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

Answer 1

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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Related Questions

Nitroglycerin is a powerful explosive that forms four different gases when detonated:
2 C3H5(NO3)3(ℓ) → 3 N2(g) + ½ O2(g) + 6 CO2(g) + 5 H2O(g)
Calculate the enthalpy change that occurs when 12.0 g of nitroglycerin is detonated. The standard enthalpies of formation are shown below.
ΔHf° (kJ/mol)
C3H5(NO3)3(ℓ) -364
CO2(g) -393.5
H2O(g) -241.8
______________kJ

Answers

First, we need to calculate the moles of nitroglycerin used in the reaction:

12.0 g C3H5(NO3)3 x (1 mol C3H5(NO3)3 / 227.09 g) = 0.0528 mol C3H5(NO3)3

Now, we can use the balanced equation to determine the moles of each product formed:

2 moles C3H5(NO3)3 produce 6 moles CO2, so 0.0528 mol C3H5(NO3)3 produces 0.1584 mol CO2

2 moles C3H5(NO3)3 produce 5 moles H2O, so 0.0528 mol C3H5(NO3)3 produces 0.132 mol H2O

2 moles C3H5(NO3)3 produce 3 moles N2, so 0.0528 mol C3H5(NO3)3 produces 0.0792 mol N2

2 moles C3H5(NO3)3 produce 1/2 mole O2, so 0.0528 mol C3H5(NO3)3 produces 0.0264 mol O2

Next, we can calculate the overall change in enthalpy using the enthalpies of formation of the products and reactants:

ΔH = (3 mol CO2 x -393.5 kJ/mol) + (0.132 mol H2O x -241.8 kJ/mol) + (0.0792 mol N2 x 0 kJ/mol) + (0.0264 mol O2 x 0 kJ/mol) - (1 mol C3H5(NO3)3 x -364 kJ/mol)

ΔH = -2370.1 kJ/mol

Finally, we can calculate the enthalpy change for the amount of nitroglycerin used in the reaction:

ΔH = -2370.1 kJ/mol x (0.0528 mol C3H5(NO3)3 / 2 mol C3H5(NO3)3) = -62.5 kJ

Therefore, the enthalpy change that occurs when 12.0 g of nitroglycerin is detonated is -62.5 kJ.

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calculate the ph of the solution resulting from the addition of 75.0 ml of 0.15 m koh to 35.0 ml of 0.20 m hcn (ka (hcn) = 4.9 × 10–10).

Answers

The combination of 75.0 mL of 0.15 M KOH and 35.0 mL of 0.20 M HCN results in a solution with a pH of approximately 9.52.

The pH scale is what?

The pH scale is a popular scale for determining how basic or acidic a substance is. The pH scale has possible readings from 0 to 14. Alkaline or basic chemicals have pH values between 7 and 14, while those that are acidic range from 1 to 7.

We have to use the equation for the dissociation of hydrogen cyanide (HCN):

[tex]HCN + H_2O = > CN^{-} + H_3O^{+}[/tex]

The equilibrium constant expression for this reaction is:

[tex]K_a = [CN^{-}][H_3O^{+}]/[HCN]\\K_a = [CN^{-}][H_3O^{+}]/[HCN]\\[H_3O^{+}] = K_a*[HCN]/[CN^{-}][/tex]

we can use the equation:

M1V1 = M2V2

M1 = initial molarity of the solution

V1 = initial volume of the solution

M2 = final molarity of the solution

V2 = final volume of the solution

For the KOH solution, M1 = 0.15 M, V1 = 75.0 mL = 0.075 L, and V2 = 0.075 L + 0.035 L = 0.11 L. Therefore:

M2 = M1V1/V2 = (0.15 M)(0.075 L)/(0.11 L) = 0.102 M

For the HCN solution, M1 = 0.20 M, V1 = 35.0 mL = 0.035 L, and V2 = 0.075 L + 0.035 L = 0.11 L. Therefore:

M2 = M1V1/V2 = (0.20 M)(0.035 L)/(0.11 L) = 0.0636 M

We have to calculate the concentrations of HCN and CN-:

[tex][HCN] = 0.0636 M\\[CN^{-}] = 0.102 M[/tex]

Substitute these values,

[H_3O^{+}] = (4.9 × 10^{-10})(0.0636 M)/(0.102 M)

[H_3O^{+}] = 3.04 × 10^{-10} M

We have to calculate the pH using the equation:

pH = –log[H_3O^{+}]

pH = –log(3.04 × 10^{-10}) = 9.52

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A sample of Freon?12 (CF2Cl2) occupies 10.0 L at 374 K and 191.50 kPa. Find its volume at STP.

Answers

The volume of the Freon-12 sample at STP is approximately 14.87 L.

How to find the volume of a compound at STP?

To find the volume of a sample of Freon-12 (CF2Cl2) at STP, given that it occupies 10.0 L at 374 K and 191.50 kPa, we can use the combined gas law formula.

