a 5.00 ml sample of vinegar contains 0.2568 g of acetic acid. if the density of vinegar is 1.00 g/ml, calculate the % acetic acid by mass. your answer: question 3 options: answer

Answers

Answer 1

The % acetic acid by mass in the vinegar sample is 5.14%.

The first step is to calculate the mass of the vinegar sample using its density:

Mass of vinegar = Volume of vinegar x Density of vinegar

Mass of vinegar = 5.00 ml x 1.00 g/ml = 5.00 g

Next, we can use the mass of acetic acid in the sample to calculate the percentage of acetic acid by mass:

% Acetic Acid = (Mass of acetic acid / Mass of vinegar) x 100%

% Acetic Acid = (0.2568 g / 5.00 g) x 100%

% Acetic Acid = 5.14%

To solve the problem, we first need to know the mass of the vinegar sample. We are given its volume and density, so we can use the density formula (density = mass / volume) to calculate the mass. Once we have the mass of the vinegar, we can use the mass of acetic acid in the sample (also given) to calculate the percentage of acetic acid by mass using the formula % Acetic Acid = (Mass of acetic acid / Mass of vinegar) x 100%.

This formula calculates the proportion of the mass of the sample that is due to acetic acid. Finally, we multiply the result by 100% to express the answer as a percentage. Therefore, the percentage of acetic acid by mass is 5.14%.

The complete question is

A 5.00 ml sample of vinegar contains 0.2568 g of acetic acid. if the density of vinegar is 1.00 g/ml, calculate the % acetic acid by mass.

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Related Questions

1. during proper cool-down activities, the aerobic energy system helps remove lactic acid by converting it to fuel. a. true b. false

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False. During proper cool-down activities, the body's aerobic energy system can help remove lactic acid from the muscles, but it does not convert it into fuel.

Lactic acid is converted into lactate, which is then transported to the liver where it is converted back into glucose through a process called gluconeogenesis. This glucose can then be used as fuel by the body. During intense exercise, the body relies heavily on the aerobic energy system to produce energy quickly. This results in the production of lactic acid, which can lead to muscle fatigue and soreness.

During the cool-down period, the body's aerobic energy system takes over to restore energy stores and remove waste products, including lactic acid. However, instead of converting lactic acid to fuel, it is actually converted into pyruvate, which then enters the mitochondria of the cell and undergoes aerobic respiration to produce ATP (adenosine triphosphate) – the primary source of energy for the body. The aerobic energy system helps remove lactic acid by converting it into pyruvate, which is then used as fuel for the production of ATP through aerobic respiration.

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PLEASE HELP!!
ways that could control an explosion for a pyrotechnic display

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Pyrotechnic displays involve controlled explosions to produce dazzling display of light and sound.

What are the ways  that could control an explosion for a pyrotechnic display?

Pyrotechnic displays involve controlled explosions to produce a dazzling display of light and sound. It is important to ensure that the explosions are safe and do not cause any harm to people or property. Some ways to control an explosion for pyrotechnic display:

Proper planning and design: The pyrotechnic display should be carefully planned and designed to ensure that the explosions are safe and controlled.

Use of safety equipment: Pyrotechnicians should wear appropriate safety equipment, including helmets, fire-resistant clothing, and ear protection, to protect themselves from the effects of explosions.

Monitoring and supervision: A team of trained professionals should be responsible for the set-up, operation, and monitoring of the pyrotechnic display.

Adherence to local regulations: The pyrotechnic display should comply with all local regulations and guidelines regarding the use of explosives and public safety.

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How do I solve these?

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The pressure exerted by the female's stiletto heel on the hard maple floor is approximately 76.1 psi.

The force that the woman is applying to the door = 300 N/m²  * 0.0200 m²

Force is 6 N

How is the pressure determined?

First, we need to convert the weight of the female from pounds to pounds-force.

Since weight is a force that is due to gravity, we can use the equation:

force = mass x acceleration due to gravity

The acceleration due to gravity is approximately 32.2 feet per second squared, so we can calculate the force as:

force = mass x acceleration due to gravity

force = 120 lbs x (1 lb-force/32.2 ft/s^2)

force = 3.73 lb-force

Next, we need to calculate the area of the heel in contact with the floor. We can use the formula for the area of a circle:

area = π x (diameter/2)^2

Plugging in the values given, we get:

area = π x (0.25 in/2)^2 = 0.049 in^2

Now we can calculate the pressure as the force divided by the area:

pressure = force/area = 3.73 lb-force / 0.049 in^2

pressure  = 76.1 psi

2. Force = Pressure * area

The force that the woman is applying to the door = 300 N/m²  * 0.0200 m²

Force = 6 N

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The molar heat of vaporization for liquid water is 40.6 kJ/mole.
How much energy is required to change 2.8 g of liquid water to steam if the water is already at 100oC?

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It would require 6.31 kJ of energy to change 2.8 g of liquid water to steam if the water is already at 100°C.

