x, we get:

At equilibrium, the number of moles of [tex]M(OH)2[/tex] that dissolve is equal to the number of moles of [tex]OH-[/tex] ions formed. Since the initial amount of M(OH)2 is in excess, we can assume that all of it has dissolved. Th

Substituting the expression for [tex]OH-[/tex] and simplifying, we get:

[tex]x = V * (10^-pOH) / 2\\x = V * (10^-10.30) / 2[/tex]

x = 5.01 × 10[tex]^-6 V[/tex]

Substituting the value of x in the expression for Ksp, we get:

Ksp = 4(5.01 × 10[tex]^-6 V)^2 * 4.466 × 10^-11 / V^2[/tex]

Ksp = 8.95 × 10[tex]^-20[/tex]

Therefore, the solubility product constant (Ksp) of the salt [tex]M(OH)2[/tex] at 22°C is 8.95 × 10[tex]^-20.[/tex]

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: Predict the type of bond ionic, covalent, or polar covalent) one would expect to form between the following pairs of elements. a. Rb and Cl ionic b. S and S covalent c. Na and C1 d. C and Br e. Li and C1 f. Rb and F e

Answers

These predictions are based on the difference in electronegativity between the elements involved. Ionic bonds typically form between metals and nonmetals, covalent bonds between nonmetals, and polar covalent bonds when there is a significant electronegativity difference between two nonmetals.

a. Rb and Cl - ionic
b. S and S - covalent
c. Na and Cl - ionic
d. C and Br - covalent
e. Li and Cl - ionic
f. Rb and F - ionic

be happy to help you predict the type of bond between the given pairs of elements:

a. Rb (Rubidium) and Cl (Chlorine) - ionic bond
b. S (Sulfur) and S (Sulfur) - covalent bond
c. Na (Sodium) and Cl (Chlorine) - ionic bond
d. C (Carbon) and Br (Bromine) - polar covalent bond
e. Li (Lithium) and Cl (Chlorine) - ionic bond
f. Rb (Rubidium) and F (Fluorine) - ionic bond.

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8. discuss the mechanism (drawing is essential) of the electrophilic addition of water to 1-methyl cyclohexene.

Answers

The electrophilic addition of water to 1-methyl cyclohexene proceeds via the Markovnikov's rule, where the hydrogen of the water molecule is added to the carbon atom that is already bonded to more hydrogen atoms.

The development of an intermediate carbocation is a component of the reaction mechanism. The water molecule's proton is attacked by the alkene's pi bond in the first step, creating a carbocation intermediate. The second stage involves the attack of the carbocation by the lone pair of electrons on the water molecule, which results in the creation of the end product, a tert-butyl alcohol.

The mechanism can be illustrated by the use of curved arrows to represent the movement of electrons during each step of the reaction.

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You want to make a buffer of pH 8.2. The weak base that you want to use has a pKb of 6.3. Is the weak base and its conjugate acid a good choice for this buffer? Why or why not?

Answers

No, the weak base and its conjugate acid are not a good choice for making a buffer of pH 8.2, as their pKb of 6.3 is too far from the desired pH.

A buffer is most effective when the pH is within ±1 of the pKa (or pKb) value of the weak acid (or base) and its conjugate pair. In this case, the weak base has a pKb of 6.3. To compare it to the desired pH of 8.2, we need to first convert pKb to pKa using the relationship pKa + pKb = 14.

This gives a pKa of 7.7 (14 - 6.3). Since the difference between the desired pH (8.2) and the pKa (7.7) is 0.5, which is within the ±1 range, the weak base and its conjugate acid can form a buffer.

However, the buffer will not be very effective as the difference is close to the edge of the optimal range. A buffer system with a pKa closer to 8.2 would be a better choice for optimal buffering capacity.

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Write the equation for hydrostatic equilibrium in the Earth's atmosphere, with constant downward acceleration g = 9.8ms=2 Assume P = PC where C2 = kT/m is a constant. Using T = 300 K and the mass of an N2 molecule, what is C in km/s?

Answers

The value of constant C is 0.329 km/s.

The equation for hydrostatic equilibrium in Earth's atmosphere with constant downward acceleration g = 9.8 m/s² is dP/dz = -ρg, where P is pressure, ρ is density, and z is height.



For P = PC, C² = kT/m, where k is Boltzmann's constant, T is temperature, and m is the mass of an N₂ molecule. Using T = 300 K, the value of C in km/s is approximately 0.329 km/s.

