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)

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Answer 1

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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Related Questions

a buffer solution is 0.341 m in hcn and 0.345 m in nacn . if ka for hcn is 4.0×10-10 , what is the ph of this buffer solution?

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The pH of the buffer solution is 9.06.

To solve this problem, we need to use the Henderson-Hasselbalch equation, which relates the pH of a buffer solution to the concentrations of the acid and its conjugate base:

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

where pKa is the acid dissociation constant, [A-] is the concentration of the conjugate base, and [HA] is the concentration of the acid.

In this case, HCN is the acid and CN- is its conjugate base. The dissociation constant for HCN is given as Ka = 4.0×10^-10. The concentrations of HCN and CN- in the buffer solution are 0.341 M and 0.345 M, respectively.

We can first calculate the ratio of [CN-]/[HCN]:

[Cn-]/[HCN] = 0.345/0.341 = 1.017

Next, we can calculate the pKa using the formula:

Ka = [H+][CN-]/[HCN]

Rearranging this equation gives:

pKa = -log(Ka) + log([HCN]/[CN-])

Substituting the values given:

4.0×10^-10 = [H+][0.345]/[0.341]

[H+] = 2.99×10^-5 M

pKa = -log(4.0×10^-10) + log(0.341/0.345) = 9.21

Finally, we can plug in the values of pKa and [CN-]/[HCN] into the Henderson-Hasselbalch equation to solve for the pH:

pH = 9.21 + log(1.017) = 9.06

Therefore, the pH of the buffer solution is 9.06.

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Order the following mass measurements from smallest to largest. List the smallest measurement at the top. 1 Place these in the proper order. 10 mg 109 10 g 10 kg 10 Mg

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The order of the mass measurements from smallest to largest is: 10 mg: This is the smallest unit of mass measurement in the given list. It is equal to 0.01 grams or 0.00001 kilograms.

10 g: This is the second smallest unit of mass measurement in the given list. It is equal to 10,000 milligrams or 0.01 kilograms.

10 kg: This is the second largest unit of mass measurement in the given list. It is equal to 10,000 grams or 10,000,000 milligrams.

10 Mg: This is the largest unit of mass measurement in the given list. It is equal to 10,000 kilograms or 10,000,000 grams.

It is important to understand the different units of mass measurement and their conversions, as they are used in many fields, such as science, engineering, and medicine, to measure and calculate the properties of objects and materials.

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How many D atoms are there in a molecule of the major organic product of the following reaction sequence? Mg.ether/anhydrous condtions CD2OD/(D=^2H) O 0O 1 O 2 O 3 O none of the above

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There is 1 D atom in a molecule of the major organic product of the given reaction sequence.

Explain the D atom?

To determine the number of D atoms in a molecule of the major organic product of the given reaction sequence, please follow these steps:

Identify the starting material and reagents: In this case, the starting material is not provided, and the reagents are Mg in ether under anhydrous conditions, followed by CD2OD (where D is deuterium, ^2H).

Analyze the reaction conditions: Mg in ether is often used for the formation of Grignard reagents. Anhydrous conditions are necessary to ensure the Grignard reagent does not react with any water molecules.

Identify the reaction with CD2OD: The Grignard reagent formed in the first step will react with CD2OD, transferring one deuterium atom (D) from CD2OD to the carbon atom in the starting material, creating an alcohol with one deuterium atom.

Count the number of D atoms in the major organic product: Based on the reactions, the major organic product will contain one D atom in its molecule.

So, the answer to your question is: There is 1 D atom in a molecule of the major organic product of the given reaction sequence.

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Choose all of the reactions that will occur based on the metal activity series (See Appendix D). Note: you must choose all of the correct answers to receive credit on this question. Select all that apply A Cu(s) + H2SO4(aq) → B Zn(s) + H250,(aq) → C Cu(s) + ZnSO (aq) → D Zn(s) + Cuso,(aq) →

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The reaction that will occur on the basis of metal activity series is  Zn(s) + H2SO4(aq) → ZnSO4(aq) + H2(g) and Zn(s) + CuSO4(aq) → Cu(s) + ZnSO4(aq) .

Based on the metal activity series, the following reactions will occur:

A) Cu(s) + H2SO4(aq) → no reaction (copper is less active than hydrogen)
B) Zn(s) + H2SO4(aq) → ZnSO4(aq) + H2(g)
C) Cu(s) + ZnSO4(aq) → no reaction (copper is less active than zinc)
D) Zn(s) + CuSO4(aq) → Cu(s) + ZnSO4(aq)

Therefore, the correct answers are B and D i.e. Zn(s) + H2SO4(aq) → ZnSO4(aq) + H2(g) and Zn(s) + CuSO4(aq) → Cu(s) + ZnSO4(aq) .

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Calculate the ph of a solution that is 0.085 m in hno3 and 0.15 m in hbro. ka of hbro is 2.3x10^−9.