To solve this problem, we need to use the following equation:

q = n * ΔHvap

where q is the amount of energy required to vaporize the liquid, n is the number of moles of water, and ΔHvap is the molar heat of vaporization.

First, we need to calculate the number of moles of water in 2.8 g. We can use the molar mass of water, which is approximately 18 g/mol:

moles of water = mass / molar mass

moles of water = 2.8 g / 18 g/mol

moles of water = 0.1556 mol

Next, we can use the equation above to calculate the amount of energy required to vaporize this amount of water:

q = n * ΔHvap

q = 0.1556 mol * 40.6 kJ/mol

q = 6.31 kJ

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It would require 6.31 kJ of energy to change 2.8 g of liquid water to steam if the water is already at 100°C.

To solve this problem, we need to use the following equation:

q = n * ΔHvap

where q is the amount of energy required to vaporize the liquid, n is the number of moles of water, and ΔHvap is the molar heat of vaporization.

First, we need to calculate the number of moles of water in 2.8 g. We can use the molar mass of water, which is approximately 18 g/mol:

moles of water = mass / molar mass

moles of water = 2.8 g / 18 g/mol

moles of water = 0.1556 mol

Next, we can use the equation above to calculate the amount of energy required to vaporize this amount of water:

q = n * ΔHvap

q = 0.1556 mol * 40.6 kJ/mol

q = 6.31 kJ

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for a certain substitution reaction, the rate of substitution is found to be independent of both the concentration and the nature of the nucleophile. what is the most likely mechanism? neither sn1 nor sn2 can account for the observations both sn1 and sn2 are likely

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The most probable mechanism is SN1 (substitution nucleophilic unimolecular) mechanism.

If the rate of substitution for a specific substitution reaction is independent of both the nature and concentration of the nucleophile, it is not possible for both SN1 and SN2 mechanisms to account for the observations. Substitution reaction is a chemical reaction that entails the exchange of one substituent (or atom) for another in a molecule.

The substituents are exchanged with no change in the molecular framework. The nucleophile attacks the substrate (electrophile) in a substitution reaction.

Mechanism:The substitution nucleophilic unimolecular (SN1) mechanism is the most plausible mechanism. The SN1 reaction is a two-step process in which the initial step is rate-determining, while the second step is rapid. In this process, the leaving group (substituent) is first dissociated, generating a carbocation intermediate.

The nucleophile (new substituent) then attaches to the carbocation.Intermediate formation in the rate-determining step distinguishes the SN1 reaction from the SN2 reaction. The SN2 reaction is a one-step process, in which the substrate is attacked by the nucleophile while the leaving group departs.

Thus, if the rate of substitution for a specific substitution reaction is independent of the concentration and nature of the nucleophile, the SN1 mechanism is the most plausible.

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2. calculate the temperature in oc when 2.50 moles of argon occupy 25.0 l at 1.20 atm. write the ideal gas equation and give the units for each term.

Answers

The temperature when 2.50 moles of argon occupy 25.0 l at 1.20 atm. calculated is  -126. 9°C. The Ideal gas equation is,

  PV = n RT

Number of moles = 2.50 moles

V= 25.0 L

P= 1.20 atm.

Ideal gas equation can be written as,

PV = n RT

The Ideal gas equation is defined as the equation which equates the product of the pressure and the volume of one mole of a gas to the product of its thermodynamic temperature and the gas constant. It is also called as the general gas equation which designates the equation of state of a hypothetical ideal gas. This equation is a good approximation of the behavior of many gases under many conditions instead of it has several limitations.

putting all the values we get,

T = -126. 9°C

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calculate the ph of a solution prepared by adding 20.0 ml of 0.100 m hcl to 80.0 ml of a buffer that is comprised of 0.25 m nh3 and 0.25 m nh4cl. kb of nh3

Answers

The pH of the solution prepared by adding 20.0 mL of 0.100 M HCl to 80.0 mL of a buffer that is comprised of 0.25 M NH₃ and 0.25 M NH₄Cl is 3.79.

The balanced chemical equation for the reaction between NH₃ and HCl is:

NH₃ (aq) + HCl (aq) → NH₄⁺ (aq) + Cl⁻ (aq)

Before any HCl is added, the solution contains 80.0 mL of a buffer solution that is comprised of 0.25 M NH₃ and 0.25 M NH₄Cl. NH₃ is a weak base, and its dissociation in water can be represented as follows:

NH₃ (aq) + H₂O (l) ⇌ NH₄⁺ (aq) + OH⁻ (aq)

The base dissociation constant (Kb) for NH₃ is 1.8 x 10⁻⁵ at 25°C.

After adding 20.0 mL of 0.100 M HCl to the buffer solution, the amount of NH₃ remaining in the solution will react with the HCl to form NH₄⁺ and Cl⁻. The amount of HCl added to the solution is:

moles of HCl = M x V = 0.100 mol/L x 0.020 L

                                   = 0.002 mol

Since NH₃ is a weak base, the buffer will resist changes in pH upon addition of HCl. The added HCl will react with NH₃ in the buffer solution to form NH₄⁺ and Cl⁻ ions. The NH₄⁺ ion is the conjugate acid of NH₃ and will slightly increase the acidity of the solution.