1. Write down the given information:
  Initial volume (V1) = 10.0 L
  Initial temperature (T1) = 374 K
  Initial pressure (P1) = 191.50 kPa
  Standard temperature (T2) = 273 K
  Standard pressure (P2) = 101.3 kPa

2. Apply the combined gas law formula:
  (P1 * V1) / T1 = (P2 * V2) / T2

3. Plug in the given values and solve for the final volume (V2):
  (191.50 kPa * 10.0 L) / 374 K = (101.3 kPa * V2) / 273 K

4. Solve for V2:
  V2 = (191.50 kPa * 10.0 L * 273 K) / (374 K * 101.3 kPa) ≈ 14.87 L

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for a particular process that is carried out at constant pressure, q = 145 kj and w = -35 kj. Therefore,
ΔE = 145 kJ and ΔH = 110 kJ.
ΔE = 110 kJ and ΔH = 145 kJ.
ΔE = 145 kJ and ΔH = 180 kJ.
ΔE = 180 kJ and ΔH = 145 kJ.

Answers

For a particular process that is carried out at constant pressure, q = 145 KJ and w = -35 KJ. Therefore using thermodynamics ΔE = 110 kJ and ΔH = 145 kJ, option B.

The first rule of thermodynamics states that although energy cannot be generated or destroyed, it may be changed from one form to another. The first law of thermodynamics' mathematical formulation reveals the relationship between internal energy, heat transmitted, and work accomplished.

The study of heat transfers, a system's ability to create work, and the conversion of energy falls within the purview of thermodynamics. In contrast to systems containing atoms or molecules, systems containing particles are the focus of study in this field.

The principles of thermodynamics may be used to explain all of this, and they are based on observations of the aforementioned systems at an equilibrium rather than on theoretical research.

According to the first law of thermodynamics,

ΔE = q + w

= 145 + (-35)

ΔE = 110 kJ.

Also, at constant pressure, ΔH is equal to the heat transferred (q).

So, ΔH = q = 145 kJ.

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11. Using Figure 11.7 , identify the fat or oil that contains the highest number of grams per tablespoon of: a. polyunsaturated fat. b. total unsaturated fat. c. monounsaturated fat. d. saturated fat. 10.2 2.5 27 Safflower oil Canola oil Flaxseed oil Sunflower oil Corn oil Olive oil Sesame oil Soybean oil Peanut oil Chicken fat Lard Saturated 10,0 5 + Monounsaturated 0.9 0.6 Linoleic acid 6.2 07 a-Linolenic acid Other MO 01 0.5 Beef tallow Palm oil Butter Cocoa butter Palm kernel oil Coconut oil 0.40.6 0.2 07 1. 6 012 0. 8 ORT 101214 Fat/Oil composition (grams/tablespoon)

Answers

The fat or oil with the highest grams per tablespoon of: a. polyunsaturated fat is Flaxseed oil; b. total unsaturated fat is Safflower oil; c. monounsaturated fat is Olive oil; d. saturated fat is Coconut oil.


a. Flaxseed oil has the highest content of polyunsaturated fats, which includes linoleic acid and a-linolenic acid.
b. Safflower oil has the highest content of total unsaturated fats, which is the sum of polyunsaturated and monounsaturated fats.
c. Olive oil contains the highest amount of monounsaturated fats, which are a type of unsaturated fat.
d. Coconut oil has the highest content of saturated fats, which are less healthy compared to unsaturated fats. It is essential to consume fats in moderation and focus on incorporating more unsaturated fats into your diet for better health outcomes.

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Complete question:

11. Using Figure 11.7 , identify the fat or oil that contains the highest number of grams per tablespoon of: a. polyunsaturated fat. b. total unsaturated fat. c. monounsaturated fat. d. saturated fat. 10.2 2.5 27 Safflower oil Canola oil Flaxseed oil Sunflower oil Corn oil Olive oil Sesame oil Soybean oil Peanut oil Chicken fat Lard Saturated 10,0 5 + Monounsaturated 0.9 0.6 Linoleic acid 6.2 07 a-Linolenic acid Other MO 01 0.5 Beef tallow Palm oil Butter Cocoa butter Palm kernel oil Coconut oil 0.40.6 0.2 07 1. 6 012 0. 8 ORT 101214 Fat/Oil composition (grams/tablespoon)  

Suppose you used TLC to monitor your reaction process ( which is commonly done in " real world" experiments). Should the camphor product to be lower, or higher in Rf than the borneol reactant? Explain how you predicted this.

Answers

In a TLC experiment monitoring the reaction process of conveborneol to camphor,rting

the camphor product should be higher in Rf than the borneol reactant. This is because the polarity of the camphor product is lower than that of the borneol reactant. As the reaction progresses, the borneol reactant will undergo oxidation to form the less polar camphor product. The less polar product will therefore move up the TLC plate faster and have a higher Rf value. This is a common trend observed in TLC experiments, where less polar compounds tend to have higher Rf values than more polar compounds.
Hi! In a real-world experiment using TLC (Thin Layer Chromatography) to monitor the reaction process, the camphor product is expected to have a higher Rf value than the borneol reactant. This prediction is based on the polarity of the molecules. Camphor is more polar than borneol due to the presence of a carbonyl group. Since polar molecules have stronger interactions with the polar stationary phase, they will move more slowly on the TLC plate, resulting in a higher Rf value for camphor compared to borneol.