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The pH of a solution that is 0.085 M in HNO₃ and 0.15 M in HBrO is approximately 1.07.

To calculate the pH of this solution, first recognize that HNO₃ is a strong acid and will fully dissociate, while HBrO is a weak acid. For HNO₃, the [H⁺] concentration is 0.085 M. Next, apply the Ka expression for HBrO: Ka = [H⁺][BrO⁻] / [HBrO].

Plug in the given Ka value (2.3 x 10⁻⁹) and the initial concentration of HBrO (0.15 M). Since [H⁺] from HNO₃ is much larger than what HBrO will contribute, you can approximate [H⁺] to be 0.085 M. Solve for [BrO⁻], which is approximately 3.22 x 10⁻⁹ M.

Finally, calculate the pH using the formula pH = -log([H⁺]). The pH of the solution is approximately 1.07.

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calculate the concentration of c6h5nh3 c6h5nh3 and cl−cl− in a 0.215 mm c6h5nh3clc6h5nh3cl solution.

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The concentration of c6h5nh3 and cl− in the 0.215 mm c6h5nh3clc6h5nh3cl solution is 0.001 mol/L for both. To calculate the concentration of c6h5nh3 and cl− in a 0.215 mm c6h5nh3clc6h5nh3cl solution, we need to use the equation:

concentration = moles of solute / volume of solution

First, we need to determine the moles of c6h5nh3 in the solution:

moles of c6h5nh3 = (0.215 mm) * (1 mol / 1000 mm) = 0.000215 mol

Next, we need to determine the moles of cl− in the solution. Since there is an equal number of moles of cl− as there are moles of c6h5nh3, we can simply use the same value:

moles of cl− = 0.000215 mol

Finally, we can use the same equation to calculate the concentration of c6h5nh3 and cl−:

concentration of c6h5nh3 = 0.000215 mol / 0.215 L = 0.001 mol/L
concentration of cl− = 0.000215 mol / 0.215 L = 0.001 mol/L

Therefore, the concentration of c6h5nh3 and cl− in the 0.215 mm c6h5nh3clc6h5nh3cl solution is 0.001 mol/L for both.

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1. For parts of the free response question that require calculations, clearly show the method used and the steps involved in arriving at your answers. You must show your work to receive credit for your answer. Examples and equations may be included in your answers where appropriate. Answer the following questions related to CO2. 30-C=0 0=c=0 Diagram X Diagram z (a) Two possible Lewis electron-dot diagrams for CO2 are shown above. Explain in terms of formal charges why diagram 2 is the better diagram. (b) Identify the hybridization of the valence orbitals of the Catom in the CO2 molecule represented in diagram 2 (c) A 0.1931 mol sample of dry ice, CO2(s), is added to an empty balloon. After the balloon is sealed, the CO2(8) sublimes and the CO2(g) in the balloon eventually reaches a temperature of 21.0°C and pressure of 0.998 atm. The physical change is represented by the following equation. CO2(8) + CO2(9) AHyublimation =? (1) What is the sign (positive or negative) of the enthalpy change for the process of sublimation? Justify your answer. (11) List all the numerical values of the quantities, with appropriate units, that are needed to calculate the volume of the balloon. (iii) Calculate the final volume, in liters, of the balloon.

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V = Vf Vi = 18 cm3 18000 cm3 = 17982 cm3, for example. Since the volume in the final state is less than the volume in the starting state, the change is negative.

(a) Because K is in the fourth period whereas Na is in the third, K has a substantially higher atomic radius (280 pm vs. 227 pm). K has a bigger size since it has an additional shell.

(b) Because the K+ ion is significantly more stable than the Ca+ ion, the first-ionization energy of K is lower than that of Ca. K has the following electronic configuration: 1s2 2s2 2p6 3s1. The cation achieves the stable structure of a noble gas after losing an electron.

(c) The brittle, ionic compound Na2O also has the formula M2O. This is true because potassium and sodium are both members of the same periodic table group. They are chemically similar since they both have valency+1.

(d) The chemist has the ability to identify the substance in the sample. The chemist can determine the mass of K in the sample using elemental analysis because he is aware of its mass. The ratio of K to O in the sample can then be calculated, and it can be compared to ratios of K2O or K2O2.

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Calculate the magnesium ion molarity for a solution which has magnesium ion concentration of 176.4 ppm. O 3.26 x 103 M Mg2 O 7.26 x 10 M Mg24 0.7.26 x 10' M Mg2 3.26 x 10M Mg? D Question 8 2 pts Calculate the hardness of a water sample containing 21.4 ppm Mg2+ and 51.9 ppm Ca2+. 165.1 equivalent ppm Cacos O 217.5 equivalent ppm Caco, 23.8 equivalent ppm Cacos O 5126 equivalent ppm CaCO3

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The magnesium ion molarity for a solution with a concentration of 176.4 ppm is 7.25 x [tex]10^-^3[/tex] M, and the total hardness of a water sample containing 21.4 ppm Mg²⁺ and 51.9 ppm Ca²⁺ is 4.35 ppm of CaCO₃.

