How much heat is produced by the complete reaction of 6.93 kg of nitromethane?
Nitromethane (CH3NO2) burns in air to produce significant amounts of heat.
2CH3NO2(l)+3/2O2(g)→2CO2(g)+3H2O(l)+N2(g)
ΔHorxn = -1418 kJ

At 25°C, g° = 457.14 kJ/mol and Kp = 1.15 x 10⁻²⁴.

For the reaction KP is 1103 atm1 at 25 °C (g). Nitric oxide is present in a flask at 0.02 atm and 25 °C. If 1% of the Nitric oxide is to be changed to Nitrosyl chloride at equilibrium, x105 moles of chlorine must be added. The reaction's equilibrium temperature at which it occurs.

ΔG° = ΣΔG°(products) - ΣΔG°(reactants)

The values for ΔG°(f) for each compound are:

ΔG°(f) H2O(g) = -228.57 kJ/mol

ΔG°(f) H2(g) = 0 kJ/mol

ΔG°(f) O2(g) = 0 kJ/mol

Using these values, we can calculate:

ΔG° = 2(0 kJ/mol) - 2(0 kJ/mol) - 2(-228.57 kJ/mol) = 457.14 kJ/mol

Next, we can use the relationship between ΔG° and Kp to calculate Kp:

ΔG° = -RT ln(Kp)

where R is the gas constant (8.314 J/(mol·K)), T is the temperature in kelvin (25°C = 298 K).

457.14 kJ/mol = -8.314 J/(mol·K) × 298 K × ln(Kp)

Solving for Kp:

ln(Kp) = -54.885

Kp = e(-54.885)

Kp = 1.15 x 10⁻²⁴

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As the pressure drops, the volume of the gas expands, increasing the number of potential molecule configurations in the system and raising the entropy. As a result, the system's entropy rises. One is true: Entropy rises.

There are more conceivable configurations of the molecules in the system as the temperature rises because the molecules' kinetic energy rises. As a result, the system's entropy rises.

Entropy increases.

The number of alternative configurations of the atoms in the system diminishes as the temperature drops because the kinetic energy of the particles in the system also drops. As a result, the system's entropy goes down.

The answer is that entropy falls.

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ΔH∘ = -82.8 kJ; ΔS∘ = 105.4 J/K; ΔG∘ = -61.9 kJ

The given reaction is BaCO3(s)→BaO(s)+CO2(g). Using the data in Appendix C, we can find that ΔH∘ is -82.8 kJ, ΔS∘ is 105.4 J/K, and ΔG∘ is -61.9 kJ at 25 °C. ΔH∘ represents the change in enthalpy, ΔS∘ represents the change in entropy, and ΔG∘ represents the change in Gibbs free energy at standard conditions (25 °C and 1 atm pressure).

The negative values of ΔH∘ and ΔG∘ indicate that the reaction is exothermic and spontaneous, respectively, at 25 °C.

ΔH∘ = -1586.0 kJ; ΔS∘ = -117.0 J/K; ΔG∘ = -1519.0 kJ

Explanation: The given reaction is 2P(g)+10HF(g)→2PF5(g)+5H2(g). Using the data in Appendix C, we can find that ΔH∘ is -1586.0 kJ, ΔS∘ is -117.0 J/K, and ΔG∘ is -1519.0 kJ at 25 °C.

The negative values of ΔH∘ and ΔG∘ indicate that the reaction is exothermic and spontaneous, respectively, at 25 °C. The negative value of ΔS∘ indicates a decrease in entropy during the reaction, which is not favorable for spontaneity.

ΔH∘ = 0 kJ; ΔS∘ = 77.9 J/K; ΔG∘ = -243.8 kJ

Explanation: The given reaction is K(s)+O2(g)→KO2(s). Using the data in Appendix C, we can find that ΔH∘ is 0 kJ, ΔS∘ is 77.9 J/K, and ΔG∘ is -243.8 kJ at 25 °C.