The amount of NH₃ that reacts with the HCl is:

Moles of NH₃ = moles of HCl

                        = 0.002 mol

The remaining amount of NH₃ in the solution is:

Initial moles of NH₃ - moles of NH₃ that reacted = (0.25 mol/L x 0.080 L) - 0.002 mol = 0.018 mol

The amount of NH₄⁺ that forms is equal to the amount of NH₃ that reacted:

0.002 mol of NH₃ = 0.002 mol of NH₄⁺

The concentration of NH₃ in the final solution is:

[ NH₃ ] = moles of NH₃ / total volume of solution

           = 0.018 mol / 0.100 L = 0.18 M

The concentration of NH₄⁺ in the final solution is:

[ NH₄⁺ ] = moles of NH₄⁺ / total volume of solution

            = 0.002 mol / 0.100 L = 0.02 M

The concentration of H⁺  in the final solution can be calculated using the equilibrium constant expression for NH₃:

Kb = [ NH₃ ][ OH⁻ ] / [ NH₃ ]

[ H⁺ ] = Kb x [ NH₃ ] / [ NH₃ ] = (1.8 x 10⁻⁵) x (0.18 mol) / (0.02 mol) = 0.000162 M

The pH of the final solution can be calculated as:

pH = -㏒[H⁺] = -log(0.000162) = 3.79

Therefore, the pH of the solution obtained by adding 20.0 mL of 0.100 M HCl to 80.0 mL of a buffer containing 0.25 M NH₃ and 0.25 M NH₄Cl is 3.79.

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Is petrol a solvent

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Answer: yes

Explanation: Petroleum solvents are hydrocarbon mixtures which can be grouped into three broad categories on the basis of their boiling ranges and solvent strengths, as follows: special boiling range solvents, boiling range, 30-160 oC; white spirits, 130-220 oC; and high-boiling aromatic solvents, 160-300 oC.

by what factor does the rate change in each of the following cases (assuming constant temperature)? factor (enter as decimal if <1) (a) a reaction is first order in reactant a, and [a] is doubled. 2 (b) a reaction is second order in reactant b, and [b] is halved. 0.25 (c) a reaction is second order in reactant c, and [c] is tripled.

Answers

When the amount of reactant A is doubled, the rate of reaction is also doubled. When the amount of reactant B is halved, the rate of reaction reduce 1/4 times. When reactant C is tripled, the rate become 9 times.

a) Reactant A undergoes a first order reaction. The equation for the rate of the reaction is

     R = k[A]¹

When the concentration is doubled,

   R' = k[2A]¹ = 2k[A] = 2R

So the rate of reaction is doubled.

b) The reactant B follows second order kinetics.

  Rate , R = k[B]²

When [B] is halved it becomes [B/2]

R' = k[[tex]\frac{B}{2}[/tex]]² = [tex]\frac{1}{4}[/tex] k[B]² = [tex]\frac{R}{4}[/tex]

So the rate is decreased 1/4 times.

c) The reactant C follows second order kinetics.

   So,  R = k[C]²

When the concentration is tripled,

  R' = k [3C]² = 9k [C]² = 9R

So the rate increases nine folds.

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___C2H2 + ___O2 ---> ____CO2 + ____H2O

Answers

The balanced chemical equation for the combustion of C2H2 (acetylene) in the presence of oxygen is:

2C2H2 + 5O2 ---> 4CO2 + 2H2O

Therefore, the coefficients are:

2C2H2
5O2
4CO2
2H2O

What is the molecular equation of BaBr2(aq)+H2SO4(aq)?

Answers

The molecular equation for the reaction between BaBr2(aq) and H2SO4(aq) can be written as:

BaBr2(aq) + H2SO4(aq) → BaSO4(s) + 2HBr(aq)

What is Molecular Mass?

Molecular mass (also known as molecular weight) is the sum of the atomic masses of all the atoms in a molecule. It is usually expressed in atomic mass units (amu) or in grams per mole (g/mol). The molecular mass is used in stoichiometry calculations, which involve determining the amount of reactants and products in a chemical reaction.

In this equation, the barium cation (Ba2+) from barium bromide (BaBr2) combines with the sulfate anion (SO42-) from sulfuric acid (H2SO4) to form barium sulfate (BaSO4) as a precipitate. At the same time, the hydrogen cations (H+) from sulfuric acid combine with the bromide anions (Br-) from barium bromide to form hydrogen bromide (HBr) in aqueous solution.

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how do hailstones form? how do hailstones form? hailstones form with the help of the wind and pressure. hailstones form by the condensation of water vapor. hailstones form at low concentration of water vapor with the help of the wind. hailstones form when precipitation freezes high in the sky.