In this equation, dP/dz represents the change in pressure with respect to height, and -ρg is the force due to gravity acting on the air mass.

To find C, we first calculate the constant C² = kT/m, where k is Boltzmann's constant (1.38 × 10⁻²³ J/K), T is the temperature (300 K), and m is the mass of an N₂ molecule (4.65 × 10⁻²⁶ kg). By plugging in these values and solving for C, we get C = sqrt(C²) ≈ 0.329 km/s.

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Rank compounds in order of decreasing heat of hydrogenation: hexa-1,2-diene; hexa-1,3,5-triene; hexa-1,3-diene; hexa-1,4-diene; hexa-1,5-diene; hexa-2,4-diene Rank from largest to smallest heat of hydrogenation. To rank items as equivalent, overlap them. H2C=C=C H

Answers

The order of decreasing heat of hydrogenation is hexa-1,2-diene > hexa-1,4-diene > hexa-1,3-diene = hexa-1,5-diene > hexa-1,3,5-triene > hexa-2,4-diene.

Heat of hydrogenation is the enthalpy change that occurs when one mole of a compound reacts with hydrogen gas to form a saturated compound.

It is a measure of the stability of an alkene or alkyne, with more stable compounds requiring less heat to hydrogenate.

The order of decreasing heat of hydrogenation is hexa-1,2-diene > hexa-1,4-diene > hexa-1,3-diene = hexa-1,5-diene > hexa-1,3,5-triene > hexa-2,4-diene.

This is because hexa-1,2-diene has the most substituted double bond, leading to the most stable alkene.

In contrast, hexa-2,4-diene has the least substituted double bond and is the least stable alkene. The other compounds fall in between these two extremes.

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IUPAC name of the compound is ___________.
A
1-methoxy-1-methylethane
B
2-methoxy-2-methylethane
C
2-methoxypropane
D
isopropyl methyl ether

Answers

The IUPAC name of the compound is D) isopropyl methyl ether. Isopropyl methyl ether (also known as methyl isopropyl ether or IMPE) is a clear, colorless, flammable liquid with a characteristic ether-like odor.

Isopropyl methyl ether molecular formula is C4H10O, and its IUPAC name is 1-methoxy-2-propanol. It is commonly used as a solvent in organic chemistry and as a fuel additive. Isopropyl methyl ether is a member of the ether family of organic compounds, which are characterized by an oxygen atom bridging two carbon atoms.

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Determine ∆S° for 2 O₃(g) → 3 O₂(g).
 
O₃ =239 S° (J/mol*k)
O₂ = 205 S° (J/mol*k)

Answers

The ∆S° for the reaction 2 O₃(g) → 3 O₂(g) is 137 J/mol*K.

To determine ∆S° for 2 O₃(g) → 3 O₂(g), use the formula ∆S° = Σ S°(products) - Σ S°(reactants). O₃ has a standard molar entropy (S°) of 239 J/mol*K, and O₂ has a standard molar entropy of 205 J/mol*K.

Step 1: Calculate the total entropy of the products:
3 moles of O₂: 3 * 205 J/mol*K = 615 J/mol*K

Step 2: Calculate the total entropy of the reactants:
2 moles of O₃: 2 * 239 J/mol*K = 478 J/mol*K

Step 3: Calculate the entropy change (∆S°):
∆S° = 615 J/mol*K (products) - 478 J/mol*K (reactants) = 137 J/mol*K

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A mixture of gases, nitrogen, oxygen and carbon dioxide at 27°C and 0.50 atm occupy a volume of 492 mL How many moles of gas are there in this sample? a) 0,010 b) 1/9 c) 6
d) 10 e) Cannot be determined because it is a mixture

Answers

The number of moles of gas in the mixture is 0.010 moles.

How to calculate the number of moles?

To calculate the number of moles of gas in the mixture, we can use the Ideal Gas Law equation:
PV = nRT

Where:
P = pressure (in atm)
V = volume (in L)
n = number of moles
R = ideal gas constant (0.0821 L·atm/mol·K)
T = temperature (in K)

First, convert the volume from mL to L and the temperature from °C to K:
Volume: 492 mL * (1 L/1000 mL) = 0.492 L
Temperature: 27°C + 273.15 = 300.15 K

Now, plug the values into the Ideal Gas Law formula:
0.50 atm * 0.492 L = n * (0.0821 L·atm/mol·K) * 300.15 K

Solve for n:
(0.50 * 0.492) / (0.0821 * 300.15) = n
n ≈ 0.010 moles

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A 4.266 gram sample of a hydrocarbon, upon combustion in a combustion analysis apparatus, yielded 5.672 grams of water. The percent, by weight, of hydrogen in the hydrocarbon is therefore: A. 20.07% B. 17.24% C. 14.88% D. 08.62% E. 7.44%

Answers

The hydrocarbon contains 14.88% hydrogen by weight, that is option C.