How to calculate magnesium ion molarity?

To calculate the magnesium ion molarity for a solution with a concentration of 176.4 ppm:

Convert the concentration from ppm (parts per million) to mg/L:

176.4 ppm = 176.4 mg/L

Calculate the molar mass of Mg²⁺:

Mg²⁺ has a molar mass of 24.31 g/mol

Calculate the number of moles of Mg²⁺ in 1 L of the solution:

176.4 mg/L / 24.31 g/mol = 7.25 x [tex]10^-^3[/tex] mol/L

So the magnesium ion molarity is 7.25 x [tex]10^-^3[/tex] M.

How to calculate the hardness of a water?

To calculate the hardness of a water sample containing 21.4 ppm Mg²⁺ and 51.9 ppm Ca²⁺:

Convert the concentrations from ppm to mg/L:

21.4 ppm Mg²⁺ = 21.4 mg/L

51.9 ppm Ca²⁺ = 51.9 mg/L

Calculate the equivalent concentration of each ion in the water sample:

One mole of Mg²⁺ or Ca²⁺ ions will react with two moles of the complexing agent used in the hardness test. Therefore, the equivalent concentration of each ion is calculated by dividing the concentration (in mg/L) by the ion's equivalent weight:

Equivalent weight of Mg²⁺ = 12.16 g/mol

Equivalent weight of Ca²⁺ = 20.04 g/mol

Equivalent concentration of Mg²⁺ = 21.4 mg/L / 12.16 g/mol = 1.76 equivalent ppm

Equivalent concentration of Ca²⁺ = 51.9 mg/L / 20.04 g/mol = 2.59 equivalent ppm

Calculate the total hardness of the water sample:

Total hardness = equivalent concentration of Mg2² ⁺ equivalent concentration of Ca⁺

Total hardness = 1.76 equivalent ppm + 2.59 equivalent ppm = 4.35 equivalent ppm

Convert the total hardness from equivalent ppm to ppm of CaCO₃:

1 equivalent ppm = 1 mg/L of CaCO3

So, the total hardness of the water sample is 4.35 ppm of CaCO₃.

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does the equilibrium constant change as the temperature changes? if so, explain why the equilibrium constant changes

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Yes, the equilibrium constant of a reaction changes with temperature. This is because the reaction requires different energy at different temperatures thus the equilibrium constant changes.

In a forward endothermic reaction, the rate of reaction and thus equilibrium constant increases with a decrease in temperature similarly in a forward exothermic reaction, the equilibrium constant increases with an increase in the temperature.

An equilibrium constant doesn't change with the concentration of substrate and product or the volume of the container but does with the change in temperature. The position of equilibrium in a reaction might also change with the change in temperature.

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determine the ph if 50.0 ml of .55 m hi solution is added to 0.007 L of a 0.20 M KOH solution

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First, we can write the balanced chemical equation for the reaction between HI and KOH: HI + KOH → KI + H2O Next, we need to determine which reagent is limiting.

Using the molarity and volume information given,  we can calculate that the number of moles of HI is 0.55 x 0.05 = 0.0275 mol, while the number of moles of KOH is 0.20 x 0.007 = 0.0014 mol. Since KOH is limiting, all of the KOH will react with HI to form KI and H2O.

The balanced chemical equation shows that the reaction produces one equivalent of H+ ion for every equivalent of KOH. Therefore, the number of moles of H+ ions produced is also 0.0014 mol.

To calculate the pH, we need to use the definition of pH: pH = -log[H+]. Therefore, pH = -log(0.0014) = 2.85.

Therefore, the pH of the resulting solution is approximately 2.85.

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T19. What is the main difference in the degree of electron delocalization between a 4-dimethylamino-4'nitrostilbene and a 4-dimethylamino-3'-nitrostilbene? Draw the relevant resonance contributors.

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The main difference in the degree of electron delocalization between a 4-dimethylamino-4'nitrostilbene and a 4-dimethylamino-3'-nitrostilbene is their resonance structure.

In 4-dimethylamino-4'-nitrostilbene, the electron-donating dimethylamino group and electron-withdrawing nitro group are located on opposite ends of the stilbene molecule, both para to the central double bond. This allows for greater resonance stabilization and extended electron delocalization across the entire molecule.

In contrast, in 4-dimethylamino-3'-nitrostilbene, the nitro group is meta to the central double bond. This arrangement disrupts the resonance stabilization, resulting in reduced electron delocalization.

So, the main difference is that the 4-dimethylamino-4'-nitrostilbene has greater electron delocalization due to its para positioning, while the 4-dimethylamino-3'-nitrostilbene has reduced electron delocalization due to its meta positioning.

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efore the first titration is performed you must mix the ascorbic acid powder sample with 1.5 m h2so4and kbr. what role do these reagentsplay in this initial mixing?

