A sample of oxygen (O2) gas occupies a volume of 251 mL at 735 torr of pressure. Calculate the volume the oxygen will occupy if the pressure changes to 825 torr.

Answers

Answer 1

The volume the oxygen will occupy if the pressure changes to 825 torr is 223.62 mL.

How to calculate volume?

The volume of a gas with a changing pressure can be calculated in accordance to Boyle's law as follows;

P₁V₁ = P₂V₂

Where;

P₁ and V₁ = initial pressure and volumeP₂ and V₂ = final pressure and volume

According to this question, a sample of oxygen gas occupies a volume of 251 mL at 735 torr of pressure. If the pressure changes to 825 torr, the new volume can be calculated as follows:

251 × 735 = V × 825

V = 184,485 ÷ 825

V = 223.62 mL

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Related Questions

g consider a semiconductor with 10 13 donors/cm 3 which have a binding energy of 10 mev. (a) what is the concentration of extrinsic conduction electrons at 300 k? (b) assuming a gap energy of 1 ev (and m* ? m 0 ), what is the concentration of intrinsic conduction electrons? (c) which contribution is larger?

Answers

At 300 K, some of the donors will ionize, releasing electrons into the conduction band. The concentration of extrinsic conduction electrons can be calculated using the equation [tex]n = N_D * exp(-E_D/kT),[/tex] where n is the concentration of electrons, [tex]N_D[/tex] is the donor concentration, [tex]E_D[/tex] is the binding energy of the donors, k is Boltzmann's constant, and T is the temperature in Kelvin.

(b) At 300 K, some electrons will also be thermally excited into the conduction band, creating intrinsic conduction. The concentration of intrinsic conduction electrons can be calculated using the equation [tex]n_i = N_C * exp(-E_G/2kT)[/tex] , where [tex]n_i[/tex] is the concentration of electrons, [tex]N_C[/tex] is the effective density of states in the conduction band, and [tex]E_G[/tex] is the bandgap energy.

(c) The contribution of intrinsic conduction is generally smaller than that of extrinsic conduction, as the concentration of dopants is usually much higher than the intrinsic carrier concentration at room temperature.

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rade 11 Text Books Exercise 5.4 Answer the following questions: 1. 5.0 mole of ammonia were introduced into a 5.0 L reaction chamber in which it is partially decomposed at high temperatures. CHEMISTRY GRADE 11 267 2NH₂(g) 3H₂(g) + N₂(g) At equilibrium at a particular temperature, 80.0% of the ammonia had reacted. Calculate K for the reaction.​

Answers

At the given temperature, the equilibrium constant K for the reaction is 0.5625 mol/L.

How to determine equilibrium constant?

The balanced chemical equation for the reaction is:

2NH₃(g) ⇌ 3H₂(g) + N₂(g)

The equilibrium expression for the reaction is:

K = [H₂]³[N₂] / [NH₃]²

Given that 5.0 moles of NH₃ were introduced into a 5.0 L reaction chamber, the initial concentration of NH₃ is:

[NH₃]₀ = 5.0 mol / 5.0 L = 1.0 mol/L

At equilibrium, 80.0% of the NH₃ had reacted, which means that 20.0% of NH₃ remains. Therefore, the equilibrium concentration of NH₃ is:

[NH₃] = 0.20 x 1.0 mol/L = 0.2 mol/L

The equilibrium concentrations of H₂ and N₂ can be calculated from the balanced equation:

[H₂] = (3/2) x [NH₃] = 0.3 mol/L

[N₂] = [NH₃] / 2 = 0.1 mol/L

Substituting these values into the equilibrium expression gives:

K = [H₂]³[N₂] / [NH₃]²

K = (0.3 mol/L)³ x (0.1 mol/L) / (0.2 mol/L)²

K = 0.5625 mol/L

Therefore, the equilibrium constant K for the reaction at the given temperature is 0.5625 mol/L.

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if something is oxidized, it is formally losing electrons. if something is oxidized, it is formally losing electrons. true false

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The given statement, if something is oxidized, it is formally losing electrons. if something is oxidized, it is formally losing electrons is true.

When something is oxidized, it means that it is undergoing a chemical reaction where it loses electrons. This process can be represented using oxidation numbers, which are used to keep track of the transfer of electrons between atoms during a reaction. In general, oxidation is defined as the process by which an atom, ion or molecule loses one or more electrons. This leads to an increase in the oxidation state of the atom, ion or molecule.

There are various examples of oxidation reactions that occur in everyday life. For instance, when iron rusts, it is undergoing an oxidation reaction where it loses electrons to oxygen in the air. Similarly, when a potato is cut and exposed to air, it turns brown due to an oxidation reaction between the oxygen in the air and the enzymes in the potato. In both cases, the process of oxidation involves the loss of electrons from one substance to another.

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if each orange sphere represents 0.010 mol of sulfate ion, how many moles of acid and of base reacted?