To determine the percent by weight of hydrogen in the 4.266-gram sample of a hydrocarbon that yielded 5.672 grams of water upon combustion;

1. Determine the mass of hydrogen in the water produced: Water (H2O) has a molecular weight of 18.015 g/mol, with hydrogen (H) contributing 2.016 g/mol. The ratio of hydrogen mass to water mass is 2.016/18.015 = 0.1119.

2. Calculate the mass of hydrogen in the 5.672 grams of water produced by multiplying the mass of water by the hydrogen-to-water ratio: 5.672 grams * 0.1119 = 0.635 grams of hydrogen.

3. Calculate the percent by weight of hydrogen in the hydrocarbon by dividing the mass of hydrogen by the mass of the hydrocarbon and multiplying by 100: (0.635 grams / 4.266 grams) * 100 = 14.88%.

Therefore, the percent by weight of hydrogen in the hydrocarbon is 14.88% (option C).

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\Status: Not yet answered | Points possible: 2.00 Microscale reactions involve reaction mixtures with volumes ✓ Choose... less than 5 mL Some benefits of microscale chemistry are (select all that ap %0%less than 1 mL Greater amount of product more than 5 mL more than 10 mL Fewer pieces of glassware Reduced chemical waste Faster work-ups

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Microscale chemistry provides several advantages such as requiring fewer pieces of glassware, reducing chemical waste, and allowing for faster work-ups, making it an attractive option for many types of experiments.

Based on the provided information, it seems you are asking about microscale reactions and their benefits. Here's an answer that includes the requested terms:

Microscale reactions involve reaction mixtures with volumes less than 5 mL. Some benefits of microscale chemistry include:

1. Fewer pieces of glassware: Since the reaction is performed on a smaller scale, less glassware is needed, making the setup simpler and more efficient.
2. Reduced chemical waste: As smaller amounts of chemicals are used in microscale reactions, there is less waste generated, which is both cost-effective and environmentally friendly.
3. Faster work-ups: Due to the smaller reaction volumes, the time required to complete the reaction and process the product is often shorter, making it more efficient for researchers or students to carry out experiments.

In summary, microscale chemistry provides several advantages such as requiring fewer pieces of glassware, reducing chemical waste, and allowing for faster work-ups, making it an attractive option for many types of experiments.

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Calculate the pH at the equivalence point for the titration of 0.100 M methylamine (CH3NH2) with 0.100 M HCl. The Kb of methylamine is 5.0

Answers

Methylamine is a weak base, and hydrochloric acid (HCl) is a strong acid. The reaction between the two is:

CH3NH2 + HCl → CH3NH3+Cl-

At the equivalence point of the titration, the moles of HCl added will equal the moles of methylamine present in the solution. This means that all the methylamine will have been converted to its conjugate acid, CH3NH3+, and the solution will contain only CH3NH3+ and Cl- ions.

To calculate the pH at the equivalence point, we need to find the concentration of CH3NH3+ in the solution. This can be done by using the dissociation constant of the weak base, methylamine:

Kb = [CH3NH3+][OH-]/[CH3NH2]

At the equivalence point, [CH3NH2] = [CH3NH3+], so we can simplify the equation to:

Kb = [CH3NH3+]^2/[CH3NH2]

[CH3NH3+]^2 = Kb[CH3NH2]

[CH3NH3+] = sqrt(Kb[CH3NH2])

[CH3NH3+] = sqrt(5.0 x 10^-4 x 0.050)

[CH3NH3+] = 0.0224 M

Now we can use the equation for the ionization constant of a weak acid to find the pH:

Ka = [H+][A-]/[HA]

For the conjugate acid of methylamine, CH3NH3+, the Ka is:

Ka = Kw/Kb = 1.0 x 10^-14/5.0 x 10^-4 = 2.0 x 10^-11

At the equivalence point, [H+] = [CH3NH3+], so we can simplify the equation to:

Ka = [H+]^2/[CH3NH2+]

[H+]^2 = Ka[CH3NH2+]

[H+] = sqrt(Ka[CH3NH2+])

[H+] = sqrt(2.0 x 10^-11 x 0.0224)

[H+] = 4.2 x 10^-7 M

pH = -log[H+]

pH = -log(4.2 x 10^-7)

pH = 6.38

Therefore, the pH at the equivalence point of the titration of 0.100 M methylamine with 0.100 M HCl is 6.38.