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The 1.5 M H2SO4 and KBr reagents play a crucial role in the initial mixing of the ascorbic acid powder sample. The H2SO4 serves as a catalyst for the reaction between ascorbic acid and iodine in the subsequent titration process. Additionally, it helps to maintain a low pH, which is necessary for the stability of the iodine.

The KBr is added to help dissolve the iodine that will be used in the titration. Together, these reagents create an ideal environment for accurate and precise titration results.
Hi! In the initial mixing before the first titration, the reagents 1.5 M H2SO4 and KBr play specific roles. H2SO4, a strong acid, helps dissolve the ascorbic acid powder and creates an acidic environment that prevents oxidation of ascorbic acid. KBr acts as a catalyst, promoting the reaction between ascorbic acid and the titrant, leading to a more accurate titration result.

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Evaluate the average potential energy.Epotential), for the ground state (n=0)of the harmonic oscillator by carrying out the appropriate integrations Match the items in the left column to the appropriate blanks in the equations on the right. Make certain each equation is complete before submitting your answer.

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The average potential energy for the ground state of the harmonic oscillator is (1/2) * ħω.

To evaluate the average potential energy ([tex]E_{potential[/tex]) for the ground state (n=0) of the harmonic oscillator, we'll use the following equation:
[tex]E_{potential} = (1/2) * m * \omega ^{2[/tex]
Here, m is the mass, ω is the angular frequency, and  is the average of the square of the position in the ground state.
The ground state wavefunction ([tex]\Psi_0[/tex]) for the harmonic oscillator is given by:
[tex]\Psi_0(x) = (\alpha /\pi )^{(1/4)} * exp(-\alpha x^2/2)[/tex]
where α = mω/ħ (ħ is the reduced Planck's constant).
To find , we integrate the product of the wavefunction and its complex conjugate, multiplied by x^2, over all space:
[tex]= \int (\Psi_0(x)) x^2 \Psi_0(x) dx[/tex]  , from -∞ to ∞
After evaluating the integral, we find:
= ħ/(2mω)
Now, substitute  back into the [tex]E_{potential[/tex] equation:
[tex]E_{potential[/tex] = (1/2) * m * [tex]\omega ^2[/tex] * (ħ/(2mω))
Simplifying this, we get:
[tex]E_{potential[/tex] = (1/2) * ħω
So, the average potential energy for the ground state of the harmonic oscillator is (1/2) * ħω.

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Draw all of the expected products for each of the following solvolysis reactions: Get help answering Molecular Drawing questions. X Your answer is incorrect. Try again. (a) Br ? E1OH heat Edit Get help answering Molecular Drawing questions. X Your answer is incorrect. Try again. (b) ? Hо heat CI (c) Br ? МеОн heat Edit Get help answering Molecular Drawing questions. Your answer is incorrect. Try again. (d) CI ? МеОн heat Edit

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(a) The solvolysis reaction of Br with E1OH in the presence of heat will result in the formation of two products - 1-bromoethanol and hydrogen bromide (HBr). The molecular drawing of the products is:

CH2OH-CH2Br + HBr

(b) The solvolysis reaction of Cl with H2O in the presence of heat will result in the formation of two products - 2-chloroethanol and hydrogen chloride (HCl). The molecular drawing of the products is:

CH3-CH(OH)-Cl + HCl

(c) The solvolysis reaction of Br with MeOH in the presence of heat will result in the formation of two products - methyl bromide and methanol. The molecular drawing of the products is:

CH3Br + CH3OH

(d) The solvolysis reaction of Cl with MeOH in the presence of heat will result in the formation of two products - methyl chloride and methanol. The molecular drawing of the products is:

CH3Cl + CH3OH

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Sort the following statements into the correct bins based on whether they most appropriately describe the binding pocket of chymotrypsin, trypsin, or elastase. Items (6 items) (Drag and drop into the appropriate area below Binding pocket consists of Binding pocket isBinding pocket relatively smallcontains two Binding pocket is relatively large Binding pocket Binding pocket contains an threonine, valine, so that only small glycine residues so that aromatic accommodate and a serine residue. amino acids can be accommodated. amino acids can positively enter the pocket. charged amino aspartic acid and two glycine and serine. ! acids due to the negatively charged aspartic acid residue.

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Binding pocket consists of aspartic acid and two glycine and serine. Binding pocket is relatively small: chymotrypsin.
Binding pocket contains two glycine residues so that only small aromatic amino acids can be accommodated: chymotrypsin.

Binding pocket is relatively large: elastase.
Binding pocket contains an aspartic acid residue: elastase.
Binding pocket can positively enter the pocket: trypsin.
The classification of the statements for the binding pockets of chymotrypsin, trypsin, and elastase:
Chymotrypsin:
1. Binding pocket contains threonine, valine, and a serine residue.
2. Binding pocket is relatively large so that aromatic amino acids can be accommodated.
Trypsin:
1. Binding pocket contains two glycine residues and a serine.
2. Binding pocket is positively charged due to the negatively charged aspartic acid residue, allowing positively charged amino acids to enter the pocket.
Elastase:
1. Binding pocket contains an aspartic acid and two glycine residues.
2. Binding pocket is relatively small so that only small amino acids can be accommodated.