Answers

The number of moles of acid and base that react depends on the stoichiometry of the chemical reaction and the amounts of reactants used

Without additional information about the chemical reaction or system being referred to, we cannot determine the number of moles of acid and base that reacted.

If we assume that the orange spheres represent sulfate ions in a specific reaction, then we would need to know the stoichiometry of the reaction to determine the number of moles of acid and base that reacted.

For example, if the reaction involved sulfuric acid ([tex]H_2SO_4[/tex]) and sodium hydroxide (NaOH) and the orange spheres represent sulfate ions ([tex](SO_4)^{2-[/tex]), then the balanced chemical equation would be:

[tex]H_2SO_4 + 2NaOH - > Na_2SO_4 + 2H_2O[/tex]

In this case, we would need to know the amount of sodium hydroxide used to determine the number of moles of acid and base that reacted. If we know the number of orange spheres representing sulfate ions and the amount of sodium hydroxide used, we can determine the moles of acid and base that reacted.

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Find the volume of a sample of wood that has a mass of 95. 1 g and a density of 0. 857 g/mL (How do you do this!)

Answers

The volume of the sample of wood is 110.9 mL.

Volume is the measure of the amount of space which is occupied by an object or the substance. It is usually expressed in units such as liters, milliliters, cubic meters, or cubic centimeters. The volume of a solid can be calculated by measuring its dimensions and using mathematical formulas, while the volume of a liquid can be measured directly using a graduated cylinder or a pipette.

To find the volume of the sample of wood, we can apply the following formula;

Density = Mass/Volume

Rearranging the formula, we get;

Volume = Mass/Density

Substituting the given values, we get:

Volume = 95.1 g / 0.857 g/mL

Volume = 110.9 mL

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If a reaction is performed in 155 g of water with a heat capacity of 4.184 J/g °C and
the initial temperature of a reaction is 19.2°C, what is the final temperature (in units
of °C) if the chemical reaction releases 1420 J of heat?

Answer choices:
21.4
29.2
27.4
34.5

Answers

For this exercise, the formula for calculating heat is needed

[tex]Q = m × c_{s} × ∆T [/tex]

In this case, we need to fInd the difference in temperature of the water, so

[tex]∆T = \frac{Q}{m × c_{s}} = \frac{1420 J}{155 g × 4,184 J/g °C} = 2,2 °C[/tex]

Since water accepts heat from the reaction, its temperature increases therefore the final temperature is

[tex]T_{f} = T_{0} + ∆T = 19,2 °C + 2,2 °C = 21,4 °C[/tex]

someone help please its a sience testtt

Answers

The equator of the sun rotates faster than the poles.

How does the rotation of the equator of the sun differ from the rotation of the poles of the sun?

The equator of the sun rotates faster than its poles. This is known as differential rotation, and it is due to the fact that the sun is not a solid body, but is composed of gas and plasma. The equatorial regions of the sun rotate faster because they are farther from the center of the sun, where the gravitational pull is stronger, and thus experience less resistance to their motion.

The period of rotation of the equator of the sun is shorter than that of the poles. The equator rotates once every 25.4 days, while the poles rotate once every 36 days.

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A vinegar solution of unknown concentration was prepared by diluting 10. 00 mL of vinegar to a total volume of 50. 00 mL with deionized water. A 25. 00-mL sample of the diluted vinegar solution required 20. 24 mL of 0. 1073 M NaOH to reach the equivalence point in the titration. Calculate the concentration of acetic acid, CH3COOH, (in M) in the original vinegar solution (i. E. , before dilution)

Answers

The concentration of acetic acid in the original vinegar solution is 0.0435M.

Balanced chemical equation for the reaction between acetic acid (CH₃COOH) and sodium hydroxide (NaOH) is:

CH₃COOH + NaOH → CH₃COONa + H₂O

The number of moles of NaOH used in the titration will be calculated as;

moles NaOH = Molarity × Volume (in L)

moles NaOH = 0.1073 M × 0.02024 L

moles NaOH = 0.002174872

Therefore, the concentration of CH₃COOH in the diluted vinegar solution is;

C₁V₁ = C₂V₂

C₁ × 10.00 mL = C₂ × 50.00 mL

C₁ = (C₂ × 50.00 mL) ÷ 10.00 mL

C₁ = 5 × C₂

where C₁ is the concentration of CH₃COOH in the diluted vinegar solution, and C₂ is the concentration of CH₃COOH in the original vinegar solution.

The number of moles of CH₃COOH in the diluted vinegar solution is;

moles CH₃COOH = C₁ × V₁ (in L)

moles CH₃COOH = (5 × C₂) × 0.01000 L

moles CH₃COOH = 0.05000 × C₂

The concentration of CH₃COOH in the original vinegar solution can be calculated;

moles CH₃COOH in original vinegar = moles CH₃COOH in diluted vinegar

0.05000 × C₂ = 0.002174872

C₂ = 0.002174872 ÷ 0.05000

C₂ = 0.043

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which is a specific safety concern when handling the tlc developing solvent used in this experiment? keep cold, it is explosive at room temperature. keep away from open flames or hot surfaces. it forms hydrogen gas when combined with metals. do not mix with water.