The ΔH∘ value of 0 kJ indicates that the reaction is thermally balanced, and the positive value of ΔS∘ indicates an increase in entropy during the reaction. However, the negative value of ΔG∘ indicates that the reaction is not spontaneous at 25 °C, as it requires energy input to proceed.

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The solubility of Pb(IO3)2 in 0.10 M KIO3(aq) is [tex]1.38 x 10^-9 g/L.[/tex]

The solubility of Pb(IO3)2 can be calculated using the common ion effect. When KIO3 is added to the solution, it dissociates to release IO3- ions, which are also present in the Pb(IO3)2 solubility equilibrium. The additional IO3- ions reduce the solubility of Pb(IO3)2, according to Le Chatelier's principle.

First, we need to calculate the concentration of IO3- ions from 0.10 M KIO3:

[IO3-] = 0.10 M

Next, we can use the solubility product expression for Pb(IO3)2:

[tex]Ksp = [Pb2+][IO3-]^2[/tex]

Since we know [IO3-], we can solve for [Pb2+]:

[tex][Pb2+] = sqrt(Ksp/[IO3-]^2) = sqrt(3.70 x 10^-13 / (0.10)^2) = 1.23 x 10^-10 M[/tex]

Finally, we can convert this to solubility using the molar mass of Pb(IO3)2 (561.21 g/mol):

Solubility =[tex][Pb2+] x molar mass of Pb(IO3)2 = 1.23 x 10^-10 M x 561.21 g/mol = 1.38 x 10^-9 g/L[/tex]

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The mass is 82.5 g, rounded to three significant numbers. The correct response is B. 82.5 g.

The ratio between the atomic mass unit and gramme mass unit sizes affects the number in a mole, or Avogadro's number. In contrast to the mass of one hydrogen atom, which is approximately one unit, one mole of hydrogen atoms weighs about one gramme.

Atoms per gramme One mole of an element has a mass equal to its atomic weight in grammes. a gramme-sized molecule It is referred to as a material's molecular mass, or the number of grammes of that substance.

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The process through which a liquid turns into a gas or vapor at a specific temperature and pressure is known as the rate of evaporation.

VARIOUS FACTORS ARE;

1)Temperature: The particles move more quickly and collide more frequently at higher temperatures because their kinetic energy is higher. As a result, temperature causes an increase in the rate of evaporation. For instance, water vaporizes more quickly at higher temperatures than it does at lower ones

2)Surface area: The rate of evaporation increases as the surface area of the liquid increases. This is because more particles are exposed to the air and can escape from the liquid. For example, a puddle of water will evaporate more quickly if it is spread out over a larger surface area than if it is confined to a small container.

3)Liquid kind: The type of liquid affects how quickly it evaporates. More easily than liquids with stronger intermolecular interactions, weaker intermolecular force liquids evaporate. For instance, ethanol has fewer intermolecular interactions than water, which causes it to evaporate more quickly.

In conclusion, the composition of the liquid, surface area, humidity, and temperature all have an impact on the rate of evaporation.

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If reaction occurs in the basic solution. The Balance chemical equation by adding only OH− or H2O would be : Zn(s) + 4OH-(aq) + NO3-(aq) → NH3(aq) + Zn(OH)4 2-(aq), and The coefficients are: 1, 4, 1, 1, 1.

To balance the given reaction in basic solution, we'll add OH⁻ and/or H₂O as needed. Here's the balanced equation:

Zn(s) + 2NO₃⁻(aq) + 10OH⁻(aq) → 6NH₃(aq) + Zn(OH)₄²⁻(aq) + 2H₂O(l)

Now, let's find the sum of the coefficients:
1 (for Zn) + 2 (for NO₃⁻) + 10 (for OH⁻) + 6 (for NH₃) + 1 (for Zn(OH)₄²⁻) + 2 (for H₂O) = 22.

We know that a reaction has to do with the combination of two or more chemical species. On thing that we must know is that the combination of the species would lead to the production of a new substance. This is what we can also be able to call a chemical change.

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The molarity of the aqueous solution containing 129 g of glucose in 200 mL of solution is 3.58 M, which is option (3) in the given choices.