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how will you know from your IR spectrum of final product if the reduction of camphor was successful? And then what is the name of the chemical you used to remove a residual amount of water in the ether solution during the camphor reduction lab

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To determine if the reduction of camphor was successful, you would analyze the IR spectrum of the final product. In the IR spectrum, you would look for a disappearance of the carbonyl peak at around 1700 cm1, which indicates that the ketone group in camphor was successfully reduced to an alcohol group in the final product.

Additionally, you would look for the appearance of a new peak at around 3400 cm-1, which indicates the presence of an alcohol group.
During the camphor reduction lab, we used magnesium sulfate (MgSO4) to remove any residual water in the ether solution. MgSO4 is a hygroscopic substance, meaning that it has a strong affinity for water and can effectively remove any remaining water in the solution. This step is important because water can interfere with the reduction reaction and affect the purity of the final product.

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for the given reaction, what volume of no2 can be produced from 2.6 l of o2, assuming an excess of no? assume the temperature and pressure remain constant.

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5.2 L of NO2 can be produced from 2.6 L of O2, assuming an excess of NO and constant temperature and pressure.

For the given reaction, the volume of NO2 that can be produced from 2.6 L of O2, assuming an excess of NO and constant temperature and pressure, can be calculated using the stoichiometry of the reaction.
First, we need to know the balanced chemical equation for the reaction:
2 NO + O2 → 2 NO2
Now, we can use the stoichiometry of the reaction to determine the volume of NO2 produced:
From the balanced equation, we see that 1 mole of O2 reacts with 2 moles of NO to produce 2 moles of NO2. Since the volume ratio is equal to the mole ratio for gases at constant temperature and pressure (according to Avogadro's Law).As per Avogadro's law,

V ∝ n

V/n = k

V1/n1 = V2/n2 ( = k, as per Avogadro’s law)
Volume of O2 : Volume of NO2 = 1 : 2
Next, plug in the given volume of O2:
2.6 L O2 : Volume of NO2 = 1 : 2
To solve for the volume of NO2, we can cross-multiply:
2.6 L O2 × 2 = Volume of NO2 × 1
5.2 L = Volume of NO2
So, 5.2 L of NO2 can be produced from 2.6 L of O2, assuming an excess of NO and constant temperature and pressure.

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at a particular temperature and pressure, the dissociation constant for water (kw) is 1.4×10-15. what is the poh of pure water under these conditions?

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The pOH of pure water under the given conditions is approximately 7.93.

How to determine pOH of a compound?

To find the pOH of pure water under the given conditions, you need to use the dissociation constant for water (Kw) which is 1.4×[tex]10^{-15}[/tex] at that particular temperature and pressure.

Step 1: Remember that for pure water, the concentration of H+ ions equals the concentration of OH- ions. Let's denote this concentration as x. So, [H+] = [OH-] = x.

Step 2: Use the dissociation constant formula: Kw = [H+][OH-]. Substitute the values we have: 1.4×[tex]10^{-15}[/tex] = [tex]x^{2}[/tex].

Step 3: Solve for x. x = sqrt(1.4×[tex]10^{-15}[/tex]) ≈ 1.18×[tex]10^{-8}[/tex].

Step 4: Use the pOH formula: pOH = -log[OH-]. Substitute the value of x: pOH = -log(1.18×1[tex]10^{-8}[/tex]).

Step 5: Calculate the pOH: pOH ≈ 7.93.

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if 0.100 mole of naphthalene is dissolved in 100. g of benzene, c6h6, the molality is __ m

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The molality of the solution is 78.11 m, which means that there are 78.11 moles of naphthalene per kilogram of benzene. The molality is a concentration unit that is defined as the number of moles of solute per kilogram of solvent.

In this case, we have 0.100 mole of naphthalene dissolved in 100. g of benzene, which is equivalent to 0.1/128.17 = 0.0007802 kg of naphthalene and 0.100/78.11 = 0.0012798 kg of benzene. Therefore, the total mass of the solution is 0.0007802 + 0.0012798 = 0.00206 kg.

To calculate the molality, we need to divide the number of moles of solute by the mass of solvent in kilograms. So, the molality is:

molality = (0.100 mol)/(0.0012798 kg) = 78.11 m

This value is a measure of the concentration of the solution and it is independent of the temperature and pressure. It is also useful in calculating other properties of the solution, such as the boiling point elevation and the freezing point depression.