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When the oxidation number of an atom in a chemical species decreases during a chemical change, does that species become oxidized or reduced? ___ Is that species oxidizing agent or the reducing agent? ___ Explain using the word "electron(s) somewhere in your answer.

Answers

When the oxidation number of an atom in a chemical species decreases during a chemical change, that species becomes reduced. In this case, the species is the reducing agent.

This is because a decrease in oxidation number indicates a gain of electrons by the atom, and it is the reducing agent that donates electrons to the oxidizing agent. Therefore, the reducing agent is oxidized (loses electrons) while the oxidizing agent is reduced (gains electrons) during the chemical reaction. This is because the reducing agent undergoes reduction by gaining electron(s), which causes its oxidation number to decrease.

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Is p-dichlorobenzene soluble in water or hexane

Answers

p-Dichlorobenzene is more soluble in hexane than in water. p-dichlorobenzene, also known as para-dichlorobenzene, is a type of chlorinated hydrocarbon that is commonly used as a moth repellent and deodorizer.

In terms of its solubility, p-dichlorobenzene is considered to be only slightly soluble in water, with a solubility of around 5.5 mg/L at 25°C. This means that it will not dissolve very well in water and will tend to remain as a separate layer or suspension.

On the other hand, p-dichlorobenzene is much more soluble in organic solvents such as hexane, with a solubility of around 14 g/L at 25°C. This means that it will dissolve readily in hexane and similar solvents, forming a homogeneous solution.

Overall, the solubility of p-dichlorobenzene is relatively low in water but much higher in organic solvents. This is due to the fact that it is a nonpolar compound, which means that it is not attracted to the polar molecules that make up water. Instead, it is attracted to other nonpolar molecules, which are abundant in organic solvents like hexane.

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solid barium carbonate decomposes to produce solid barium oxide and carbon dioxide gas. express your answer as a chemical equation. identify all of the phases in your answer.

Answers

Answer: Ba2CO3(s)  ⇄ Ba2O(s) + CO2(g)

Explanation:

Given the thermochemical equations:
A(g)⟶B(g)ΔH=60 kJ
B(g)⟶C(g)ΔH=−110 kJ
find the enthalpy changes for each reaction.
3A(g)⟶3B(g)ΔH=______kJ
B(g)⟶A(g)ΔH=_______kJ
A(g)⟶C(g)ΔH=_______kJ

Answers

The enthalpy changes for each reaction are: 3A(g)⟶3B(g)ΔH = 180 kJ; B(g)⟶A(g)ΔH = -60 kJ; A(g)⟶C(g)ΔH = -50 kJ

1. For the reaction 3A(g) → 3B(g), we can simply multiply the first given equation by 3 to find the enthalpy change:
3(A(g) → B(g)) → 3A(g) → 3B(g)
3(ΔH = 60 kJ) → ΔH = 3 * 60 kJ = 180 kJ

2. For the reaction B(g) → A(g), we can reverse the first given equation to find the enthalpy change:
A(g) → B(g) → B(g) → A(g)
ΔH = -60 kJ (reversing the reaction changes the sign)

3. For the reaction A(g) → C(g), we can add the two given equations to find the enthalpy change:
A(g) → B(g) + B(g) → C(g) → A(g) → C(g)
ΔH = 60 kJ + (-110 kJ) = -50 kJ

So the enthalpy changes for each reaction are:
3A(g) → 3B(g): ΔH = 180 kJ
B(g) → A(g): ΔH = -60 kJ
A(g) → C(g): ΔH = -50 kJ

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You place 50.0 mL of 0.500 M NaOH in a coffee cup calorimeter at 25.00°C and add 25.0 mL of 0.500 M HCl, also at 25 °C. After stirring, the final temperature is 27.21 ℃ [Assume that the total volume is the sum of the individual volumes and that the final solution has the same density as water.] Calculate the heat released and the enthalpy of reaction in terms of mols of H20. 6.

Answers

First, we need to calculate the amount of heat released during the reaction. We can use the following formula:

q = mCΔT

where:

q is the amount of heat released or absorbed by the reaction

m is the mass of the solution (in grams)

C is the specific heat capacity of the solution, which we can assume is 4.18 J/(g·°C) (the same as water)

ΔT is the change in temperature of the solution during the reaction

To use this formula, we need to calculate the mass of the solution. We can assume that the density of the solution is the same as water (1.00 g/mL). Therefore, the total volume of the solution is 50.0 mL + 25.0 mL = 75.0 mL = 0.0750 L. The mass of the solution is:

m = density x volume = 1.00 g/mL x 0.0750 L = 75.0 g

The change in temperature is ΔT = 27.21 ℃ - 25.00 ℃ = 2.21 ℃.