To calculate the molarity (M) of the solution, we need to first calculate the number of moles of glucose present in the solution.

As the molar mass of glucose = (6 x 12.01 g/mol) + (12 x 1.01 g/mol) + (6 x 16.00 g/mol) = 180.18 g/mol

Number of moles of glucose = Mass of glucose / Molar mass of glucose

                                                = 129 g / 180.18 g/mol

                                                = 0.716 mol

Now, we need to calculate the volume of the solution in liters.

Volume of solution = 200 mL / 1000 mL/L

                                = 0.2 L

Finally, we can calculate the molarity of the solution using the formula:

Molarity (M) = Number of moles of solute / Volume of solution in liters
                   = 0.716 mol / 0.2 L

                   = 3.58 M

Therefore, the molarity of the aqueous solution is option (3).

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To determine the number of compounds with the formula C4H11N that contain a 2 degree amine and a single 2 degree carbon atom, we need to consider the possible structures of compounds with this formula.

Therefore, the answer is (b) 1.

To determine the number of compounds with the formula C4H11N that contain a 2 degree amine and a single 2 degree carbon atom, we need to consider the possible structures of compounds with this formula.

There are three isomers of C4H11N with a 2 degree amine:

1. N,N-dimethylethylamine (also known as tert-butylamine)
2. N-methyl-N-(2-propanyl)amine (also known as sec-butylamine)
3. N,N-diethylmethanamine (also known as diethylmethylamine)

Out of these three isomers, only one of them has a single 2 degree carbon atom: N-methyl-N-(2-propanyl)amine (sec-butylamine).

Therefore, the answer is (b) 1.

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the labels which correspond with the more stable resonance structure are:  B. Secondary, C. Tertiary, D. Allylic, and E. Benzylic.

To determine which labels correspond with the more stable resonance structure, we need to evaluate each term:
A. Primary: Primary carbocations are less stable than secondary or tertiary carbocations due to less hyperconjugation. So, this option does not correspond to a more stable resonance structure.

B. Secondary: Secondary carbocations are more stable than primary carbocations but less stable than tertiary carbocations due to moderate hyperconjugation. This option can be considered as a relatively stable resonance structure.

C. Tertiary: Tertiary carbocations are the most stable among primary, secondary, and tertiary carbocations because of greater hyperconjugation. This option corresponds to a more stable resonance structure.

D. Allylic: Allylic carbocations are stabilized by resonance, as the positive charge can be delocalized between two carbon atoms. This option corresponds to a more stable resonance structure.

E. Benzylic: Benzylic carbocations are also stabilized by resonance, as the positive charge can be delocalized over the entire benzene ring. This option corresponds to a more stable resonance structure.

Your answer: B. Secondary, C. Tertiary, D. Allylic, and E. Benzylic.

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Ethanol and 1-hexanol are both polar compounds due to the presence of hydroxyl groups.

They exhibit partial positive and negative charges on their atoms, allowing them to form hydrogen bonds with other polar molecules. However, 1-hexanol has a longer hydrocarbon chain than ethanol, which makes it less polar and less soluble in water.

As a result, ethanol and 1-hexanol are not miscible in each other. The difference in their polarities makes it difficult for them to form hydrogen bonds with each other. Therefore, they will tend to separate from each other in a mixture.

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The freezing point depression of the solution can be used to determine the number of particles (ions and/or molecules) present in the solution. In this case, since oxalic acid does not completely dissociate in water,

we assume that it is a nonelectrolyte and will not dissociate into ions. Therefore, the expected depression of the freezing point would be equal to the product of the freezing point depression constant (Kf) and the molality (mol/kg) of the solute. By calculating the molality and comparing it with the expected depression, we can we assume that it is a nonelectrolyte and will not dissociate into ions.  determine the percent dissociation/ionization of oxalic acid. The calculated percent ionization of oxalic acid in this solution is approximately 26.8%, which is option (B).

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Any ylide is a molecule that contains both a positively charged carbon atom and a negatively charged atom or group of atoms.