Answers

A specific safety concern when handling the TLC developing solvent used in this experiment is to keep it away from open flames or hot surfaces. Option 2 is correct.

The TLC developing solvent used in this experiment is often a flammable organic solvent such as ethyl acetate or hexane. These solvents have a low flash point, which means they can ignite easily and burn rapidly if exposed to an ignition source such as an open flame or hot surface.

Therefore, it is important to keep the solvent away from open flames or hot surfaces to prevent fires and explosions. In addition, it is recommended to handle these solvents in a well-ventilated area to minimize the risk of inhalation or skin exposure. It is also important to avoid contact with reactive metals, as some solvents can react with metals to form hydrogen gas, which can be flammable or explosive.

Finally, these solvents should not be mixed with water, as they are immiscible and can form separate layers, which can cause splattering or other hazards. Hence Option 2 is correct.

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What is the mass of ether(0. 71) which can be put into a beaker holding 130ml

Answers

The mass of ether that can be put into a 130 mL beaker is approximately 92.3 grams.

How to find the mass of the ether

To calculate the mass of ether that can be put into a 130 mL beaker, we need to know the density of ether.

The density of ether varies depending on the specific type of ether, but assuming you are referring to diethyl ether, the density is approximately 0.71 g/mL.

Using the density and the volume of the beaker, we can calculate the maximum mass of ether that can be put into the beaker as follows:

Mass of ether = Density x Volume

Mass of ether = 0.71 g/mL x 130 mL

Mass of ether = 92.3 grams

Therefore, the maximum mass of diethyl ether that can be put into a 130 mL beaker is approximately 92.3 grams.

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Pi bonding occurs in each of the following species EXCEPT...
(A) CO2 (B) C2H4 (C) CN− (D) C6H6 (E) CH4

Answers

CH4 has only sigma bonds between the carbon and hydrogen atoms, and no pi bonds.

The answer is (E) CH4.



Pi bonding refers to the sharing of electrons between two atoms that occurs when two atomic orbitals with parallel electron spins overlap. Pi bonds are formed by the sideways overlap of two p orbitals.

In the given options, all except CH4 have pi bonds:

(A) CO2 has two pi bonds between the carbon atom and the oxygen atoms.
(B) C2H4 has a double bond between the two carbon atoms, which consists of one sigma bond and one pi bond.
(C) CN− has a triple bond between the carbon and nitrogen atoms, consisting of one sigma bond and two pi bonds.
(D) C6H6 has six pi bonds due to the delocalized pi electron system in the benzene ring.

In contrast, CH4 has only sigma bonds between the carbon and hydrogen atoms, and no pi bonds.

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Precautions List precautions and explain why they were taken:
when adding water to the rock salt.
during the filtration stage.
during (i) evaporation to dryness and (ii) crystallisation.​

Answers

Precautions when adding water to rock salt: Add water slowly and carefully to avoid splashing ; Precautions during filtration stage: Use filter paper that fits the funnel properly ; Precautions during (i) evaporation to dryness and (ii) crystallization: Avoid overheating solution during evaporation and stirring the solution.

What is meant by evaporation?

Physical process by which a liquid substance is transformed into  gaseous state is called evaporation.

Precautions and their explanations:

Precautions when adding water to rock salt:

Add water slowly and carefully to avoid splashing or spilling.

Use a stirring rod to dissolve salt crystals completely.

Explanation: Rock salt can be quite reactive with water, and adding too much water too quickly can cause the solution to boil or splatter. Using a stirring rod helps to dissolve salt crystals completely without creating too much agitation.

Precautions during filtration stage:

Use a filter paper that fits the funnel properly and fold it properly.

Avoid touching filter paper with your fingers.

Explanation: The filter paper needs to fit the funnel properly to ensure that all of the liquid is filtered properly.

Precautions during (i) evaporation to dryness and (ii) crystallization:

Avoid overheating solution during evaporation and stirring the solution.

Use a clean glass rod to encourage crystallization and avoid scratching the walls of the container.

Explanation: Overheating the solution can cause the salt to decompose or change its chemical properties. Stirring the solution can also lead to the formation of smaller crystals.

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at stp, what is the volume of 4.50 moles of nitrogen gas? at stp, what is the volume of 4.50 moles of nitrogen gas? 101 l 167 l 1230 l 60.7 l 3420 l

Answers

The volume of 4.50 moles of nitrogen gas at STP is approximately 101 L. So, the correct answer is 101 L.

At STP (standard temperature and pressure), the volume of one mole of any gas is 22.4 liters. Therefore, to find the volume of 4.50 moles of nitrogen gas at STP, we can simply multiply the number of moles by the molar volume:

At STP (Standard Temperature and Pressure), the volume of 4.50 moles of nitrogen gas (N2) can be calculated using the ideal gas law:

PV = nRT

Where P is the pressure (which is 1 atm at STP), V is the volume, n is the number of moles, R is the gas constant, and T is the temperature (which is 273.15 K at STP).