*IG:whis.sama_ent*

express the ksp expression of each of the following compounds in terms of its molar solubility (x). (example input format: k_{sp} = 2x^5.) (a) mgnh4po4

Answers

The Ksp expression of MgNH₄PO₄ in terms of its molar solubility (x) is:
Ksp = x³


For MgNH₄PO₄, the dissolution reaction can be written as:

MgNH₄PO₄ (s) <=> Mg²⁺ (aq) + NH₄⁺ (aq) + PO₄³⁻ (aq)

Now, we can express the molar solubility (x) for each ion:

[Mg²⁺] = x
[NH₄⁺] = x
[PO₄³⁻] = x

The Ksp expression for MgNH₄PO₄ is given by the product of the concentrations of its ions:

Ksp = [Mg²⁺] [NH₄⁺] [PO₄³⁻]

Substituting the molar solubility (x) for each concentration, we get:

Ksp = x * x * x

Therefore, the Ksp expression of MgNH₄PO₄ in terms of its molar solubility (x) is:

Ksp = x³

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producer-consumer problem, two different types of processes share access to an unbounded buffer

Answers

The producer-consumer problem refers to a scenario where two different types of processes share access to an unbounded buffer.

In this problem, one type of process, known as the producer, is responsible for adding items to the buffer, while the other type of process, known as the consumer, is responsible for removing items from the buffer.

The challenge with this problem is that the producer and consumer processes must coordinate their access to the buffer to avoid conflicts or inconsistencies.

For example, if the producer tries to add an item to the buffer when it is already full, it may cause an error or block until space becomes available.

Similarly, if the consumer tries to remove an item from an empty buffer, it may also cause an error or block until an item is available.

To solve the producer-consumer problem, various synchronization techniques can be used, such as semaphores or monitors, to ensure that the producer and consumer processes access the buffer in a mutually exclusive and synchronized manner.

By doing so, the producer and consumer can work together to efficiently and effectively share access to the unbounded buffer.

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The producer-consumer problem refers to a scenario where two different types of processes share access to an unbounded buffer.

In this problem, one type of process, known as the producer, is responsible for adding items to the buffer, while the other type of process, known as the consumer, is responsible for removing items from the buffer.

The challenge with this problem is that the producer and consumer processes must coordinate their access to the buffer to avoid conflicts or inconsistencies.

For example, if the producer tries to add an item to the buffer when it is already full, it may cause an error or block until space becomes available.

Similarly, if the consumer tries to remove an item from an empty buffer, it may also cause an error or block until an item is available.

To solve the producer-consumer problem, various synchronization techniques can be used, such as semaphores or monitors, to ensure that the producer and consumer processes access the buffer in a mutually exclusive and synchronized manner.

By doing so, the producer and consumer can work together to efficiently and effectively share access to the unbounded buffer.

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how many coulombs are produced by oxidation of 10.0 grams of hydrogen

Answers

The oxidation of 10.0 grams of hydrogen produces approximately 478,900 coulombs of electric charge.

To answer this question, we need to use the formula that relates the amount of substance (in moles) to the amount of electric charge (in coulombs) produced during oxidation or reduction reactions. This formula is:
Q = nF
where Q is the electric charge in coulombs, n is the amount of substance in moles, and F is the Faraday constant, which is equal to 96,485.3329 coulombs per mole of electrons.
To find the amount of substance of hydrogen that is oxidized, we first need to know its molar mass, which is 2.016 g/mol. Therefore, 10.0 grams of hydrogen is equal to:
n = m/M = 10.0 g / 2.016 g/mol = 4.961 mol
Now we can use the formula to calculate the amount of electric charge produced:
Q = nF = 4.961 mol * 96,485.3329 C/mol = 478,900 C
Therefore, the oxidation of 10.0 grams of hydrogen produces approximately 478,900 coulombs of electric charge.

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buffer is prepared by adding 39.8 ml of 0.75 m naf to 38.9 ml of 0.28 m hf, ka = 6.8 10−4. what is the ph of the final solution?