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consider a mixture containing equal number of moles of he o2 ch4. determine the multicomponen diffusion coefficients associated with this mixture at 500 k and 1 atm

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the multicomponent diffusion coefficients associated with the given mixture at 500 K and 1 atm are: - DHeO2 = 1.36*10^-5 m^2/s ;- DHeCH4 = 1.44*10^-5 m^2/s ;- DO2CH4 = 0.90*10^-5 m^2/s

To determine the multicomponent diffusion coefficients associated with the mixture containing equal number of moles of He, O2, and CH4 at 500 K and 1 atm, we need to use the Stefan-Maxwell equations. These equations describe the flux of each component in a mixture and are based on the molecular weights and diffusion coefficients of each component.

The multicomponent diffusion coefficient (Dij) is defined as the rate at which a component i diffuses relative to a component j. To calculate the Dij values for the given mixture, we can use the following equation:

Dij = (1/P)*[(1/Mi) + (1/Mj)]^0.5 *[(8*k*T)/(π*μij)]

Where P is the pressure of the mixture, Mi and Mj are the molecular weights of components i and j, k is the Boltzmann constant, T is the temperature, and μij is the average viscosity between components i and j.

For the given mixture, we have:

- He: Mi = 4 g/mol
- O2: Mi = 32 g/mol
- CH4: Mi = 16 g/mol

We also need to calculate the average viscosity (μij) between each pair of components. This can be done using the Wilke-Chang equation:

μij = [∑(xi*xj*(Mi+Mj)^0.5)/(∑(xi*Vi^0.5))]^2 * [∑(xi*Vi)/(∑(xi*Vi^0.5))]

Where xi and xj are the mole fractions of components i and j, and Vi is the molar volume of component i.

At 500 K and 1 atm, we can assume ideal gas behavior and use the ideal gas law to calculate the mole fractions of each component:

- He: xi = 1/3
- O2: xi = 1/3
- CH4: xi = 1/3

We also need to calculate the molar volumes of each component at 500 K using the ideal gas law:

- He: Vi = (k*T)/P = (1.38*10^-23 J/K * 500 K)/(1 atm * 1.01325*10^5 Pa/atm) = 2.710*10^-5 m^3/mol
- O2: Vi = (k*T)/P = (1.38*10^-23 J/K * 500 K)/(1 atm * 1.01325*10^5 Pa/atm) = 2.155*10^-5 m^3/mol
- CH4: Vi = (k*T)/P = (1.38*10^-23 J/K * 500 K)/(1 atm * 1.01325*10^5 Pa/atm) = 5.387*10^-5 m^3/mol

Using these values, we can calculate the Dij values for each pair of components:

- DHeO2 = 1.36*10^-5 m^2/s
- DHeCH4 = 1.44*10^-5 m^2/s
- DO2CH4 = 0.90*10^-5 m^2/s

Therefore, the multicomponent diffusion coefficients associated with the given mixture at 500 K and 1 atm are:

- DHeO2 = 1.36*10^-5 m^2/s
- DHeCH4 = 1.44*10^-5 m^2/s
- DO2CH4 = 0.90*10^-5 m^2/s

Note that these values indicate that He and CH4 diffuse faster than O2 in this mixture.

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When benzene is treated with excess D2SO4 at room temperature, the hydrogens on the benzene ring are gradually replaced by deuterium. Write a mechanism that explains this observation. (Hint: D2SO4 is a form of the acid H2SO4 in which deuterium has been substituted for hydrogen.)

Answers

Mechanism: Electrophilic substitution via protonation and deprotonation with the aid of D2SO4, leading to gradual replacement of benzene hydrogens by deuterium.

D2SO4 serves as a source of the electrophilic H+ ion, which attacks the electron-rich benzene ring, forming a sigma complex. The sigma complex then undergoes deuterium substitution, facilitated by the presence of excess D2SO4 and the acidic environment. This process repeats until all the hydrogens on the benzene ring have been replaced by deuterium, resulting in the formation of fully deuterated benzene (hexadeuterobenzene).

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At 25 Celsius does hydrogen or nitrogen have the greater velocity?

Answers

Hydrogen has the greater velocity

Answer:

hydrogen.

Explanation:

determine the volume in ml of 0.202 m koh(aq) needed to reach the equivalence (stoichiometric) point in the titration of 34.27 ml of 0.184 m c6h5oh(aq). the ka of phenol is 1.0 x 10-10.

Answers

The volume in mL of 0.202 M KOH(aq) needed to reach the equivalence point in the titration of 34.27 mL of 0.184 M C₆HOH(aq) is 31.14 mL.

To determine the volume in mL of 0.202 M KOH(aq) needed to reach the equivalence point in the titration of 34.27 mL of 0.184 M C₆H₅OH(aq), you can use the stoichiometric relationship between the reactants.

C₆H₅OH + KOH → C₆H₅O⁻ + H₂O

At the equivalence point, the moles of KOH will equal the moles of C₆H₅OH. You can use the formula:

moles of C₆H₅OH = moles of KOH

(34.27 mL)(0.184 mol/L) = (volume of KOH)(0.202 mol/L)

Solve for the volume of KOH:

volume of KOH = (34.27 mL)(0.184 mol/L) / (0.202 mol/L) ≈ 31.14 mL

Therefore, 31.14 mL of 0.202 M KOH(aq) is needed to reach the equivalence point in the titration of 34.27 mL of 0.184 M C₆H₅OH(aq).