Answers

Hailstones form as a result of condensation, freezing, and the influence of wind and pressure at a low concentration of water vapour, high in the sky.

Hailstones form through a process involving condensation, freezing, and the assistance of wind and pressure. Here's a step-by-step explanation:
1. Condensation of water vapour: Hailstones begin to form when water vapour in the atmosphere condenses into droplets due to cooling temperatures.
2. Freezing: As these water droplets are lifted higher into the sky by strong updrafts, they encounter freezing temperatures and turn into ice particles.
3. Growth: The ice particles continue to grow as more water droplets come into contact with them, which freeze upon impact. This process is aided by the wind, which helps to circulate the hailstones within the storm cloud, allowing them to collect more moisture.
4. Precipitation: When hailstones become too heavy for the updrafts to support them, they fall to the ground as precipitation.

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what type of bond links amino acids in the first level of protein structure?

Answers

The type of bond that links amino acids in the first level of protein structure is called a peptide bond.

What is a protein structure?

Protein structure refers to the three-dimensional arrangement of atoms in a protein molecule. The primary structure, secondary structure, tertiary structure, and quaternary structure are the four main levels of protein structure.

The first level of protein structure is the primary structure. This is the order of amino acids joined together to form a peptide chain. The amino acid sequence determines the protein's shape and function.

Peptide bonds link amino acids together, forming a polypeptide chain.

A protein molecule's structure and function are determined by the sequence of amino acids in its polypeptide chain.

What is a peptide bond?

Peptide bonds link amino acids together to form protein molecules. The bond occurs between the amino group of one amino acid and the carboxyl group of another amino acid.

The carboxyl group loses its hydroxyl group (-OH) in the process, while the amino group loses a hydrogen atom. This reaction results in the release of water, hence the term "condensation reaction."

Peptide bonds are covalent bonds. A peptide bond is created by the removal of water from the carboxyl group of one amino acid and the amino group of another. This results in a new molecule called a dipeptide.

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a solution containing a 3 metal ion is electrolyzed by a current of 5.00 a for 10.0 minutes. what is the identity of the metal if 1.19 g of metal was plated out in this electrolysis?

Answers

Based on this molar mass, the metal is likely to be indium (In), which has a molar mass of 114.82 g/mol.

To determine the identity of the metal, we need to find its molar mass. First, we can calculate the number of moles of electrons (n) involved in the electrolysis process.

Q = I × t = 5.00 A × (10.0 min × 60 s/min)

= 3000 C (where Q is the charge,

I is the current, and t is the time)

Using Faraday's constant (F = 96485 C/mol), we can find the number of moles of electrons:

n = Q/F = 3000 C / 96485 C/mol ≈ 0.0311 mol

Since it's a 3+ metal ion, 3 moles of electrons are required to plate 1 mole of metal:

Moles of metal = 0.0311 mol / 3 = 0.01037 mol

Now, we can find the molar mass of the metal:

Molar mass = mass / moles

= 1.19 g / 0.01037 mol ≈ 114.7 g/mol


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calculate the mass (grams) of solid nacl necessary to prepare 100ml of a 0.50m nacl aqueous solution

Answers

You would need 2.922 grams of solid NaCl to prepare 100 mL of a 0.50 M NaCl aqueous solution.

To calculate the mass of solid NaCl needed to prepare a 0.50 M solution with a volume of 100 mL, we need to use the following formula;

moles of solute = Molarity × volume (in liters)

We can rearrange this formula to solve for the mass of solute (NaCl) needed;

mass of NaCl=moles of NaCl × molar mass of NaCl

First, let's calculate the moles of NaCl needed;

moles of NaCl = Molarity × volume (in liters) = 0.50 mol/L × 0.1 L = 0.05 moles

Next, let's calculate the mass of NaCl needed;

mass of NaCl = moles of NaCl × molar mass of NaCl = 0.05 moles × 58.44 g/mol

= 2.922 g

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Which statement about the response of the body to pathogens is correct? 1) Red blood cells engulf invaders and produce antibodies that attack invaders. 2) Vaccinations may contain weakened microbes that stimulate the formation of antibodies. 3) AIDS is a bacterial disease that strengthens the immune system. 4) All allergic reactions are caused by an immune response to microorganisms.

Answers

2) Weakened microorganisms that promote the production of antibodies may be included in vaccines.

Microorganisms that cause disease are called pathogens. Bacteria, viruses, fungus, and parasites are examples of pathogens. By contact with an infected person or animal, as well as through contact with contaminated food, drink, or soil, they can enter the body.In order to create antibodies against particular infections, the immune system of the body is stimulated by vaccines.A vaccine typically contains a weakened or killed form of the pathogen that is responsible for the disease it is designed to protect against. When the body is exposed to this weakened or killed form of the pathogen, the immune system responds by producing antibodies which help to protect against the disease.

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the initial rates method can be used to determine the rate law for a reaction. using the data for the reaction shown below, what is the rate law for the reaction?