Answers

The pH of the final solution is 3.09.

To solve this problem, we will use the Henderson-Hasselbalch equation, which relates the pH of a buffer solution to the pKa of the weak acid and the ratio of the concentrations of weak acid and its conjugate base;

pH = pKa + log([conjugate base]/[weak acid])

In this case, the weak acid is HF, and its conjugate base will be F⁻. The pKa of HF is given as 6.8 x 10⁻⁴. We are given the volumes and concentrations of the two solutions, so we can calculate the concentrations of HF and F⁻;

[HF] = 0.28 M x (38.9 ml / 78.7 ml) = 0.139 M

[F⁻] = 0.75 M x (39.8 ml / 78.7 ml) = 0.379 M

Now we can substitute these values into the Henderson-Hasselbalch equation;

pH = 6.8 x 10⁻⁴ + log(0.379/0.139)

= 3.09

Therefore, the pH of the final solution will be 3.09.

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at stp how many liters of nh3 can be produced from the reaction of 6.00 mol of n2 with 6.00 mol of h2? n2(g) 3 h2(g) → 2 nh3(g)

Answers

at STP, 267.47 liters of NH3 can be produced from the reaction of 6.00 mol of N2 with 6.00 mol of H2.
Using the balanced chemical equation, we see that 1 mol of N2 reacts with 3 mol of H2 to produce 2 mol of NH3. Therefore, with 6.00 mol of N2 and 6.00 mol of H2, we have enough reactants to produce:

(6.00 mol N2) x (2 mol NH3 / 1 mol N2) = 12.00 mol NH3

Now we can use the ideal gas law to find the volume of NH3 at STP (standard temperature and pressure):

PV = nRT

At STP, T = 273 K and P = 1 atm. We can assume that the volume of the reactants and products are all the same (since they are all gases), so we can use the same volume for NH3 as we would for N2 and H2.

V = (nRT) / P

V = (12.00 mol NH3) x (0.0821 L atm / mol K) x (273 K) / (1 atm)

V = 267.47 L NH3

Therefore, at STP, 267.47 liters of NH3 can be produced from the reaction of 6.00 mol of N2 with 6.00 mol of H2.

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A NaOH solution is to be standardized by titrating it against a known mass of potassium hydrogen phthalate Which procedure will give a molarity of NaOH that is too low? (A) Deliberately weighing one half the recommended amount of potassium hydrogen phthalate. (B) Dissolving the potassium hydrogen phthalate in more water than is recommended. (C) Neglecting to fill the tip of the buret with NaOH solution before titrating. (D) Losing some of the potassium hydrogen phthalate solution from the flask before titrating.

Answers

The procedure that will give a molarity of NaOH that is too low is option (D) losing some of the potassium hydrogen phthalate solution from the flask before titrating.

What are the factors affecting molarity?

Losing some of the potassium hydrogen phthalate solution from the flask before titrating will result in a molarity of NaOH that is too low. This is because losing some of the potassium hydrogen phthalate solution will result in less acid being titrated, and therefore the molarity of the NaOH solution will be calculated to be lower than it actually is.

Option (A) deliberately weighing one half the recommended amount of potassium hydrogen phthalate and option (B) dissolving the potassium hydrogen phthalate in more water than recommended may result in a slightly inaccurate molarity, but not as significantly as losing some of the solution or neglecting to fill the buret tip with NaOH solution before titrating (option C).

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: Rank the following weak acids from strongest (on the top) to weakest (on the bottom). Drag and drop to order 1 = E propanoic acid 2 = A acetic acid 3 = D hydrocyanic acid 2 = A acetic acid = D hydrocyanic acid = B chlorous acid = c formic acid

Answers

The ranking is as shown below:  

                                                                                                                                                                                                1 = D hydrocyanic acid

2 = C formic acid

3 = E propanoic acid

4 = A acetic acid

5 = B chlorous acid

1 = D hydrocyanic acid

2 = C formic acid

3 = E propanoic acid

4 = A acetic acid

5 = B chlorous acid

Here's the explanation behind the ranking:

Hydrocyanic acid (HCN) is the strongest weak acid on the list due to the high electronegativity of nitrogen, which draws electron density away from the hydrogen atom and makes it more acidic.

Formic acid (HCOOH) is the second strongest weak acid due to the presence of the carboxylic acid functional group (-COOH), which is more acidic than a single -OH group found in alcohols and phenols.