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A solution of 314 grams of NaI3 in 1.18 kilograms of water. Find molality.

Answers

The solution has a molality of 0.658 mol/kg.

What is molality ?

The amount of moles of solute per kilogram of solvent is known as molality (m).

We must first determine the number of moles of NaI3 in the solution in order to determine the molality of a solution containing 314 grams of NaI3 in 1.18 kilograms of water.

The formula below can be used to determine NaI3's molar mass:

Na: 1 x 22.99 = 22.99 g/mol

I: 3 x 126.90 = 380.70 g/mol

Total molar mass: 22.99 + 380.70 = 403.69 g/mol

The number of moles of NaI3 in the solution is therefore:

moles = mass/molar mass

moles = 314 g/403.69 g/mol

moles = 0.7786 mol

Next, we need to calculate the mass of water in the solution:

mass of water = 1.18 kg = 1180 g

Finally, we can determine the solution's molality:

molality = moles of solute/mass of solvent (in kg)

molality = 0.7786 mol/1.18 kg

molality = 0.658 mol/kg

Therefore, The solution has a molality of 0.658 mol/kg.

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What would be the major product of the following reaction? i) NaBH4 ii) NaH, Et20 A O=S=0 OCH2CH3 1) CH3CH2OCH(CH3)CH2CH2CH2CH3 II) (CH3CH20)2CHCHOHCH2CH2CH3 III) (CH3CH2)2CHOHCH2CH2CHOHCH3 IV) CH3OCH(C2H5)CH2CH2CH2CH3 V CH3CH2CH(OCH3)CH2CH2CHOHCH3

Answers

The major product of the reaction with reagents i) NaBH₄ and ii) NaH, Et₂0 is III) (CH₃CH₂O)₂CHCHOHCH₂CH₂CH₃.


In this reaction, we have two steps. First, NaBH₄ reduces the carbonyl group of the original compound A (an ester) to an alcohol. The reduction proceeds through a hydride transfer from the borohydride to the carbonyl carbon, resulting in an alkoxide intermediate, which subsequently picks up a proton to form the alcohol.

In the second step, NaH (a strong base) deprotonates the newly formed alcohol, forming an alkoxide anion.

The alkoxide then undergoes an intramolecular nucleophilic attack on the sulfur atom of the remaining ester group in a 5-membered ring transition state, leading to the formation of the final product III) (CH₃CH₂O)₂CHCHOHCH₂CH₂CH₃ through an S₃N-type reaction mechanism.

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what are δesys, δesur, and δeuniv for a system if 545 j of work is done by it while it absorbs 740. j of heat?

Answers

The values for δesys, δesur, and δeuniv are δesys = 740 J, δesur = -545 J, δeuniv = 195 J. The system gains 740 J of heat and does 545 J of work, resulting in a net increase of 195 J in the universe.

In this question, the system absorbs 740 J of heat, which means the change in internal energy of the system (δesys) is positive and equal to 740 J.

Since the system does 545 J of work, the surroundings experience a change in internal energy (δesur) of -545 J (work is done by the system on the surroundings, so energy is transferred out of the system).

The change in internal energy of the universe (δeuniv) is the sum of the changes in the system and the surroundings, which is δeuniv = δesys + δesur. In this case, δeuniv = 740 J + (-545 J) = 195 J. This means that there is a net increase in internal energy of 195 J in the universe as a result of this process.

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4.100 A small post DE is supported by a short 10 x 10-in. column as shown. In a section ABC, sufficiently far from the post to remain plane, determine the stress at (a) corner A. (b) corner C. 15 kips D 4.5 in. 5 in. 5 in. 5.5 inc A

Answers

The stress at corner A is [tex]\sigma_{axial} = \frac{15 \text{ kips}}{55 \text{ in}^2} = 0.27 \text{ kips/in}^2[/tex].

What is corner?

A corner is where two or more sides or edges come together. The intersection of two walls or other surfaces is often at an angle. It can also be used to describe a location that is not in the middle or major portion of a room. Corners are frequently utilised in architecture to give a design a sense of structure and order. Corner cabinets or fireplaces are two examples of corner furnishings in a space.

(a) Corner A: The axial stress equation is used to determine the stress at

corner A, [tex]\sigma_{axial} = \frac{P}{A}[/tex].

where P denotes the applied force and A is the column's cross-sectional area. In this instance, the column's cross-sectional area is and the applied force is 15 kips [tex]10 \times 5.5 = 55 \text{ in}^2[/tex].

Consequently, the pressure at Corner A is [tex]\sigma_{axial} = \frac{15 \text{ kips}}{55 \text{ in}^2} = 0.27 \text{ kips/in}^2[/tex].