Rearranging this equation to solve for V, we get:

V = (nRT)/P

Substituting the values for n, R, P, and T, we get:

V = (4.50 mol x 0.08206 L atm K^-1 mol^-1 x 273.15 K)/1 atm

V = 101.3 L

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which category of amino acid contains r groups that are hydrophobic? which category of amino acid contains r groups that are hydrophobic? polar acidic basic non-polar basic and acidic

Answers

The amino acid that contains the R groups that are hydrophobic are the non - polar.

The Amino acids are the building blocks of the molecules of the  proteins. These contains the one hydrogen atom and the one amine group, the one carboxylic acid group and the one side chain that is the R group will be attached to the central carbon atom.

The side chains of the non polar amino acids includes the long carbon chains or the carbon rings, which makes them bulky. These are the hydrophobic, that means they repel the water. Therefore the non-polar amino acids are the hydrophobic.

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How many moles of h2 can be produced from x grams of mg in magnesium-aluminum alloy? the molar mass of mg is 24. 31 g/mol?

Answers

The number of moles of H₂ that can be produced from x grams of Mg is (x / 24.31)

The balanced chemical equation for the reaction between Mg and HCl is,

Mg + 2HCl → MgCl₂ + H₂

This equation shows that 1 mole of Mg reacts with 2 moles of HCl to produce 1 mole of H₂. Therefore, the number of moles of H₂ that can be produced from x grams of Mg can be calculated as follows:

Calculate the number of moles of Mg in x grams:

Number of moles of Mg = mass of Mg / molar mass of Mg

Number of moles of Mg = x / 24.31

Use the mole ratio between Mg and H₂ to calculate the number of moles of H₂ produced:

Number of moles of H₂ = Number of moles of Mg × (1 mole of H₂ / 1 mole of Mg)

Number of moles of H₂ = (x / 24.31) × (1/1)

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which method would you use to perform these reactions, grignard carboxylation or nitrile hydrolysis?

Answers

Choose the method based on your starting material: Grignard carboxylation for alkyl halide and Nitrile hydrolysis for nitriles

If the desired reactions involve the conversion of a nitrile functional group to a carboxylic acid, then the method that should be used is nitrile hydrolysis. Grignard carboxylation is a different chemical process that involves the addition of a Grignard reagent to a carbonyl group to form a carboxylic acid. Therefore, nitrile hydrolysis would be the appropriate method for the conversion of a nitrile to a carboxylic acid.
Hi! To determine the appropriate method for your reactions, let's briefly discuss each one:

1. Grignard carboxylation: This reaction involves the use of a Grignard reagent (an organomagnesium compound, typically R-MgX) reacting with carbon dioxide (CO2) to produce a carboxylic acid. It's a useful method for preparing carboxylic acids from alkyl halides.

2. Nitrile hydrolysis: This reaction involves the conversion of a nitrile (RC≡N) to a carboxylic acid (RCOOH) by reacting with water in the presence of an acid or a base as a catalyst. This method is suitable for preparing carboxylic acids from nitriles.

If your starting material is a nitrile, the appropriate method to perform the reaction would be nitrile hydrolysis. If your starting material is an alkyl halide, you would use the Grignard carboxylation method.

In summary, choose the method based on your starting material:
- Grignard carboxylation for alkyl halides
- Nitrile hydrolysis for nitriles

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The process chosen is determined on the starting material and the intended product. Grignard carboxylation is a better procedure if the starting material is an alkyl or aryl halide and the target product is a carboxylic acid. If the starting material is a nitrile and the desired product is a carboxylic acid, nitrile hydrolysis is the procedure to use.

Grignard carboxylation is a useful method for the synthesis of carboxylic acids from alkyl and aryl halides. In this reaction, a Grignard reagent (an organomagnesium compound) is first prepared by reacting an alkyl or aryl halide with magnesium metal.

The resulting Grignard reagent is then reacted with carbon dioxide to form a carboxylate intermediate, which is subsequently hydrolyzed with an acid to produce the carboxylic acid.

Nitrile hydrolysis, on the other hand, is a process that involves the conversion of a nitrile functional group (-CN) to a carboxylic acid functional group (-COOH).

In this reaction, the nitrile is typically reacted with an acid or base in the presence of water to produce an amide intermediate, which is then further hydrolyzed to form the carboxylic acid.

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which of the following is a true statement regarding entropy? multiple choice question. the entropy of a substance is lowest in the solid phase and highest in the gas phase. the entropy of a system is the same regardless of whether it is in the solid or the gas phase. the entropy of a system is lowest in the gas phase and the highest in the solid phase. the entropy of a system is independent of its phase.