Propanoic acid (CH3CH2COOH) is weaker than formic acid due to the longer carbon chain, which stabilizes the negative charge on the conjugate base.

Acetic acid (CH3COOH) is weaker than propanoic acid due to the electron-withdrawing effect of the carbonyl group (C=O), which decreases the electron density on the carboxylic acid functional group and makes it less acidic.

Chlorous acid (HClO2) is the weakest weak acid on the list, as it is a very weak acid that barely ionizes in water.

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How would the value of the activation energy be affected if the actual temperature of the solution was lower than that of the water bath?

Answers

The value of the activation energy would likely be higher when the actual temperature of the solution was lower than that of the water bath.

How does Temperature affect Activation Energy?

When the actual temperature of the solution is lower than that of the water bath, the reaction rate will be slower because there is less thermal energy available to overcome the activation energy barrier. Consequently, it would require more energy to initiate the reaction, leading to a higher activation energy value.

1. The temperature of the solution is lower than that of the water bath.
2. As a result, there is less thermal energy in the solution.
3. The reaction rate is slower because there is less energy available to overcome the activation energy barrier.
4. Therefore, the activation energy value would be higher in this situation.

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: 3 (a) Assume that a halogen, Y, was blue in hexane, and another halogen, X, was green in hexane. Both halide ions, Yand X are colorless in water and are not soluble in hexanes. You mix aqueous X (from, say, NaX(s)) with aqueous Y, add hexanes, and shake the tube (as in this experiment). INOTE: Use of .com or other "homework" site to get the answers to these questions is cheating. Dr. Gary Mines wrote this prelab and does not authorize any person paid by a so-called educational website to answer these questions for students nor post the answers on the web.) If the hexane layer ends up being blue after mixing, would you conclude that reaction occurred or not? Explain clearly. (b) Based on your observation and answer to the prior question, which halogen, X, or Y,, would you conclude is the better oxidizing agent has the greater ability to oxidize other chemical species)? Explain.

Answers

That a halogen Y would be the better oxidizing agent as it has a higher tendency to gain electrons compared to X. However, if no reaction occurred, then it is not possible to determine which halogen is the better oxidizing agent based on this experiment alone.

(a) The formation of a blue color in the hexane layer does not necessarily indicate a reaction occurred. It could simply be due to the transfer of some of the blue-colored Y from the aqueous phase to the hexane phase. Therefore, the observation of a blue hexane layer alone is not sufficient to conclude that a reaction occurred.

(b) The ability of a halogen to act as an oxidizing agent depends on its tendency to gain electrons and form halide ions. The higher the tendency, the better the oxidizing agent it is. In this case, if the blue color in the hexane layer indicates the formation of a new compound, then it could be due to the oxidation of X by Y, where Y acts as the oxidizing agent. Therefore, Y would be the better oxidizing agent as it has a higher tendency to gain electrons compared to X. However, if no reaction occurred, then it is not possible to determine which halogen is the better oxidizing agent based on this experiment alone.

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Which combination will produce a precipitate? How and why?1) NaOH(aq) and H2SO4(aq)2) Ca(OH)2(aq) and Cu(NO3)2(aq)3) NaBr(aq) and HC2H3O2(aq)4) AgC2H3O2(aq) and Ca(NO3)2(aq)5) NH4OH(aq) and H2SO4(aq)

Answers

Combination 2) Ca(OH)2(aq) and Cu(NO3)2(aq) will produce a precipitate.

Here, calcium hydroxide reacts with copper nitrate to form the insoluble copper hydroxide Cu(OH)2(s), which appears as a precipitate.

Ca(OH)2(aq) + Cu(NO3)2(aq) → Ca(NO3)2(aq) + Cu(OH)2(s)

A precipitate forms when two solutions containing soluble ions are mixed, resulting in the formation of an insoluble compound. In this reaction, the soluble calcium hydroxide (Ca(OH)2) and copper(II) nitrate (Cu(NO3)2) react to form the insoluble copper(II) hydroxide (Cu(OH)2) and soluble calcium nitrate (Ca(NO3)2). The insoluble copper(II) hydroxide forms a solid precipitate that settles out of the solution.

The other combinations will not produce a precipitate.

Combination 1) will result in a neutralization reaction, producing water and salt.

Combination 3) will result in the formation of a salt, sodium acetate, and no precipitate.

Combination 4) will result in the formation of a salt, calcium acetate, and no precipitate.