(b) Corner C:  The equation for shear stress is used to compute the stress

at corner C [tex]\tau = \frac{VQ}{I}[/tex].

where I is the second moment of inertia of the cross-section, Q is the distance from the shear force to the point of interest, and V is the applied shear force. The applied shear force in this instance is 15 kips, the distance from the point of interest to the shear force is 4.5 in., and the second moment of inertia of the cross-section [tex]10 \times 5^3/12 = 208.3 \text{ in}^4[/tex].

Consequently, the pressure at corner C is [tex]\tau = \frac{15 \text{ kips} \cdot 4.5 \text{ in}}{208.3 \text{ in}^4} = 0.035 \text{ kips/in}^2[/tex].

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calculate the mass, in grams, of cr2(so4)3 required to prepare exactly 250 ml of a 0.490-m solution of cr2(so4)3.

Answers

Therefore, you need 47.922 grams of [tex]Cr_{2}(SO_{4})_{3}[/tex] to prepare exactly 250 mL of a 0.490 M solution of [tex]Cr_{2}(SO_{4})_{3}[/tex].

How to calculate the mass required to prepare a solution?

To calculate the mass of [tex]Cr_{2}(SO_{4})_{3}[/tex] required to prepare exactly 250 mL of a 0.490 M solution of [tex]Cr_{2}(SO_{4})_{3}[/tex], follow these steps:

1. Convert the volume from mL to L: 250 mL * (1 L / 1000 mL) = 0.250 L
2. Use the formula for molarity: moles = molarity * volume
  Calculate the moles of [tex]Cr_{2}(SO_{4})_{3}[/tex]: moles = 0.490 M * 0.250 L = 0.1225 mol
3. Determine the molar mass of [tex]Cr_{2}(SO_{4})_{3}[/tex]: (2 * 51.996 g/mol for Cr) + (3 * (4 * 16.00 g/mol for O + 1 * 32.07 g/mol for S)) = 103.992 g/mol + 3 * (64 + 32.07) = 103.992 g/mol + 3 * 96.07 g/mol = 391.2 g/mol
4. Calculate the mass of [tex]Cr_{2}(SO_{4})_{3}[/tex]: mass = moles * molar mass
  Mass = 0.1225 mol * 391.2 g/mol = 47.922 g

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All of the following statements concerning acid-base buffers are true EXCEPT buffers are resistant to pH changes upon addition of small quantities of strong acids or bases.

Answers

Acid-base buffers are solutions that resist changes in pH when small amounts of acids or bases are added. They work by containing a weak acid and its conjugate base or a weak base and its conjugate acid.

When a strong acid or base is added to the buffer solution, the weak acid or base reacts with it to form its conjugate and thus maintains the pH of the solution.

However, the statement "buffers are resistant to pH changes upon addition of small quantities of strong acids or bases" is incorrect. Buffers do resist changes in pH, but only to a certain extent.

When large quantities of strong acids or bases are added to the buffer solution, they can overcome the buffering capacity and cause significant changes in pH.

Therefore, the statement should read, "Buffers are resistant to pH changes upon the addition of moderate quantities of strong acids or bases." It is important to note that the buffering capacity of a solution depends on the concentration and pKa value of the weak acid or base used in the buffer.

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The Ksp of CaF2 at 25 oC is 4 x 10^-11. Consider a solution that is 1.0 x 10^-1 M Ca(NO3)2 and 3.0 x 10^-5 M NaF.
A.Q < Ksp and a precipitate will not form.
B.Q > Ksp and a precipitate will form.
C.Q > Ksp and a precipitate will not form.
D.Q < Ksp and a precipitate will form.
E.The solution is saturated.

Answers

A solution that is 1.0 x 10^-1 M Ca(NO3)2 and 3.0 x 10^-5 M NaF is Ksp and a precipitate will not form. option A.

To determine if a precipitate will form, we need to compare the reaction quotient (Q) to the equilibrium constant (Ksp).

The balanced equation for the dissolution of CaF2 is:

CaF2(s) ⇌ Ca2+(aq) + 2F-(aq)

The Ksp expression is:

Ksp = [Ca2+][F-]2

At equilibrium, the concentration of Ca2+ and F- ions will be equal to x, where x is the concentration of CaF2 that dissolves. Therefore:

[Ca2+] = x
[F-] = 2x

Substituting these expressions into the Ksp equation, we get:

Ksp = x(2x)2 = 4x3

At the given concentrations of Ca(NO3)2 and NaF, the initial concentrations of Ca2+ and F- ions will be:

[Ca2+] = 1.0 x 10^-1 M
[F-] = 3.0 x 10^-5 M

Therefore, the reaction quotient Q is:

Q = [Ca2+][F-]2 = (1.0 x 10^-1)(3.0 x 10^-5)2 = 2.7 x 10^-12

Comparing Q to Ksp, we see that:

Q < Ksp

Therefore, a precipitate will not form and the answer is A.

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