Answers

Answer:

Answer (Detailed Solution Below)

Explanation:

Option 3 : Substance in solid phase has the least entropy.

phenacetin can be prepared from p-acetamidophenol, which has a molar mass of 151.16 g/mol, and bromoethane, which has a molar mass of 108.97 g/mol. the density of bromoethane is 1.47 g/ml. what is the yield in grams of phenacetin, which has a molar mass of 179.22 g/mol, possible when reacting 0.151 g of p-acetamidophenol with 0.12 ml of bromoethane?

Answers

The theoretical yield of phenacetin is 0.17922 g. However, the actual yield may be lower due to factors such as incomplete reaction, loss during purification, or experimental error.

To calculate the theoretical yield of phenacetin, we need to first determine the limiting reagent. The limiting reagent is the reactant that will be completely consumed in the reaction, thus limiting the amount of product that can be produced.

First, we need to convert the volume of bromoethane given in milliliters to grams, using its density:

0.12 ml x 1.47 g/ml = 0.1764 g bromoethane

Next, we can use the molar masses of p-acetamidophenol and bromoethane to determine the number of moles of each:

moles p-acetamidophenol = 0.151 g / 151.16 g/mol = 0.001 mol

moles bromoethane = 0.1764 g / 108.97 g/mol = 0.00162 mol

Since the reaction requires a 1:1 molar ratio of p-acetamidophenol to bromoethane, and the number of moles of p-acetamidophenol is smaller than the number of moles of bromoethane, p-acetamidophenol is the limiting reagent.

The theoretical yield of phenacetin can be calculated using the molar mass of phenacetin and the number of moles of p-acetamidophenol:

moles phenacetin = 0.001 mol p-acetamidophenol

mass phenacetin = 0.001 mol x 179.22 g/mol = 0.17922 g

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2 NO(g)+Cl2(g)⇌2 NOCl(g) Kc=2000
A mixture of NO(g) and Cl
2
(g) is placed in a previously evacuated container and allowed to reach equilibrium according to the chemical equation shown above When the system reaches equilibrium, the reactants and products have the concentrations listed in the following table:
Species Concentration (M)
NO(g) 0.050
C12(g) 0.050
NOCl(g) 0.50
Which of the following is true if the volume of the container is decreased by one-half?
A. Q = 100, and the reaction will proceed toward reactants.
B. Q = 100, and the reaction will proceed toward products.
C. Q = 1000, and the reaction will proceed toward reactants.
D. Q = 1000, and the reaction will proceed toward products.

Answers

Neither A, B, C nor D. The equilibrium position will not be affected by the change in volume.

To determine how the equilibrium of the reaction 2 NO(g) + Cl₂(g) ⇌ 2 NOCl(g) will shift if the volume of the container is decreased by one-half, we first need to calculate the reaction quotient Q.

The balanced chemical equation for the reaction is:

2 NO(g) + Cl₂(g) ⇌ 2 NOCl(g)

At equilibrium, the concentrations of the species are:

[NO] = 0.050 M

[Cl2] = 0.050 M

[NOCl] = 0.50 M

Using these values, we can calculate the value of the reaction quotient Q:

Q [tex]= [NOCl]^2 / ([NO]^2[Cl2])[/tex]= [tex](0.50)^2 / ((0.050)^2 x 0.050)[/tex] = 1000

Now we compare the value of Q to the equilibrium constant Kc:

Kc =[tex][NOCl]^2 / ([NO]^2[Cl2])[/tex] = 2000

Since Q < Kc, we can conclude that the reaction has not yet reached equilibrium and that the forward reaction will proceed to reach equilibrium.

When the volume of the container is decreased by one-half, the concentration of all species will increase due to the decrease in volume. According to Le Chatelier's principle, the reaction will shift in the direction that reduces the total number of moles of gas.

In this case, the reaction produces two moles of gas on the left-hand side and two moles of gas on the right-hand side, so the total number of moles of gas does not change. Therefore, the volume change will not have an effect on the equilibrium position.

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The correct answer is: C. Q = 1000, and the reaction will proceed toward reactants.

How to determine the reactions at equilibrium?



To determine which statement is true if the volume of the container is decreased by one-half, we need to calculate the reaction quotient (Q) for the new conditions.

When the volume is decreased by half, the concentrations of all species will double:

NO(g): 0.050 * 2 = 0.100 M
Cl2(g): 0.050 * 2 = 0.100 M
NOCl(g): 0.50 * 2 = 1.00 M

Now, calculate Q using the new concentrations:

Q = [NOCl]^2 / ([NO]^2 * [Cl2])
Q = (1.00)^2 / ((0.100)^2 * (0.100))
Q = 1 / 0.001
Q = 1000

So, Q = 1000. Now, compare Q to Kc:

Q > Kc, meaning the reaction will proceed toward the reactants to reach equilibrium.

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a sample of ideal gas at room temperature occupies a volume of 36.0 l at a pressure of 382 torr . if the pressure changes to 1910 torr , with no change in the temperature or moles of gas, what is the new volume, v2 ?

Answers

According to Boyle's law, which states that the pressure of an ideal gas is inversely proportional to its volume when the temperature and moles of gas are held constant, we can use the formula:

The new volume of the gas (V2) is approximately 7.22 L.