Answers

The rate law for the reaction is rate = k[A][B]2, based on the given data and the initial rates method.

The initial rates method can be used to determine the rate law for a reaction. Using the data for the reaction shown below, what is the rate law for the reaction

Here is the data given:

Reaction: A + 2B → C

Experiment 1 2 3

[A] 0.100 M 0.100 M 0.200 M

[B] 0.200 M 0.400 M 0.400 M

Initial rate (M/s) 1.6 × 10-3 6.4 × 10-3 5.1 × 10-2

The rate law for the reaction can be determined using the initial rates method. The initial rates method involves comparing the initial rates of reaction for experiments with different initial concentrations of reactants.

In this case, we can look at Experiments 1 and 2, where the concentration of B is doubled. By comparing the initial rates of these two experiments, we can determine the effect of the concentration of B on the reaction rate.

The rate of the reaction doubles when the concentration of B is doubled. This means that the rate of the reaction is directly proportional to the concentration of B.

We can write the rate law for the reaction as follows:

rate = k[A][B]2

where k is the rate constant. The exponent of 2 in the rate law indicates that the rate of the reaction is directly proportional to the square of the concentration of B.

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What will occur when the following chemical reaction reaches dynamic
equilibrium?
2H₂ + O2 + 2H₂0

Answers

Answer: Either B or C

Explanation:

The chemical reaction shown is the synthesis of water. At dynamic equilibrium, the rate of the forward reaction (2H₂ + O2 → 2H₂0) is equal to the rate of the reverse reaction (2H₂0 → 2H₂ + O2). This means that the concentration of reactants (2H₂ and O2) and products (2H₂0) will remain constant over time. In other words, the amount of water being formed is equal to the amount of water being broken down back into its reactants.

a natural gas furnace is used to heat a home. on average, the home needs to be heated at a rate of 32600 btu/hr during the winter months. assume the amount of heat released by the natural gas during the combustion process is described by the lower heating value and that only 92.6 % of the heat generated from combustion is used in heating the home. when the natural gas combusts (and assume all of it combusts), it creates 880 mg of nitrogen oxides per pound (lbm) of natural gas. assuming that the heater is used only 176 days out of the year, what is the amount of nitrogen oxides produced annually?

Answers

Approximately 283.8 pounds of nitrogen oxides would be produced annually from the use of the natural gas furnace.

First, we need to convert the rate of heat needed for the home from British thermal units per hour (Btu/hr) to Btu per year:

32600 Btu/hr × 24 hr/day × 176 days/year = 137088000 Btu/year

Next, we need to determine the amount of natural gas that needs to be combusted to produce this amount of heat. We know that only 92.6% of the heat generated from combustion is used in heating the home, so we can use the following equation to calculate the amount of natural gas needed:

Heat from combustion = Heat used in heating / Efficiency

where Efficiency is expressed as a decimal.

Heat from combustion = 137088000 Btu/year / 0.926 = 148120216.2 Btu/year

Now, we can use the nitrogen oxide emission rate to determine the amount of nitrogen oxides produced per year:

Nitrogen oxides produced = (Nitrogen oxide emission rate) × (Natural gas combusted)

To convert from mg/lbm to lbm/Btu, we need to multiply the nitrogen oxide emission rate by 0.00000220462 lbm/mg.

Nitrogen oxides produced = (880 mg/lbm × 0.00000220462 lbm/mg) × (148120216.2 Btu/year / 1 lbm) = 283.8 lbm/year

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A can of hairspray has an initial temperature of22 °C and a pressure of 18.5 psi, what is the temperature of the gas if the pressure decreased to 17.35 psi?

Answers

These rules described by specific cases of an ideal gas law, which states PV = nRT. When temperature rises, molecules become more energised, and lose their attraction to one another, causing pressure to fall.

How are pressure and temperature related?

As long as the volume remains constant, the pressure of a given quantity of petrol is precisely proportional towards its absolute temperature (Amontons' law). Under constant pressure, the volume of the a given gas is proportional to its exact temperature.

What is the formula for pressure and temperature?

Now, let's review PV = nRT, our ideal petrol law. In this equation, P denotes pressure in atmospheres, V denotes volume in litres, n denotes moles of particles, T denotes temperature in Kelvin, and R denotes the ideal gas constant.

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How do i solve this?

Answers

We must first identify the limiting reactant before we can calculate the output of Nitrogen. As a result, 3.365 grammes of Nitrogen are created.

What chemical compound is required to produce ammonia?

Three moles of hydrogen are combined with one mole of nitrogen to produce ammonia gas. 5000 moles exist, though. As a result, since it controls how much product is produced, hydrogen acts as a reactant limiter. Hydrogen will therefore control how much ammonia forms.