Combination 5) will result in a neutralization reaction, producing water and ammonium sulfate.

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1.234 x 1024 nh3 molecules are how many moles? (2.049 nh3 mols)

Answers

There are 2.049 moles of NH₃ in 1.234 x 10²⁴ molecules.

To find the number of moles for 1.234 x 10²⁴ NH₃ molecules, you can use Avogadro's number (6.022 x 10²³ molecules per mole). The formula to calculate moles is:

Number of moles = (Number of molecules) / (Avogadro's number)


To calculate the number of moles, follow these steps:
1. Write down the given number of molecules: 1.234 x 10²⁴ NH₃ molecules.
2. Write down Avogadro's number: 6.022 x 10²³ molecules/mole.
3. Divide the number of molecules by Avogadro's number: (1.234 x 10²⁴) / (6.022 x 10²³).
4. Simplify the expression and find the result: 2.049 moles of NH₃.
So, 1.234 x 10²⁴ NH₃ molecules are equivalent to 2.049 moles of NH₃.

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what is the molar volume of co2 gas under the conditions of temperature and pressure where its density is 1.50 g/l?

Answers

The molar volume of CO2 gas under the given conditions of temperature and pressure where its density is 1.50 g/L is approximately 29.34 L/mol.

To find the molar volume of CO2 gas under the given conditions of temperature and pressure where its density is 1.50 g/L, you should follow these steps:

1. Determine the molar mass of CO2: Carbon (C) has a molar mass of 12.01 g/mol and Oxygen (O) has a molar mass of 16.00 g/mol. Since there are two oxygen atoms in CO2, the molar mass of CO2 is (12.01 + 2 * 16.00) g/mol, which equals 44.01 g/mol.

2. Use the density formula: Density (ρ) is equal to mass (m) divided by volume (V). In this case, we have the density (1.50 g/L) and the molar mass (44.01 g/mol) of CO2.

3. Calculate the molar volume: Rearrange the density formula to solve for volume: V = m/ρ. To find the molar volume, divide the molar mass by the given density: V = (44.01 g/mol) / (1.50 g/L) = 29.34 L/mol.

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Data Collection Mass of 2 Vivarin tablets (9) 0.709 Mass of crude caffeine (g) 0.594 Mass of recrystallized caffeine (9) 0.526. (14pts) Calculations (5pts) Percent by mass of caffeine in Vivarin tablets (w/w%) ____. (5pts) Percent isolation of caffeine (%) ____.

Answers

To calculate the percent by mass of caffeine in Vivarin tablets, we can use the following equation. Percent by mass of caffeine is (w/w%) 83.7 %. Percent isolation of caffeine (%) = 88.5 %

Percent by mass of caffeine = (mass of caffeine / mass of Vivarin tablets) x 100% First, we need to calculate the mass of caffeine in the Vivarin tablets by subtracting the mass of the excipients from the total mass of the tablets.

Assuming that the excipients have negligible mass compared to the caffeine, we can assume that the total mass of the tablets is equal to the mass of caffeine plus the mass of the tablet excipients. Therefore:

Mass of caffeine in Vivarin tablets = Mass of Vivarin tablets - Mass of tablet excipients. Since we are not given the mass of the tablet excipients, we cannot calculate the exact mass of caffeine in the tablets.

However, we can assume that the mass of the excipients is small compared to the mass of the tablets and therefore, we can assume that the mass of caffeine in the tablets is equal to the mass of crude caffeine obtained from the tablets.

Therefore, the percent by mass of caffeine in Vivarin tablets is: Percent by mass of caffeine = (mass of crude caffeine / mass of Vivarin tablets) x 100% = (0.594 g / 0.709 g) x 100% = 83.7 %

To calculate the percent isolation of caffeine, we can use the following equation: Percent isolation of caffeine = (mass of recrystallized caffeine / mass of crude caffeine) x 100%. Therefore, the percent isolation of caffeine is: Percent isolation of caffeine = (0.526 g / 0.594 g) x 100% = 88.5 %

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a gas mixture contains 1.29 g n2 and 0.81 g o2 in a 1.54-l container at 25 ∘c.a. Calculate the mole fraction of each component of the mixture.
b. Calculate the partial pressure of each component of the mixture.