Given:

Initial volume (V1) = 36.0 L

Initial pressure (P1) = 382 torr

Final pressure (P2) = 1910 torr

Since the gas is ideal and there is no change in temperature or moles of gas, we can use Boyle's Law, which states that the pressure and volume of a given amount of gas are inversely proportional at constant temperature.

Mathematically, Boyle's Law is represented as:

P1 * V1 = P2 * V2

Plugging in the given values, we can solve for the new volume (V2):

382 torr * 36.0 L = 1910 torr * V2

V2 = (382 torr * 36.0 L) / 1910 torr

V2 ≈ 7.22 L

So, the new volume of the gas (V2) is approximately 7.22 L.

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Would you expect the reactivity of a five-membered ring ether such as tetrahydrofuran (Table 10.2) to be more similar to the reactivity of an epoxide or to the reactivity of a noncyclic ether? tetrahydrofuran THF O epoxide O noncyclic ether

Answers

The reactivity of epoxides in nucleophilic substitution reactions depend on the high steric strain of the 3-membered ring.

Epoxides' reactivity in nucleophilic substitution processes is influenced by the 3-membered ring's high steric strain. In comparison to a 3-membered ring, a 5-membered ring experiences less steric strain. As a result, its reactivity is more comparable to that of noncyclic ether.

One nucleophile substitutes another in a family of organic reactions known as nucleophilic substitution reactions. It closely resembles the typical displacement reactions we observe in chemistry, in which a more reactive element displaces a less reactive element from its salt solution. The "leaving group" is the group that accepts an electron pair and displaces the carbon, while the "substrate" is the molecule on which substitution occurs. In its final state, the leaving group is a neutral molecule or anion.

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Complete question:

Would you expect the reactivity of a five-membered ring ether such as tetrahydrofuran to be more similar to the reactivity of an epoxide or to the reactivity of a noncyclic ether? Why?

The reactivity of tetrahydrofuran (THF), a five-membered ring ether, to be more similar to the reactivity of an epoxide than to the reactivity of a noncyclic ether.

This is because both THF and epoxides have a strained three-membered ring that is highly reactive due to ring strain, whereas noncyclic ethers do not have this strain.

Additionally, the oxygen atom in THF and epoxides is more electrophilic due to the ring strain, making them more reactive in nucleophilic reactions. Therefore, THF is likely to react more quickly and selectively in reactions that involve the opening of the ether ring compared to noncyclic ethers.

Based on the terms provided, I would expect the reactivity of a five-membered ring ether such as tetrahydrofuran (THF) to be more similar to the reactivity of a noncyclic ether rather than an epoxide.

This is because THF has a larger ring size compared to an epoxide, which reduces the ring strain and makes it less reactive. Noncyclic ethers also have reduced strain compared to epoxides, making their reactivities more similar.

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the gain or loss of electrons from an atom results in the formation of a (an)

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The formation of ions is an essential process in chemistry and is involved in many chemical reactions and compounds.

Atoms are composed of protons, neutrons, and electrons. The number of protons in an atom determines its atomic number and the element it represents. The electrons in an atom occupy different energy levels or shells, and these electrons participate in chemical reactions. The outermost shell of electrons, called the valence shell, is particularly important in chemical reactions because it determines the chemical properties of the atom.

When an atom gains or loses electrons, it becomes charged and is called an ion. The process of gaining or losing electrons is called ionization. When an atom loses one or more electrons, it becomes a positively charged ion called a cation. Cations have a smaller number of electrons than protons and have a net positive charge. For example, when the element sodium (Na) loses one electron, it becomes a sodium ion (Na+).

On the other hand, when an atom gains one or more electrons, it becomes a negatively charged ion called an anion. Anions have a larger number of electrons than protons and have a net negative charge. For example, when the element chlorine (Cl) gains one electron, it becomes a chloride ion (Cl-).

The formation of ions is a fundamental process in many chemical reactions. Ions can combine with each other to form ionic compounds, which are compounds composed of ions held together by electrostatic forces. For example, sodium ions (Na+) and chloride ions (Cl-) can combine to form sodium chloride (NaCl), which is common table salt.

Overall, the formation of ions is an essential process in chemistry and is involved in many chemical reactions and compounds.

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when a 2.5 liter vessel is filled with an unknown gas at stp, it weighs 2.75 g more than when it is evacuated. determine the molar mass of the unknown gas

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The molar mass of the unknown gas is 27.0 g/mol.

According to the ideal gas law, PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature. At STP, the pressure is 1 atm, the volume is 2.5 L, and the temperature is 273.15 K.

To find the number of moles of gas present, we can rearrange the ideal gas law equation to solve for n:

n = PV/RT

Substituting the values at STP, we get:

n = (1 atm) x (2.5 L) / [(0.08206 L atm/mol K) x (273.15 K)]

n = 0.1018 moles

The difference in weight between the gas-filled vessel and the evacuated vessel is 2.75 g, which is the weight of 0.1018 moles of the unknown gas.