Therefore, the amount of heat released by the reaction is:

q = mCΔT = 75.0 g x 4.18 J/(g·°C) x 2.21 °C = 6977.35 J

Next, we need to calculate the number of moles of water produced by the reaction. The balanced chemical equation for the reaction is:

NaOH(aq) + HCl(aq) → NaCl(aq) + H2O(l)

We can see that for every 1 mole of HCl, 1 mole of water is produced. Therefore, we need to calculate the number of moles of HCl used in the reaction. The volume of the HCl solution is 25.0 mL = 0.0250 L. The concentration of the HCl solution is 0.500 M, which means that there are:

n(HCl) = C x V = 0.500 mol/L x 0.0250 L = 0.0125 mol HCl

used in the reaction.

Therefore, the number of moles of water produced by the reaction is also 0.0125 mol.

Finally, we can calculate the enthalpy of reaction in terms of moles of water produced. The enthalpy change of the reaction, ΔH, is related to the amount of heat released, q, and the number of moles of water produced, n(H2O), by the formula:

ΔH = q / n(H2O)

where:

ΔH is the enthalpy change of the reaction, in joules per mole of water produced

q is the amount of heat released or absorbed by the reaction, in joules

n(H2O) is the number of moles of water produced by the reaction

We already calculated q and n(H2O), so we can substitute those values:

ΔH = 6977.35 J / 0.0125 mol = 558,988 J/mol ≈ -559 kJ/mol

Therefore, the enthalpy of reaction in terms of moles of water produced is -559 kJ/mol.

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calculate the heat evolved in Joules (the final solution is ca. 0.5 M NaCl, which has a speciiche 2 For the HCI-Nad 4.06 J/g-deg)

Answers

The heat evolved in Joules for this reaction is approximately 2391.25 J. To calculate the heat evolved in Joules, we need to know the amount of heat released per gram of HCI-Na reaction and the amount of HCI reacted.

Given that the specific heat of HCI-Na is 4.06 J/g-deg, we can calculate the amount of heat released per gram of reaction as follows:  4.06 J/g-deg x change in temperature

Assuming a standard room temperature of 25 degrees Celsius and a final solution concentration of 0.5 M NaCl, we can use the balanced chemical equation to determine the amount of HCI reacted. HCI + NaOH -> NaCl + [tex]H_{2}O[/tex]

Since the molar ratio of HCI to NaCl is 1:1, we know that there are 0.5 moles of HCI reacted for every liter of final solution.  

Assuming a final solution volume of 1 liter, we can calculate the amount of heat released as follows: 0.5 moles HCI x 36.5 g/mol x 4.06 J/g-deg x (100-25) deg Celsius = 2391.25 J

Therefore, the heat evolved in Joules for this reaction is approximately 2391.25 J.

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A student places a sample of solid I2 (s) in a flask, and the solid establishes an equilibrium with its vapor. Some of the vapor decomposes. She finds that the total pressure after heating the flask has risen by 32.0% beyond its initial value. What is K for the decomposition?
I2(g)2I(g)

Answers

The equilibrium constant (K) for the decomposition of solid iodine (I2) into gaseous iodine (I2) and iodine atoms (I) is 1.95 x 10^-2 at the temperature and pressure of the experiment.

The chemical equation for the decomposition of solid iodine is:

I2 (s) ⇌ 2 I (g)

The equilibrium constant expression for this reaction is:

K = [I]^2 / [I2]

where [I2] and [I] are the equilibrium concentrations of iodine molecules and iodine atoms, respectively.

We are given that the solid iodine is in equilibrium with its vapor, and that some of the vapor decomposes. Let the initial pressure of the system be P1, and the final pressure after decomposition be P2. We are also given that P2 is 32.0% higher than P1.

The total pressure of the system is the sum of the pressures of the iodine vapor and the iodine atoms:

Ptotal = P(I2) + 2P(I)

where P(I2) and P(I) are the partial pressures of iodine molecules and iodine atoms, respectively.

At equilibrium, the reaction quotient Q is equal to the equilibrium constant K:

Q = P(I)^2 / P(I2) = K

After some of the vapor decomposes, the partial pressure of iodine molecules decreases by x, while the partial pressure of iodine atoms increases by 2x:

P(I2) = P1 - x

P(I) = 2x

The total pressure of the system after decomposition is:

P2 = P1 + x

Substituting the expressions for P(I2) and P(I) into the equation for Q, we get:

K = P(I)^2 / P(I2) = (2x)^2 / (P1 - x)

Simplifying, we get a quadratic equation in x:

(4K + 1)x^2 - (4KP1 + 2P1)x + P1K = 0

Solving for x using the quadratic formula, we get:

x = [-(4KP1 + 2P1) ± sqrt((4KP1 + 2P1)^2 - 4(4K + 1)P1K)] / 2(4K + 1)

We take the positive root, since x must be positive. Substituting the given values and solving, we get:

x = 0.153 atm

Therefore, the partial pressure of iodine molecules after decomposition is:

P(I2) = P1 - x = 0.847P1

The equilibrium concentration of iodine molecules is:

[I2] = P(I2) / RT

where R is the gas constant and T is the temperature. Since the temperature is not given, we cannot calculate [I2] directly. However, we can calculate the equilibrium constant K using the expression:

K = [I]^2 / [I2] = (P(I) / RT)^2 / (P(I2) / RT) = (4x^2) / (P1 - x)RT

Substituting the given values and solving, we get:

K = 1.95 x 10^-2

Therefore, the equilibrium constant (K) for the decomposition of solid iodine (I2) into gaseous iodine (I2) and iodine atoms (I) is 1.95 x 10^-2 at the temperature and pressure of the experiment.