Specifically, in the context of the Wittig-reaction, the slide is a phosphorus slide, which has a phosphorus atom bonded to a positively charged carbon atom and a negatively charged oxygen or sulfur atom.

The color of the ylide is not a characteristic that can be predicted or expected based on the information given.

The color of a molecule is dependent on its electronic structure and the energy levels of its electrons, which are determined by a variety of factors including the types of atoms present and the molecular geometry.

Without more specific information about the structure of the ylide in question, it is not possible to predict its color.

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The creation of sulphur di-oxide and consumption of oxygen as well as the formation of Sulfur trioxideall contribute to the change in pressure. To calculate the moles of Sulfur trioxide produced, further data is therefore required.

Heat is produced when sulphur di-oxideis converted to Sulfur trioxide in an exothermic reaction. Vanadium pentoxide Vanadium Oxideserves as a catalyst for the reaction. Sulphur trioxide is then dissolved in a 94% solution of Sulfuric acid to produce oleum, commonly known as fuming sulfuric acid (Disulfuric acid ).

A crucial stage in the synthesis of sulfuric acid is the catalytic oxidation of sulphur di-oxideto Sulfur trioxide. It generates the Sulfur trioxide needed to make Sulfuric acid(l) later. Oxidation of sulphur di-oxide+0.5oxygen to Sulfur trioxide is always carried out by circulating warm sulphur di-oxide-bearing gas across horizontal catalyst beds made of Vanadium, pottasium , sodium , cesium , sulphur , oxygen, and silicon di-oxide.

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The total pressure inside the tank is the sum of the partial pressures of the three gases:

Total pressure = partial pressure of oxygen + partial pressure of helium + partial pressure of nitrogen

Total pressure = 35 atm of O2 + 0 atm of He + 0 atm of N2

Total pressure = 35 atm

The sum of the partial pressures of all gases in the air must equal the total pressure of the air. Therefore, the partial pressure of the remaining air is:

Partial pressure of remaining air = Total pressure - partial pressure of carbon dioxide - partial pressure of hydrogen sulfide

Partial pressure of remaining air = 0.99 atm - 0.05 atm - 0.02 atm

Partial pressure of remaining air = 0.92 atm

The partial pressures of oxygen and chlorine are given in different units. We need to convert the partial pressure of oxygen from mmHg to atm before we can add it to the partial pressure of chlorine in order to find the total pressure.

1 atm = 760 mmHg

Partial pressure of oxygen = 401 mmHg / 760 mmHg/atm = 0.527 atm

Now we can add the partial pressures of oxygen and chlorine to find the total pressure:

Total pressure = partial pressure of oxygen + partial pressure of chlorine

Total pressure = 0.527 atm + 0.639 atm

Total pressure = 1.166 atm

Thus, the total pressure is 1.166 atm.

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The major organic product of this reaction is not specified, as the reaction conditions provided are incomplete.

The reagent list includes [tex]KMnO_{4}[/tex], which is an oxidizing agent, and heat, which suggests a potential elimination or rearrangement reaction.

However, without a starting material or more specific reaction conditions, it is impossible to determine the major organic product.

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Lactic acid, the end product of anaerobic metabolism of glucose during strenuous exercise, has the systematic name (S)-2-hydroxypropanoic acid. Its structure can be represented as follows:

CH3 - CH(OH) - COOH

In this structure, the chiral carbon atom is the one connected to the hydroxyl group (OH). To indicate stereochemistry, we can use wedge and hash bond tools. In the (S)-isomer, the wedge bond will be used for the OH group, while the hash bond will be used for the hydrogen atom bonded to the chiral carbon.

(S)-2-hydroxypropanoic acid:
     OH
      |
H3C - C - COOH
      |
      H

Please note that the structure is a text-based representation, and it is recommended to draw the structure on paper or using a molecular modeling software for better visualization.

As for meso compounds, they have chiral centers but are overall achiral due to the presence of an internal plane of symmetry. Lactic acid is not a meso compound, as it does not have an internal plane of symmetry.