So the molar mass of the gas can be calculated as:

molar mass = mass / moles

molar mass = 2.75 g / 0.1018 mole

molar mass = 27.0 g/mol

Therefore, the molar mass of the unknown gas is 27.0 g/mol.

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The molar mass of the unknown gas is 27.0 g/mol.

According to the ideal gas law, PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature. At STP, the pressure is 1 atm, the volume is 2.5 L, and the temperature is 273.15 K.

To find the number of moles of gas present, we can rearrange the ideal gas law equation to solve for n:

n = PV/RT

Substituting the values at STP, we get:

n = (1 atm) x (2.5 L) / [(0.08206 L atm/mol K) x (273.15 K)]

n = 0.1018 moles

The difference in weight between the gas-filled vessel and the evacuated vessel is 2.75 g, which is the weight of 0.1018 moles of the unknown gas.

So the molar mass of the gas can be calculated as:

molar mass = mass / moles

molar mass = 2.75 g / 0.1018 mole

molar mass = 27.0 g/mol

Therefore, the molar mass of the unknown gas is 27.0 g/mol.

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a solution is 0.0300m in both cro42- and so42-. slowly, pb(no3)2 is added to this solution. what is the concentration of cro42- that remains in solution when pbso4 first begins to precipitate? ksp of pbcro4

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The concentration of  [tex](CrO_4)^{2-[/tex]that remains in solution when [tex]PbSO_4[/tex] first begins to precipitate is zero.

When [tex]PbSO_4[/tex] is added to the solution containing 0.0300 M of both  [tex](CrO_4)^{2-[/tex]and [tex](SO_4)^{2-[/tex], a precipitation reaction occurs where [tex]PbCrO_4[/tex] (lead chromate) and PbSO4 (lead sulfate) are formed.

The Ksp (solubility product constant) of [tex]PbCrO_4[/tex] is 1.8 x 10^-14 at 25°C. As more [tex]Pb(NO_3)^2[/tex]is added, the concentration of Pb2+ increases until it reaches a point where the Ksp of[tex]PbCrO_4[/tex] is exceeded and precipitation occurs.

At this point, all of the [tex](CrO_4)^{2-[/tex]  ions have reacted with [tex]Pb^{2+[/tex] to form [tex]PbCrO_4[/tex], and the concentration of [tex](CrO_4)^{2-[/tex] in solution is zero. The precipitation of [tex]PbCrO_4[/tex] will continue until all of the [tex]Pb^{2+[/tex] ions have reacted with [tex](CrO_4)^{2-[/tex]  ions, at which point [tex]PbSO_4[/tex] will begin to precipitate.

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a 16.60 ml portion of 0.0969 m ba(oh)2 was used to titrate 25.0 ml of a weak monoprotic acid solution to the stoichiometric point. what is the molarity of the acid?

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The molarity of the weak monoprotic acid solution is 0.0644 mol/L.

To find the molarity of the acid, we need to use the balanced chemical equation and the stoichiometry of the reaction between the acid and the base. The equation for the reaction is:

HA(aq) + Ba(OH)2(aq) → BaA2(aq) + 2H2O(l)

where HA is the weak monoprotic acid, Ba(OH)2 is the strong base, BaA2 is the barium salt of the acid, and H2O is water.

At the stoichiometric point, the moles of Ba(OH)2 used will be equal to the moles of acid present in the solution. Using the given volume and molarity of Ba(OH)2, we can calculate the moles of Ba(OH)2 used:

moles of Ba(OH)2 = volume × molarity = 16.60 ml × 0.0969 mol/L = 0.00161 mol

Since the acid is a monoprotic acid, the moles of acid present in the solution will be equal to the moles of Ba(OH)2 used. Therefore:

moles of HA = 0.00161 mol

Using the volume of the acid solution (25.0 ml), we can calculate the molarity of the acid:

molarity of HA = moles of HA / volume of HA solution in L

molarity of HA = 0.00161 mol / 0.0250 L

molarity of HA = 0.0644 mol/L

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which of the following statements about nonmetal anions are true? select all that apply. select all that apply: nonmetals tend to form anions by gaining electrons to form a noble gas configuration. nonmetals do not tend to form anions. anions of nonmetals tend to be isoelectronic with a noble gas. nonmetals tend to form anions by losing electrons to form a noble gas configuration.

Answers

The correct statements are:
1. Nonmetals tend to form anions by gaining electrons to form a noble gas configuration.
2. Anions of nonmetals tend to be isoelectronic with a noble gas.

Nonmetals do not tend to form anions and nonmetals tend to form anions by losing electrons to form a noble gas configuration are not true statements. Nonmetals do tend to form anions by gaining electrons to achieve a stable, noble gas configuration. Anions of nonmetals often have the same number of electrons as a noble gas, making them isoelectronic with that noble gas. Nonmetals do not tend to form anions by losing electrons, as they typically have a higher electronegativity and therefore attract electrons towards themselves rather than giving them up.