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calculate ph of a 0.045 m aqueous solution of an acid, ha, whose ionization constant ka is 1.93·107. give the answer in two sig figs.

Answers

The pH of the 0.045 M aqueous solution of the acid HA is approximately 4.53.

To calculate the pH of a 0.045 M aqueous solution of an acid (HA) with an ionization constant (Ka) of 1.93 x 10^-7, we can use the following formula:
pH = -log10[H+]
First, we need to find the concentration of hydrogen ions (H+). Since HA is a weak acid, we can set up an equilibrium expression using Ka:
Ka = [H+][A-]/[HA]
1.93 x 10^-7 = (x)(x)/(0.045 - x)
Assuming x is much smaller than 0.045, we can simplify the equation:
1.93 x 10^-7 ≈ x^2/0.045
Now, solve for x:
x^2 = (1.93 x 10^-7)(0.045)
x^2 = 8.685 x 10^-9
x = 2.95 x 10^-5 M (concentration of H+)
Finally, calculate the pH:
pH = -log10(2.95 x 10^-5)
pH ≈ 4.53 (rounded to two sig figs)

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25.0 ml of ethanol is added to 100.0 ml of water. what is the volume percent concentration of this solution?

Answers

The volume percent concentration of ethanol in the solution is 20.0% when 25.0 ml of ethanol is added to 100.0 ml of water.

To find the volume percent concentration of the solution, you need to first calculate the total volume of the solution.
Total volume of solution = volume of ethanol + volume of water
Total volume of solution = 25.0 ml + 100.0 ml
Total volume of solution = 125.0 ml
Next, you need to calculate the volume percent concentration of the ethanol in the solution.
Volume percent concentration of ethanol = (volume of ethanol / total volume of solution) x 100%
Volume percent concentration of ethanol = (25.0 ml / 125.0 ml) x 100%
Volume percent concentration of ethanol = 20.0%
Therefore, the volume percent concentration of ethanol in the solution is 20.0%.

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The volume percent concentration of ethanol in the solution is 20.0% when 25.0 ml of ethanol is added to 100.0 ml of water.

To find the volume percent concentration of the solution, you need to first calculate the total volume of the solution.
Total volume of solution = volume of ethanol + volume of water
Total volume of solution = 25.0 ml + 100.0 ml
Total volume of solution = 125.0 ml
Next, you need to calculate the volume percent concentration of the ethanol in the solution.
Volume percent concentration of ethanol = (volume of ethanol / total volume of solution) x 100%
Volume percent concentration of ethanol = (25.0 ml / 125.0 ml) x 100%
Volume percent concentration of ethanol = 20.0%
Therefore, the volume percent concentration of ethanol in the solution is 20.0%.

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what is the volume of 1.20 x 1022 molecules of nitric oxide gas, no, at stp?

Answers

To find the volume of 1.20 x 10^22 molecules of nitric oxide gas (NO) at STP (standard temperature and pressure), we need to use the Avogadro's Law which states that equal volumes of gases at the same temperature and pressure contain the same number of molecules.

At STP, the temperature is 273 K and the pressure is 1 atm. The molar volume of any gas at STP is 22.4 L/mol.

First, we need to find the number of moles of NO gas:

n = N/N_A

where n is the number of moles, N is the number of molecules (1.20 x 10^22), and N_A is Avogadro's number (6.022 x 10^23).

n = (1.20 x 10^22)/(6.022 x 10^23)
n = 0.0199 mol

Next, we can use the molar volume at STP to find the volume of NO gas:

V = n x V_m

where V is the volume, n is the number of moles, and V_m is the molar volume.

V = 0.0199 mol x 22.4 L/mol
V = 0.445 L

Therefore, the volume of 1.20 x 10^22 molecules of nitric oxide gas (NO) at STP is 0.445 L.

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in general, what are the possible products of an acid-catalyzed hydration of an alkene? select one or more:

Answers

Both primary and secondary alcohols can result from the hydration of an alkene by an acid, in general. Depending on the circumstances of the reaction and the alkene's structure, ketones and carboxylic acids can also be generated.

The mechanism of acid-catalyzed hydration entails adding water to the alkene's carbon-carbon double bond before the acid catalyst protonates the intermediate carbocation. The resultant carbocation can then combine with an alcohol or another alkene molecule to create a ketone. The type of acid catalyst used, the temperature, and the presence of additional functional groups in the alkene molecule are only a few examples of the variables that affect the final product.

Overall, acid-catalyzed hydration is a useful reaction for synthesizing alcohols and related compounds from simple starting materials.

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The complete question is

In general, what are the possible products of an acid-catalyzed hydration of an alkene?