Answers

a. To calculate the mole fraction of each component of the mixture, we first need to calculate the total number of moles of gas in the container:

n_total = (mass_n2 / molar_mass_n2) + (mass_o2 / molar_mass_o2)

where:

mass_n2 is the mass of nitrogen gas in the container, which is 1.29 g

molar_mass_n2 is the molar mass of nitrogen gas, which is 28.02 g/mol

mass_o2 is the mass of oxygen gas in the container, which is 0.81 g

molar_mass_o2 is the molar mass of oxygen gas, which is 32.00 g/mol

n_total = (1.29 g / 28.02 g/mol) + (0.81 g / 32.00 g/mol) = 0.0461 mol

Now, we can calculate the mole fraction of nitrogen gas:

X_n2 = n_n2 / n_total

where:

n_n2 is the number of moles of nitrogen gas in the container

n_total is the total number of moles of gas in the container

n_n2 = mass_n2 / molar_mass_n2 = 1.29 g / 28.02 g/mol = 0.046 mol

X_n2 = 0.046 mol / 0.0461 mol = 0.9978

Similarly, we can calculate the mole fraction of oxygen gas:

X_o2 = n_o2 / n_total

where:

n_o2 is the number of moles of oxygen gas in the container

n_o2 = mass_o2 / molar_mass_o2 = 0.81 g / 32.00 g/mol = 0.0253 mol

X_o2 = 0.0253 mol / 0.0461 mol = 0.0022

Therefore, the mole fraction of nitrogen gas is 0.9978, and the mole fraction of oxygen gas is 0.0022.

b. To calculate the partial pressure of each component of the mixture, we can use the following formula:

P_i = X_i * P_total

where:

P_i is the partial pressure of component i

X_i is the mole fraction of component i

P_total is the total pressure of the gas mixture

We know that the gas mixture is in a 1.54 L container at 25 ∘C. Assuming ideal gas behavior, we can calculate the total pressure of the gas mixture using the ideal gas law:

PV = nRT

where:

P is the pressure of the gas mixture

V is the volume of the container, which is 1.54 L

n is the total number of moles of gas in the container, which we calculated earlier to be 0.0461 mol

R is the ideal gas constant, which is 0.0821 L·atm/mol·K

T is the temperature of the gas mixture in kelvin, which is (25 + 273.15) K = 298.15 K

P = (nRT) / V = (0.0461 mol)(0.0821 L·atm/mol·K)(298.15 K) / 1.54 L = 1.048 atm

Now, we can calculate the partial pressure of nitrogen gas:

P_n2 = X_n2 * P_total = 0.9978 * 1.048 atm = 1.045 atm

Similarly, we can calculate the partial pressure of oxygen gas:

P_o2 = X_o2 * P_total = 0.0022 * 1.048 atm = 0.0023 atm

Therefore, the partial pressure of nitrogen gas is 1.045 atm, and the partial pressure of oxygen gas is 0.0023 atm.

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_____KClO3 → ____KCl + _____O2


How many moles of oxygen are produced by the decomposition of 4.2 moles of potassium chlorate, KClO3?

Answers

Explanation:

2KClO3 → 2KCl + 3O2

2 mol KClO3 / 3 mol O2 = 4.2 mol KClO3 / x mol O2

x = (3 mol O2)(4.2 mol KClO3) / (2 mol KClO3) = 6.3 mol O2

6.3 moles of oxygen are produced by the decomposition of 4.2 moles of potassium chlorate.

draw the structure of each of the following compounds: (a) 1,4-cyclohexadiene (b) 1,3-cyclohexadiene (c) (z)-1,3-pentadiene (d) (2z,4e)-hepta-2,4-diene (e) 2,3-dimethyl-1,3-butadiene

Answers

The five compounds have different structures and properties based on the position and stereochemistry of their double bonds. Cyclic hydrocarbons (a) and (b), acyclic hydrocarbons (c), (d), and (e) have different chemical and physical properties due to their structural differences.

(a) 1,4-cyclohexadiene:

        H      H
        |      |
   H--C==C--C==C--H
        |      |
        H      H

(b) 1,3-cyclohexadiene:

        H      H
        |      |
   H--C==C==C--H
        |      |
        H      H

(c) (Z)-1,3-pentadiene:

   H       H
   |       |
H--C==C--C==C--C==H
   |       |
   H       H

(d) (2Z,4E)-hepta-2,4-diene:

H       H
|       |
C==C--C==C--C==C--H
    \  /
     C=C
     | |
     H H

(e) 2,3-dimethyl-1,3-butadiene:

H   H
|   |
C==C--C==C--H
  |   |
  H   H
  |
 CH3

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