Therefore, the correct answer would be the first and third statements.

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Nonmetals tend to form anions by gaining electrons to form a noble gas configuration.

Anions of nonmetals tend to be isoelectronic with a noble gas.

Nonmetals have a tendency to gain electrons in order to form anions, since this allows them to achieve a noble gas electron configuration. This is particularly true for nonmetals located on the right-hand side of the periodic table, such as the halogens. In contrast, metals tend to lose electrons to form cations.

Anions of nonmetals typically have the same number of electrons as a noble gas atom with the next higher atomic number. This means that they are isoelectronic with the noble gas, and have a stable electronic configuration. For example, the chloride ion (Cl-) is isoelectronic with argon.

It is not true that nonmetals do not tend to form anions by losing electrons, as this would result in a cationic species.

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a 35.0-ml sample of 0.20 m lioh is titrated with 0.25 m hcl. what is the ph of the solution after 23.0 ml of hcl have been added to the base? group of answer choices 1.26 12.74 12.33 13.03 1.67

Answers

The pH of the solution after 23.0 mL of 0.25 M HCl have been added to the 35.0 mL of 0.20 M LiOH is 12.74.


1. Calculate the initial moles of LiOH and HCl:
  LiOH: 35.0 mL * 0.20 mol/L = 7.00 mmol
  HCl: 23.0 mL * 0.25 mol/L = 5.75 mmol

2. Determine the limiting reactant and find the moles of unreacted LiOH:
  Since HCl is the limiting reactant, subtract its moles from LiOH moles:
  7.00 mmol - 5.75 mmol = 1.25 mmol of unreacted LiOH

3. Calculate the new concentration of LiOH in the solution:
  Total volume: 35.0 mL + 23.0 mL = 58.0 mL
  New concentration: 1.25 mmol / 58.0 mL = 0.02155 mol/L

4. Calculate the pOH of the solution:
  pOH = -log10(0.02155) = 1.66

5. Find the pH of the solution:
  pH = 14 - pOH = 14 - 1.66 = 12.74

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25. j. chadwick discovered the neutron by bombarding with the popular projectile of the day, alpha particles. (a) if one of the reaction products was the then unknown neutron, what was the other product? (b) what is the q-value of this reaction?

Answers

(a) If one of the reaction products was the then unknown neutron, what was the other product is the C -12.

(b) The q-value of this reaction is the 5.9 × 10⁸ J.

The James Chadwick was discovered the neutron during the experiment involving the nuclear reaction in that the beryllium, bombarded with the alpha particles. The equation of the reaction is as :

⁴Be₉  +  ²He₄  ---->  ⁶C₁₂  +  ⁰n₁

(a) If one of the reaction products was the then unknown neutron, what was the other product is the C -12.

(b) The q-value of this reaction is as :

q = mc²

Where,

The m is the mass

The c is the speed of the light.

m = 4.002603 + 2.014102

m = 1.988501

q = 1.988501  × 3 × 10⁸

q = 5.9 × 10⁸ J

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calculate the volume of a stock solution, in liters and to the thousandths place, that has a concentration of 0.400 m koh and is diluted to 3.00 l of 0.130 m koh

Answers

The volume of the stock solution is approximately 0.975 liters, to the thousandths place.

To calculate the volume of the stock solution, you can use the dilution formula:

C₁V₁ = C₂V₂

where:
C₁ = concentration of the stock solution (0.400 M KOH)
V₁ = volume of the stock solution (unknown, in liters)
C₂ = concentration of the diluted solution (0.130 M KOH)
V₂ = volume of the diluted solution (3.00 L)

Rearrange the formula to solve for V1:

V1 = C₂V₂ / C₁

Now, plug in the given values:

V₁ = (0.130 M KOH * 3.00 L) / 0.400 M KOH

V₁ ≈ 0.975 L
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How many liters of 2.07 M sulfuric acid are needed to make 57 milliliters of a 0.58 M solution of sulfuric acid?
**Round to FOUR places after the decimal.

Answers

We need 0.0161 liters of the 2.07 M sulfuric acid solution to make 57 milliliters of a 0.58 M solution of sulfuric acid.

To solve this problem

We need to use the formula:

C1V1 = C2V2

Where

C1 is the concentration of the initial solutionV1 is the volume of the initial solutionC2 is the concentration of the final solutionV2 is the volume of the final solution

We want to find the volume of the 2.07 M sulfuric acid solution needed to make 57 milliliters of a 0.58 M solution. Let's plug in the values we know:

2.07 M * V1 = 0.58 M * 57 mL

Simplifying the equation, we get:

V1 = (0.58 M * 57 mL) / 2.07 M

V1 = 16.0874 mL

To convert the volume to liters, we divide by 1000:

V1 = 16.0874 mL / 1000 mL/L

V1 = 0.0161 L

Therefore, we need 0.0161 liters of the 2.07 M sulfuric acid solution to make 57 milliliters of a 0.58 M solution of sulfuric acid.

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