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The Lewis structure for sulfur trioxide (SO3) molecule can be drawn as follows:

           O

         //

   O = S = O

         \\

           O

The two additional resonance structures are:

           O

        /  \\

   O - S = O

        \  //

           O

           O

         //

   O = S - O

        //

           O

In this Lewis structure, sulfur is the central atom and is bonded to three oxygen atoms through double bonds. Each oxygen atom has two lone pairs of electrons.

Sulfur trioxide is a resonance hybrid, meaning it can have multiple resonance structures that contribute to the overall structure of the molecule. The other resonance structures that satisfy the octet rule can be drawn by moving the double bond around each oxygen atom.

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The percent dissociation of the 0.417 M solution of hypochlorous acid (HClO) is approximately 0.0293%.

The percent dissociation of an acid refers to the extent to which the acid molecules dissociate into ions in solution, expressed as a percentage of the initial concentration of the acid.

1. Write the dissociation equation for HClO:
HClO ⇌ H+ + ClO-

2. Set up an ICE (Initial, Change, Equilibrium) table for the dissociation:
      HClO    H+    ClO-
I:   0.417    0      0
C:  -x        +x     +x
E:  0.417-x  x      x

3. Write the expression for the Ka:
Ka = [H+][ClO-] / [HClO]

4. Substitute the equilibrium values from the ICE table into the Ka expression:
3.5 × 10^−8 = (x)(x) / (0.417 - x)

5. Solve for x, which represents the concentration of H+ and ClO- ions at equilibrium. Since Ka is small, you can approximate that x is much smaller than 0.417, so the equation becomes:
3.5 × 10^−8 ≈ x^2 / 0.417

6. Solve for x:
x = √(3.5 × 10^−8 × 0.417) ≈ 1.22 × 10^−4

7. Calculate the percent dissociation:
Percent dissociation = (x / initial concentration) × 100%
Percent dissociation = (1.22 × 10^−4 / 0.417) × 100% ≈ 0.0293%

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The free energy change under standard condition is -117.96 kJ/mol and the free energy change for the reaction under non-standard conditions is -106.57 kJ/mol.

To calculate the standard free energy change, we use the following equation:

ΔG° = ΣΔGf°(products) - ΣΔGf°(reactants)

where ΔGf° is the standard free energy of formation of a compound. We can find the values for ΔGf° in tables of thermodynamic data.

Using the given equation, we can find the ΔG° of the reaction as:

ΔG° = [2ΔGf°(COCl2)] - [ΔGf°(CO2) + ΔGf°(CCl4)]

From the table of standard free energy of formation (ΔGf°) values:

ΔGf°(CO2) = -394.36 kJ/mol

ΔGf°(CCl4) = -95.70 kJ/mol

ΔGf°(COCl2) = -177.16 kJ/mol

Thus, the standard free energy change is:

ΔG° = [2(-177.16 kJ/mol)] - [(-394.36 kJ/mol) + (-95.70 kJ/mol)]

ΔG° = -117.96 kJ/mol

For the reaction under non-standard conditions, we use the following equation:

ΔG = ΔG° + RT ln(Q)

where R is the gas constant, T is the temperature (in Kelvin), and Q is the reaction quotient. Q can be found using the given pressures of the reactants and products.

Q =[tex](P COCl_2)^2 / (P CO_2[/tex] ×[tex]P CCl_4)[/tex]

a) At standard conditions, the reaction quotient is:

Q = (1 atm)² / (1 atm × 1 atm) = 1

Thus, the free energy change under standard conditions is simply the standard free energy change:

ΔG = ΔG° = -117.96 kJ/mol

b) For the given pressures, the reaction quotient is:

Q = (0.744 atm)² / (0.112 atm × 0.174 atm) = 20.92

Assuming room temperature (25°C or 298 K), we can calculate the free energy change:

ΔG = ΔG° + RT ln(Q)

ΔG = -117.96 kJ/mol + (8.314 J/molK × 298 K × ln(20.92))

ΔG = -106.57 kJ/mol

Therefore, the free energy change for the reaction under non-standard conditions is -106.57 kJ/mol and ΔG under standard condition is -117.96 kJ/mol.