Using their molar masses, we must first convert the given masses of Hydrogen peroxide and Hydrazine to moles:

molar mass Hydrogen peroxide = 34.0147 g/mol

molar mass Hydrazine = 32.0452 g/mol

moles Hydrogen peroxide = 8.17 g / 34.0147 g/mol = 0.2402 mol

moles Hydrazine = 6.97 g / 32.0452 g/mol = 0.2174 mol

The amount of Nitrogen produced from each reactant can then be calculated using the stoichiometry of the balanced chemical equation:

From Hydrogen peroxide: 1 mol Hydrogen peroxide produces 1/2 mol Nitrogen

mol Nitrogen produced from Hydrogen peroxide = 0.2402 mol Hydrogen peroxide x 1/2 = 0.1201 mol Nitrogen

From Hydrazine: 1 mol Hydrazine produces 1 mol Nitrogen

mol Nitrogen produced from Hydrazine = 0.2174 mol Hydrazine x 1 = 0.2174 mol Nitrogen

The amount of Nitrogen created is 0.1201 mol from Hydrogen peroxide, which is the smaller value. Lastly, by applying the molar mass of Nitrogen, we may convert this quantity to grams:

molar mass Nitrogen = 28.0134 g/mol

g Nitrogen produced = 0.1201 mol Nitrogen x 28.0134 g/mol = 3.365 g Nitrogen

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558.7 L of octanol [C8H10], gasoline, escapes as vapor from a gas storage container as it sits at conditions of STP. How many grams of gasoline has disappeared?

Answers

3205.8 grams of gasoline has disappeared.

The ideal gas law, which connects the pressure (P), volume (V), number of moles (n), and temperature (T) of a gas, must be used to address this issue:

PV = nRT

where T is the absolute temperature, R is the universal gas constant, with a value of 0.08206 L atm/(mol K), and R is the universal gas constant.

The settings are established as 273.15 K (0 °C) and 1 atm (standard temperature and pressure), often known as STP. As a result, we can use the ideal gas law to determine how many moles of octanol vapour have escaped:

n = PV/RT = (1 atm)(558.7 L)/(0.08206 L·atm/(mol·K))(273.15 K) = 24.6 mol

To convert moles to grams, we need to use the molar mass of octanol, which is 130.23 g/mol. Therefore, the mass of gasoline that has disappeared is:

mass = n x molar mass = 24.6 mol x 130.23 g/mol = 3205.8 g

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104 joules of heat flows from a hot block of iron at constant temperatuer 455.7 to a cool block of iron at a different constant temperature 303.8. calculate the entropy oc change of the universe in joules/k.

Answers

The entropy change of the universe is 0.0376 Joules per Kelvin (J/K).

To calculate the entropy change of the universe, we need to determine the entropy change for both the hot block of iron and the cool block of iron. Entropy change is given by the formula:

ΔS = Q/T

where ΔS is the entropy change, Q is the heat transferred, and T is the temperature in Kelvin.

First, convert the given temperatures from Celsius to Kelvin:
455.7°C = 728.85 K (by adding 273.15)
303.8°C = 576.95 K (by adding 273.15)

Next, let's calculate the entropy change for each block.

For the hot block, heat is flowing out of it, so Q is -104 J. Therefore, the entropy change is:
ΔS_hot = Q/T = -104 J / 728.85 K = -0.1427 J/K

For the cool block, heat is flowing into it, so Q is 104 J.

Therefore, the entropy change is:
ΔS_cool = Q/T = 104 J / 576.95 K = 0.1803 J/K

Now, to find the entropy change of the universe, we need to add the entropy changes of both blocks:
ΔS_universe = ΔS_hot + ΔS_cool = -0.1427 J/K + 0.1803 J/K = 0.0376 J/K

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p-methoxybenzaldehyde can be prepared from anisole using the gatterman-koch formylation. what mixture of reagents is necessary for this process?

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A mixture of reagents is necessary, which includes  Carbon monoxide (CO) ,Hydrochloric acid (HCl)  and A Lewis acid catalyst .

The Gattermann-Koch formylation is a chemical reaction used to convert aromatic compounds, such as anisole, into aromatic aldehydes, like p-methoxy benzaldehyde. To perform this reaction :

1. Carbon monoxide (CO): It acts as a formylating agent, providing the necessary carbonyl (C=O) group to form the aldehyde product.

2. Hydrochloric acid (HCl): It serves as a catalyst, facilitating the reaction between anisole and the formylating agent. It also helps generate the necessary intermediate, formyl chloride, which reacts with anisole to form the desired product.

3. A Lewis acid catalyst: Commonly used catalysts are aluminum chloride [tex]AlCl_{3}[/tex]or ferric chloride ([tex]FeCl_{3}[/tex]). These catalysts activate the aromatic ring of anisole, making it more reactive towards electrophilic aromatic substitution.

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The unbalanced, single displacement reaction between sodium metal and water is as follows.
Na+H₂O -> NaOH + H₂+ heat + light
If 48.8 liters of hydrogen gas are formed at STP, how many grams of sodium were used in this reaction? Show your
work and use the correct units to receive full credit. PLEASE HELP ASAP

Answers

The mass (in grams) of sodium, Na that is used in the reaction, given that 48.8 liters of hydrogen gas are formed at STP is 100.28 grams

How do i determine the mass of sodium used?