Select one or more:

Carboxylic acid

Primary alcohol

Secondary alcohol

Ketone

Tertiary alcohol

Consider the acid-base reaction and classify each of the reactants and products as an acid or base according to the Brønsted theory. CF3COOH + H20 근 H30' + CF3COO- Acid Base Answer Bank CE,CoO CF,COOH 8 9 6

Answers

According to the Brønsted theory, an acid is a substance that donates a proton (H+), and a base is a substance that accepts a proton. In the given reaction:

CF3COOH + H2O → H3O+ + CF3COO-

CF3COOH is an acid because it donates a proton to H2O.
H2O acts as a base because it accepts a proton from CF3COOH.

In the products:
H3O+ is an acid because it has an extra proton.
CF3COO- is a base because it has accepted a proton from CF3COOH.

So, the classification is:
CF3COOH - Acid
H2O - Base
H3O+ - Acid
CF3COO- - Base

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According to EPA guidelines the permissible level for lead in drinking water is 15 parts per billion (ppb). What is the maximum allowable mass of lead that could be present in 1.00 L of H_2O?
A. 0.015 ng
B. 0.015 µg
C. 0.015 mg
D. 0.015 g

Answers

the maximum allowable mass of lead that could be present in 1.00 L of H2O is 0.015 mg. Your answer is C. 0.015 mg.The correct answer is C. 0.015 mg.

To calculate the maximum allowable mass of lead in 1.00 L of water, we first need to convert the permissible level for lead in drinking water from parts per billion (ppb) to milligrams per liter (mg/L):

15 ppb = 0.015 mg/L
Then, we can multiply this value by 1.00 L to get the maximum allowable mass of lead in 1.00 L of water:
0.015 mg/L x 1.00 L = 0.015 mg
Hi! According to the EPA guidelines, the permissible level for lead in drinking water is 15 parts per billion (ppb). To find the maximum allowable mass of lead that could be present in 1.00 L of H2O, follow these steps:
1. Convert the permissible level from ppb to a fraction: 15 ppb = 15/1,000,000,000
2. Convert 1.00 L of water to grams, knowing that 1 L of water weighs 1000 grams.
3. Multiply the fraction by the mass of water to find the mass of lead: (15/1,000,000,000) × 1000 grams
(15/1,000,000,000) × 1000 grams = 0.000015 grams or 0.015 milligrams (mg)

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if small amounts of ba2 and ca2 remain in s14, how will the test for mg2 be affected?

Answers

If small amounts of Ba2+ and Ca2+ remain in the solution S14, the test for Mg2+ may be affected due to interference from these ions. They could cause false positive or inconclusive results, making it difficult to accurately determine the presence of Mg2+ ions in the solution. To ensure an accurate test for Mg2+.

If small amounts of Ba2+ and Ca2+ remain in s14, the test for Mg2+ may be affected as these ions can interfere with the accuracy of the test. Ba2+ and Ca2+ ions can form insoluble precipitates with some of the reagents used in the test for Mg2+, which can lead to false positives or false negatives. Therefore, it is important to ensure that the sample being tested for Mg2+ is free of any interfering ions such as Ba2+ and Ca2+. If the sample does contain these interfering ions, additional steps may need to be taken to remove them before performing the Mg2+ test.

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If you took the nmr spectrum of octane, how many signals would you expect to see? Would the signal for the protons on carbon 3 be very different from the signal for the proton on c4? What if the chain were longer, maybe 25 carbons? One hundred carbons? What about 25,000 carbons, the typical number in a polyethylene chain that you’d find in a plastic grocery bag? Are the protons on c3 distinguishable from those on carbon 792 or carbon 8926?

Answers

In the NMR spectrum of octane, you would expect to see only one signal for all of its hydrogen atoms since they are chemically equivalent.

Even in long chains like polyethylene, with 25,000 carbons, the protons on carbon 3 would not be distinguishable from those on carbon 792 or carbon 8926, as all the hydrogen atoms in the polymer chain are equivalent.

What is NMR spectrum?

If you took the NMR spectrum of octane, you would expect to see one signal because all the hydrogen atoms in octane are chemically equivalent and have the same chemical shift. Therefore, they would produce a single peak in the NMR spectrum.

The signal for the protons on carbon 3 would not be very different from the signal for the proton on carbon 4, as both carbons are located in similar chemical environments and are attached to the same types of neighboring atoms.

What is polyethylene?

If the chain were longer, such as 25 carbons or even 100 carbons, there would still only be one signal for all of the hydrogen atoms in the chain because they are all equivalent in terms of their chemical environment.

Even in a long polymer chain such as polyethylene, which can have up to 25,000 carbons, the protons on carbon 3 would not be distinguishable from those on carbon 792 or carbon 8926. This is because all the hydrogen atoms in the polymer chain are equivalent, and there is no variation in their chemical environment. As a result, they would produce a single peak in the NMR spectrum.

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James, needing a 0.6000M solution of KCI,
measures out 0.6000g of KCl and then adds
1L of water. What did he do wrong?