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The molar mass of the gas is 92.5 g/mol.

The molecular formula of the gas is CH₁Cl₃.

a) Use the ideal gas law to solve for the molar mass of the gas:

PV = nRT

P = 427 torr = 0.559 atm, V = 600 mL = 0.600 L, n = 1.430 g/M mol, R = 0.0821 L atm/mol K, and T=70°C = 343 K.

Plug these values into the equation and solve for M:

(0.559 atm)(0.600 L) = 1.430 g/M ⋅ (0.0821 L atm/mol K)(343 K)

M = (0.559 atm)(0.600 L)(0.0821 L atm/mol K)(343 K) / 1.430 g​ = 92.5 g/mol

b) Find the empirical formula by converting the percentages of each element into moles and then dividing each mole value by the smallest mole value.

The percentages of each element are:

Carbon: 10.1%

Hydrogen: 0.84%

Chlorine: 89.1%

The molar masses of each element are:

Carbon: 12.01 g/mol

Hydrogen: 1.008 g/mol

Chlorine: 35.45 g/mol

Convert the percentages of each element into moles by dividing the percentage by the molar mass of the element:

Carbon: 10.1%/12.01 g/mol = 0.84 mol

Hydrogen: 0.84%/1.008 g/mol = 0.83 mol

Chlorine: 89.1%/35.45 g/mol = 2.51 mol

Then divide each mole value by the smallest mole value, which is 0.83 mol:

Carbon: 0.84 mol/0.83 mol = 1

Hydrogen: 0.83 mol/0.83 mol = 1

Chlorine: 2.51 mol/0.83 mol = 3

The empirical formula is therefore CH₁Cl₃.

The molecular formula is a multiple of the empirical formula. We can find the molecular formula by multiplying the empirical formula by the molar mass of the gas and dividing by the molar mass of the empirical formula.

The molar mass of the gas is 92.5 g/mol. The molar mass of the empirical formula is 50.5 g/mol.

The molecular formula is therefore 1.83⋅(CH₁Cl₃)=CHCl₃

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The answer is b. -1.1 degrees Celsius. The temperature at which a liquid transforms from a liquid into a solid is known as the freezing point.

To find the freezing point of the solution, we need to use the formula:
ΔT = Kf × m
where ΔT is the change in the freezing point, Kf is the freezing point depression constant for water (1.86 degrees Celsius per mole), and m is the molality of the solution.
We are given the molality of the solution, which is 1.7 moles per kilogram of water. We can convert this to moles per mole of water by dividing by the molar mass of water (18.015 g/mol):
1.7 moles / (1000 g water / 18.015 g/mol) = 0.0944 moles/mole
Now we can substitute into the formula:
ΔT = 1.86 °C/mole × 0.0944 moles/mole
ΔT = 0.176 °C
The freezing point of pure water is 0.0 degrees Celsius, so the freezing point of the solution will be:
0.0 °C - 0.176 °C = -0.176 °C

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First, we need to determine which reactant is limiting. To do this, we calculate the mole ratio of F2 to NH3 in the balanced equation:

5 mol F2 / 2 mol NH3 = 2.5 mol F2 per 1 mol NH3

If we use all of the NH3 (1.11 mol), we would need 2.5 x 1.11 = 2.775 mol of F2. However, we only have 2.67 mol of F2, so F2 is limiting.