First, we shall obtain the mole of hydrogen gas formed. Details below:

Volume of hydrogen gas = 48.8 LMole of hydrogen gas = ?

At standard temperature and pressure, STP,

22.4 L = 1 mole of hydrogen gas

Therefore,

48.8 L = 48.8 / 22.4

48.8 L = 2.18 moles of hydrogen gas

Next, we shall determine the mole of sodium. Details below:

2Na + 2H₂O -> 2NaOH + H₂+ heat + light

From the balanced equation,

1 mole of H₂ was obtained from 2 moles of Na

Therefore,

2.18 moles H₂ will be obtain from = 2.18 × 2 = 4.36 moles of Na

Finally, we shall determine the mass of sodium, Na used. Details below:

Molar mass of Na = 23 g/mol Mole of Na = 4.36 moleMass of sodium, Na = ?

Mole = mass / molar mass

4.36 = Mass of sodium, Na / 23

Cross multiply

Mass of sodium, Na = 4.36 × 23

Mass of sodium, Na = 100.28 grams

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if 100.0 ml of a 0.500 m aqueous hydrazine is mixed with 100.0 ml of 0.500 m aqueous hydrochloric acid, what will be the ph of the resulting solution? hydrazine (nh2nh2) has a kb

Answers

To find the pH of the resulting solution, we need to calculate the concentration of hydronium ions (H3O+) in the solution. After all the calculations the pH of the resulting solution is 3.14.

The balanced chemical equation for the reaction between hydrazine and hydrochloric acid is:

\NH2NH2(aq) + HCl(aq) → NH3(aq) + NH4Cl(aq)

First, we need to calculate the initial concentrations of hydrazine and hydrochloric acid. We are given that each solution has a concentration of 0.500 M, which means that there are:

0.500 mol/L x 0.100 L = 0.0500 moles of hydrazine in 100.0 mL of solution

0.500 mol/L x 0.100 L = 0.0500 moles of hydrochloric acid in 100.0 mL of solution

Since the reaction between hydrazine and hydrochloric acid is a one-to-one reaction, we can assume that all of the hydrazine will react with an equal amount of hydrochloric acid, producing 0.0500 moles of NH4Cl and NH3. Therefore, the final concentration of NH4Cl and NH3 will be:

0.0500 moles / 0.200 L = 0.250 M

We can use the Kb value for hydrazine to find the concentration of NH3:

Kb = [NH3][OH-]/[NH2NH2]

[tex]5.9 x 10^{-10} = [NH3]^2/[NH2NH2][/tex]

[NH3] = sqrt(Kb x [NH2NH2])

[tex][NH3] = sqrt(5.9 * 10^{-10}* 0.0500 M)[/tex]

[NH3] = 1.37 x 10^-3 M

Now that we know the concentration of NH3, we can calculate the concentration of H3O+ using the equation for the ionization of water:

Kw = [H3O+][OH-]

1.0 x 10^-14 = [H3O+][1.37 x 10^-11]

[H3O+] = 7.3 x 10^-4 M

Therefore, the pH of the resulting solution is:

pH = -log[H3O+]

[tex]pH = -log(7.3 * 10^{-4}[/tex]

pH = 3.14

So the pH of the resulting solution is 3.14.

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calculate the ph 4.79 ml beyond the equivalence point. unrounded rounded to reach the equivalence point, what volume (in ml) of h c l hcl must be added?

Answers

The pH before any HCl is added will be; 12.91, and the pH after the addition of 4.00 mL HCl is 1.17.

To solve this problem, we need to use the balanced chemical equation for the reaction between M(OH)₂ and HCl;

M(OH)₂ + 2HCl → 2H₂O + MCl₂

The balanced chemical equation shows that the reaction between M(OH)₂ and HCl is a 1:2 reaction. Therefore, the number of moles of HCl needed to react with the M(OH)₂ is twice the number of moles of M(OH)₂.

Before any HCl is added, the solution contains only M(OH)₂. The concentration of M(OH)₂ is 0.0811 M. We will use the following equation to calculate the pOH:

pOH = -log[OH⁻]

Since M(OH)₂ is a strong base, it completely dissociates in water, so [OH⁻] = [M(OH)₂]. Therefore;