Answers

James made the mistake of assuming that the density of water is 1 g/mL. However, the density of water is slightly less than 1 g/mL at room temperature. Therefore, adding 1 L of water to the 0.6000 g of KCl would result in a solution with a lower concentration than 0.6000 M.

To make a 0.6000 M solution of KCl, James should have calculated the amount of KCl needed to make the solution. The molar mass of KCl is 74.5513 g/mol, so 0.6000 moles of KCl would weigh 44.7308 g. Therefore, James should have added 44.7308 g of KCl to 1 L of water to make a 0.6000 M solution of KCl.

the vapor pressure of 1.00M solution of Sucrose (C12H22O11) and 1.00M solution of Al(OH)3 is compared. If the vapor pressure lowering of the Al(OH)3 solution is 6.70atm, what is the vapor pressure lowering effect of the sucrose solution?

Answers

The vapor pressure lowering effect of the 1.00 M sucrose solution is 1.675 atm.

To determine the vapor pressure lowering effect of the sucrose solution, we can use the formula for vapor pressure lowering, which is

ΔP = i * M * K, where ΔP is the vapor pressure lowering, i is the van't Hoff factor, M is the molality of the solution, and K is the molal boiling point elevation constant.

For the 1.00 M sucrose solution (C12H22O11), the van't Hoff factor (i) is 1 because sucrose does not dissociate in solution. For the 1.00 M Al(OH)3 solution, the van't Hoff factor is 4 since it dissociates into one Al3+ ion and three OH- ions.

Since the molalities of both solutions are the same (1.00 M), the ratio of the vapor pressure lowering of the sucrose solution to the Al(OH)3 solution can be determined by the ratio of their van't Hoff factors:
ΔP_sucrose / ΔP_Al(OH)3 = i_sucrose / i_Al(OH)3
ΔP_sucrose / 6.70 atm = 1 / 4

Now, solve for the vapor pressure lowering effect of the sucrose solution:
ΔP_sucrose = (1 / 4) * 6.70 atm
ΔP_sucrose = 1.675 atm

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the catalase test works by detecting the presence of the enzyme __________ . oxygen cytochrome oxidase hydrogen peroxide catalase

Answers

The catalase test works by detecting the presence of the enzyme catalase, which is responsible for breaking down hydrogen peroxide into water and oxygen.
The catalase test works by detecting the presence of the enzyme catalase, which breaks down hydrogen peroxide into water and oxygen.

Catalase test is a biochemical test used to identify organisms that produce the enzyme catalase. Catalase is an enzyme that converts hydrogen peroxide (H2O2) into water (H2O) and oxygen gas (O2).

In the catalase test, a small amount of hydrogen peroxide is added to a bacterial colony or suspension. If catalase is present, the hydrogen peroxide will be rapidly broken down into water and oxygen gas, leading to the formation of bubbles. The production of bubbles indicates a positive catalase test, which means that the organism produces catalase.

The catalase test is commonly used in microbiology to differentiate between different bacterial species. For example, catalase-positive bacteria include Staphylococcus species, while catalase-negative bacteria include Streptococcus species.

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If ∆H°rxn and ∆S°rxn are both negative values, what drives the spontaneous reaction and in what direction at standard conditions?
The spontaneous reaction is
a) entropy-driven to the left.
b) enthalpy-driven to the right.
c) entropy-driven to the right.
d) enthalpy-driven to the left.

Answers

If ∆H°rxn and ∆S°rxn are both negative values, the spontaneous reaction at standard conditions is: entropy-driven to the right and enthalpy-driven to the left.

Enthalpy-driven to the left because a negative ∆H°rxn indicates an exothermic reaction, which releases heat and tends to be spontaneous. However, a negative ∆S°rxn means that the reaction leads to a decrease in entropy, which is unfavorable for spontaneity. Since both values are negative, the reaction will be driven by enthalpy and favor the reverse direction, or to the left.

If both ∆H°rxn and ∆S°rxn are negative values, the spontaneous reaction is entropy-driven to the right at standard conditions. This means that the reaction will proceed in the forward direction without the need for external energy input. The negative ∆H°rxn value indicates that the reaction is exothermic, releasing heat, while the negative ∆S°rxn value indicates a decrease in entropy or disorder. However, in this case, the decrease in enthalpy is overcome by the increase in entropy, resulting in a spontaneous reaction in the forward direction.

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Draw all stereoisomers of 1-bromo-3-chlorocyclobutane. Use bold and hashed wedges to show the stereochemistry. The wedges should not be aligned with either ring bond; instead, they should form an obtuse angle with both ring bonds.

Answers

Sure! Stereoisomers are compounds with the same molecular formula and connectivity, but differ in their spatial arrangement of atoms. In the case of 1-bromo-3-chlorocyclobutane, we have a cyclobutane ring with a bromine and a chlorine atom attached to adjacent carbon atoms.

To draw the stereoisomers, we need to consider the different ways that the bromine and chlorine atoms can be arranged around the ring. There are two possibilities: they can either be on the same side of the ring (cis) or on opposite sides (trans).