Now we can use the mole ratio from the balanced equation to determine the moles of HF that will form:

5 mol F2 produces 6 mol HF
2.67 mol F2 produces x mol HF

x = (2.67 mol F2) x (6 mol HF / 5 mol F2) = 3.204 mol HF

Finally, we can convert moles of HF to grams:

3.204 mol HF x 20.01 g/mol = 64.11 g HF

Therefore, 64.11 grams of HF will form.
To determine the amount of HF formed in this reaction, we first need to identify the limiting reactant. We'll use the stoichiometric coefficients from the balanced equation:

5 F2 + 2 NH3 → N2F4 + 6 HF

Divide the moles of each reactant by their respective coefficients:

Fluorine: 2.67 moles / 5 = 0.534
Ammonia: 1.11 moles / 2 = 0.555

Since 0.534 is smaller than 0.555, fluorine is the limiting reactant. Now, we'll find the moles of HF formed using the stoichiometry of the balanced equation:

Moles of HF = (6 moles of HF / 5 moles of F2) x 2.67 moles of F2 = 3.204 moles of HF

Finally, we'll convert moles of HF to grams using its molar mass (20.01 g/mol):

Mass of HF = 3.204 moles of HF x 20.01 g/mol = 64.12 g

So, 64.12 grams of HF will form in this reaction.

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Answer: C) 112g of Fe contains the largest number of atoms.

Explanation: When you convert the grams of the elements in the question to the number of particles in 1 mole from there you would be able to determine which choice actually contains more number of atoms than the rest.

You first divide the grams given to you by the atomic mass and then multiply that number by Avogadro's number which is 6.022 x 10^23. As shown in the image.

Serial and single well titrations are both equally effective and substantially more efficient. Unfortunately, unlike with serial titrations, there is no way to compare the results visually.

On the colour wheel, complementary hues are in opposition to one another. For instance, if red is absorbed and all other colours are reflected, we might see green, which is red's complementary colour. The fact that the average human eye can distinguish up to 4000 colours of red but only roughly 400 shades of blue is interesting to notice.

This has to do with the anatomy of the eye and how it was created to perceive the visible spectrum of colours.

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The solubility of the unknown salt is 20.79 g/100 g water.

To calculate the solubility, divide the mass of the salt (7.743 g) by the mass of water (37.21 g) and multiply by 100. This gives the solubility in g/100 g water, which is 20.79 g/100 g water. Solubility represents the maximum amount of a solute that can dissolve in a solvent at a given temperature and pressure, and it is expressed as a concentration. In this case, the solubility of the salt in water is 20.79 g/100 g water at the given conditions.

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1. Calculate the concentration of HCl added: moles of HCl / volume of solution (in L). 2. Calculate the new concentration of H+ ions in each solution after adding HCl.. 3. Use the pH formula: pH = -log10[H+]

To calculate the pH after 0.048 mol HCl is added to 1.00 L of each of the following four solutions, we need to use the formula pH = -log[H+].

Solution 1: 0.10 M NaOH
Before adding HCl, this solution is a strong base with a pH of 13. Therefore, [H+] = 10^-13 M. When 0.048 mol of HCl is added, it reacts with all of the OH- ions to form H2O and Cl- ions. The new concentration of H+ ions is equal to the concentration of the NaOH before the HCl was added, which is 0.10 M. Therefore, the pH after adding HCl is:

pH = -log(0.10)
pH = 1.00

Solution 2: 0.20 M NH3
Before adding HCl, this solution is a weak base with a pH of 11.31. Therefore, we need to use the equilibrium expression for the reaction between NH3 and H2O to calculate the new concentration of H+ ions after adding HCl. The equilibrium constant for this reaction is Kb = 1.8 x 10^-5.

NH3 + H2O ⇌ NH4+ + OH-

At equilibrium, [NH4+] [OH-] / [NH3] = Kb
We know that [OH-] = 10^-pOH = 10^-2.69 = 0.001
Substituting into the equation gives:

[NH4+] (0.001) / (0.20 - [NH4+]) = 1.8 x 10^-5

Solving for [NH4+] gives:

[NH4+] = 4.9 x 10^-4 M

Therefore, [H+] = Kw / [OH-] = 1 x 10^-14 / 0.001 = 1 x 10^-11 M. When 0.048 mol of HCl is added, it reacts with all of the NH3 to form NH4+ and Cl- ions. The new concentration of H+ ions is equal to the concentration of NH4+ after the HCl was added, which is 4.9 x 10^-4 M. Therefore, the pH after adding HCl is:

pH = -log(4.9 x 10^-4)
pH = 3.31

Solution 3: 0.10 M HCl
Before adding HCl, this solution is a strong acid with a pH of 1. Therefore, [H+] = 10^-1 M. When 0.048 mol of HCl is added, the total concentration of H+ ions is doubled to 0.096 M. Therefore, the pH after adding HCl is:

pH = -log(0.096)
pH = 1.02

Solution 4: 0.10 M NH4Cl
Before adding HCl, this solution is an acidic salt with a pH of 5.39. Therefore, we need to use the equilibrium expression for the reaction between NH4+ and H2O to calculate the new concentration of H+ ions after adding HCl. The equilibrium constant for this reaction is Ka = 5.6 x 10^-10.

NH4+ + H2O ⇌ NH3 + H3O+

At equilibrium, [NH3] [H3O+] / [NH4+] = Ka
We know that [NH3] = [HCl] = 0.10 M
Substituting into the equation gives:

[H3O+]^2 / (0.10 - [H3O+]) = 5.6 x 10^-10

Solving for [H3O+] gives:

[H3O+] = 7.5 x 10^-6 M

Therefore, the pH before adding HCl is:

pH = -log(7.5 x 10^-6)
pH = 5.12

When 0.048 mol of HCl is added, it reacts with all of the NH4+ ions to form H2O and Cl- ions. The new concentration of H+ ions is equal to the concentration of H3O+ before the HCl was added, which is 7.5 x 10^-6 M. Therefore, the pH after adding HCl is:

pH = -log(7.5 x 10^-6)
pH = 5.12

Note that the pH did not change significantly because the original solution was already acidic due to the presence of NH4Cl.

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The formula for the compound between Ba and O is most likely to be BaO. (Option b)

Barium (Ba) is a metal, while oxygen (O) is a nonmetal. When a metal and nonmetal combine, they form an ionic compound. In an ionic compound, the metal atom loses electrons to become a cation, while the nonmetal atom gains electrons to become an anion. The charges on the cation and anion must balance each other out in order to form a neutral compound.

The charge on a Ba ion is +2, while the charge on an O ion is -2. Therefore, in order to balance the charges, one Ba ion will combine with one O ion. The formula for this compound will be BaO, with a 1:1 ratio of Ba to O.

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When pressure is maintained constant, the volume of a particular mass of gas varies in person with the true temperature of the gas.  The volume of a specific quantity of a gas is inversely related to its pressure at constant temperature.

Each thing in three dimensions takes up some space. The volume of this area is what is being measured. The space filled within an object's borders in three dimensions is referred to as its volume. It is sometimes referred to as the object's capacity.

When pressure is maintained constant, the volume of a particular mass of gas varies in person with the true temperature of the gas.  The volume of a specific quantity of a gas is inversely related to its pressure at constant temperature.

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When the rate of forward and backward reactions in a chemical reaction are equal, equilibrium concentration occurs. The products and reactants remain unchanged at the same time. The correct option is C.

The hydrogen ion concentration in the solution is displayed inversely on the pH scale, which is logarithmic. More exactly, the pH of a solution is equal to its hydrogen ion concentration in moles per liter divided by its negative logarithm to base 10.

pH = -log[H₃O⁺]

[tex][H_{3} O^{+} ]=10^{-pH}[/tex]

[tex][H_{3} O^{+} ]=10^{-1.65}[/tex]

[H₃O⁺] = 0.022

The dissociation of HNO₂ is:

HNO₂ ⇌ H₃O⁺ + NO₂⁻

Kₐ = [H₃O⁺][NO₂⁻] / [HNO₂]

We assumed the initial concentration of HNO₂ to be x, and the equilibrium concentration of H₃O⁺ and NO₂⁻ will also be x.

4.5 × 10⁻⁴ = (0.022)(x) / x

4.5 × 10⁻⁴ = 0.022

The equilibrium concentration of HNO₂ does not depend on the initial concentration and is solely determined by the value of Ka.

The equilibrium concentration of nitrous acid (HNO₂) in the solution is approximately 0.022 M.

Thus the correct option is C.

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