[OH⁻] = 0.0811 M

pOH = -log(0.0811) = 1.09

The pH can be calculated using the following equation;

pH + pOH = 14

pH = 14 - pOH = 14 - 1.09 = 12.91

After the addition of 4.00 mL of HCl, the total volume of the solution is 5.00 mL + 4.00 mL = 9.00 mL. The number of moles of M(OH)₂ in the solution is;

moles M(OH)₂ = concentration x volume = 0.0811 M x 5.00 mL = 0.0004055 moles

The number of moles of HCl added to the solution is

moles HCl = concentration x volume = 0.0512 M x 4.00 mL = 0.0002048 moles

Since the reaction is a 1:2 reaction, the number of moles of HCl required to react with all of the M(OH)₂ is:

moles HCl required = 2 x moles M(OH)₂ = 2 x 0.0004055 = 0.000811 moles

The remaining moles of HCl in the solution after the reaction is;

moles HCl remaining = moles HCl added - moles HCl required = 0.0002048 - 0.000811 = -0.0006062 moles

Since the remaining moles of HCl is negative, it means that all of the M(OH)₂ has reacted and there is an excess of HCl in the solution. Therefore, the pH of the solution is determined by the concentration of the excess H⁺ ions. The concentration of excess H⁺ ions can be calculated using the following equation;

[H⁺] = concentration of HCl remaining / total volume of solution

[H⁺] = (-0.0006062 moles / 9.00 mL) x (1000 mL / 1 L) = -0.0674 M

The pH can be calculated using the following equation:

pH = -log[H⁺] = -log(-0.0674)

= 1.17 (Note: The negative sign indicates that the solution is acidic.)

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--The given question is incorrect, the correct question is

"Using the concentration values determined in this investigation for M(OH)₂  and HCl, calculate the pH for a strong acid + strong base titration in which 5.00 mL of the M(OH)₂ was transferred via pipet to a beaker and HCl was added from the burret. Calculate the pH: a) before any HCl is added, b) after the addition of 4.00 mL HCl. Concentration of HCl = 0.0512 M, Concentration of M(OH)₂  = 0.0811 M."--

What is the freezing point in ºC of a 5.6 molal solution of ethylene glycol in ethanol?

Answers

Answer:

the freezing point of the 5.6 molal solution of ethylene glycol in ethanol is -125.744 °C

Explanation:

To calculate the freezing point depression of a solution, we can use the formula:

ΔTf = Kf * molality

where:

ΔTf is the freezing point depression

Kf is the freezing point depression constant for the solvent (in this case, ethanol)

molality is the number of moles of solute per kilogram of solvent.

The freezing point depression constant for ethanol is 1.99 °C/m.

We are given that the solution is 5.6 molal, which means there are 5.6 moles of ethylene glycol per kilogram of ethanol.

So, we can calculate the freezing point depression as:

ΔTf = 1.99 °C/m * 5.6 mol/kg = 11.144 °C

The freezing point depression is 11.144 °C.

To find the freezing point of the solution, we can subtract this value from the freezing point of pure ethanol, which is -114.6 °C.

Freezing point of solution = -114.6 °C - 11.144 °C = -125.744 °C

Therefore, the freezing point of the 5.6 molal solution of ethylene glycol in ethanol is -125.744 °C.

consider two acids with the same starting concentrations, one strong and one weak. each is titrated by a strong base. how do the titration curves compare?

Answers

The titration curves for a strong acid and a weak acid titrated with a strong base will be different.

For a strong acid, the pH will rapidly increase as the strong base is added, until it reaches the equivalence point where all the acid has been neutralized. At this point, the pH will be neutral (pH=7) since the strong acid has been completely converted to its conjugate base. The titration curve will be a steep, linear rise.

For a weak acid, the pH will initially rise slowly as the weak acid reacts with the strong base. As more base is added, the pH will increase more rapidly until it reaches the equivalence point, where the pH will be greater than 7 due to the presence of the conjugate base of the weak acid. The titration curve will be a gradual, curved rise.

Additionally, the equivalence point for the weak acid will occur at a higher pH value than that for the strong acid, since the weak acid will not be completely converted to its conjugate base at the equivalence point. The titration curve for the weak acid will also have a buffer region, where the pH will change only slightly as small amounts of strong base are added, due to the buffering action of the conjugate acid-base pair.

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experiment 2: what volume did the air occupy in the erlenmeyer flask before the addition of any water? 182 ml 150 ml 50 ml 0.0 ml

Answers

The volume of 182 ml the air occupies in the Erlenmeyer flask before the addition of any water.

The volume of air in an Erlenmeyer flask could vary depending on factors such as temperature, pressure, and humidity. Changes in these factors could cause the air inside the flask to expand or contract, affecting the volume of air present before the addition of any water.

An Erlenmeyer flask is a type of laboratory glassware that is commonly used for holding and mixing liquids. It has a conical shape, with a flat base and a narrow neck that widens towards the top. The shape of the flask allows for easy mixing and swirling of liquids, and the narrow neck helps to minimize the risk of spills.

Erlenmeyer flasks come in a range of sizes, from small flasks that can hold just a few millilitres of liquid, to large flasks that can hold several litres. The volume of air in an Erlenmeyer flask before the addition of any water would depend on the size of the flask and the conditions in which it was stored. For example, a small 50-millilitre Erlenmeyer flask may contain only a few millilitres of air, while a larger 2-litre flask would contain significantly more.

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