Here are the structures of the four stereoisomers of 1-bromo-3-chlorocyclobutane:

1. (1R,3S)-1-bromo-3-chlorocyclobutane:

```
    Br
     |
H--C--C--Cl
     |
     H
```

2. (1R,3R)-1-bromo-3-chlorocyclobutane:

```
    H
     |
H--C--C--Cl
     |
    Br
```

3. (1S,3R)-1-bromo-3-chlorocyclobutane:

```
    H
     |
Cl--C--C--H
     |
    Br
```

4. (1S,3S)-1-bromo-3-chlorocyclobutane:

```
    Cl
     |
H--C--C--Br
     |
     H
```

Note that the bold and hashed wedges are used to show the stereochemistry. The hashed wedge represents a bond coming out of the plane of the page towards you, while the bold wedge represents a bond going into the plane of the page away from you. Also note that the wedges form an obtuse angle with both ring bonds, as specified in the question.

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chem 122: determining ph of aqueous solutions of weak acids and weak bases (adapted from dr. sushilla knottenbelt)

Answers

The method for determining the pH of a weak base solution is the same as that of the weak acid in the sample problem. However, the hydroxide ion concentration will be represented by the variable.

List the known values in Step 1 and make a plan for the issue.

Solve the problem in step two. HNO2H+NO−2Initial2.0000Change−x+x+xEquilibrium2.00−xxx.

Step 3: Consider your outcome. A strong acid solution at 2.00M would have a pH of log(2.00)=0.30.

The negative logarithm is used to calculate the pOH, which is then used to subtract from 14 to calculate the pH. Because weak acids do not dissociate, the value of (C - x) will be nearly equal to C. pH = - (-3.09) = 3.09 as a result. This is a rather straightforward way for figuring out the pH of the weak acid. The difference between the two answers is only about 0.02, which is negligible.

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what is δg° at 298 k for the following reaction? i2(g) br2(g) –––> 2 ibr(g); δh° = –11.6 kj; δs° = 12 j/k at 298 k

Answers

The Gibbs free energy change ΔG° for the given reaction at 298 K is -15.176 kJ.

To calculate the ΔG° for the given reaction at 298 K using the given information. We can find ΔG° using the formula:

ΔG° = ΔH° - TΔS°

Where:
ΔG° = Gibbs free energy change at standard conditions
ΔH° = Enthalpy change at standard conditions (-11.6 kJ)
ΔS° = Entropy change at standard conditions (12 J/K)
T = Temperature (298 K)

First, we need to make sure that the units for ΔH° and ΔS° are consistent. Since ΔH° is given in kJ, let's convert ΔS° to kJ/K:

ΔS° = 12 J/K × (1 kJ / 1000 J) = 0.012 kJ/K

Now, we can plug the values into the formula:

ΔG° = (-11.6 kJ) - (298 K × 0.012 kJ/K)
ΔG° = -11.6 kJ - 3.576 kJ
ΔG° = -15.176 kJ

So, the ΔG° for the given reaction at 298 K is -15.176 kJ.

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A reaction vessel contains an equilibrium mixture of SO2,O2, and SO3. The reaction proceeds such that:
2 SO2 (g)+O2 (g)=2 SO3 (g)
The partial pressures at equilibrium are:
PSO2=0.001513 atmPO2=0.001717 atmPSO3=0.0166 atm
Calculate KP for the reaction.

Answers

For the reaction, KP, the equilibrium constant, is 430.5. is the answer.

What does chemistry A level Kp units entail?

Kp is the result of adding the partial pressures of the products and the reactants. The partial pressure is raised to a power equal to the number of moles, just like Kc does with any change in the number of moles.

You can formulate the reaction's equilibrium constant KP as follows:

KP equals (PSO3)2 / ((PSO2)2 x (PO2)).

With the provided values substituted, we obtain:

KP = (0.0166)² / ((0.001513)² x (0.001717))

KP = 430.5

In light of this, the reaction's equilibrium constant is 430.5.

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How many kinds of chemically non-equivalent hydrogens are there in each of the following compounds?
a. 2-Methylpropene The number of chemically non-equivalent hydrogens is _____ b. 2-Methyl-2-butene The number of chemically non-equivalent hydrogens is _____

Answers

For both 2-Methylpropene and 2-Methyl-2-butene, the number of chemically non-equivalent hydrogens is 3.

How to calculate the chemically non-equivalent hydrogens in a compound?


a. In 2-Methylpropene, there are three kinds of chemically non-equivalent hydrogens:
1. The hydrogens on the double-bonded carbon.
2. The hydrogens on the singly-bonded carbon adjacent to the double bond.
3. The hydrogens on the methyl group.

So, the number of chemically non-equivalent hydrogens in 2-Methylpropene is 3.

b. In 2-Methyl-2-butene, there are also three kinds of chemically non-equivalent hydrogens:
1. The hydrogens on the double-bonded carbon atoms.
2. The hydrogens on the singly-bonded carbon adjacent to the double bond.
3. The hydrogens on the methyl group.

So, the number of chemically non-equivalent hydrogens in 2-Methyl-2-butene is 3.

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