The industrial production of hydroiodic acid takes place by treatment of iodine with hydrazine N2H4: 2I2 + N2H4 = 4HI + N2 a) how many grams of I2 needed to react with 36. 7 g of N2H4? b) how many grams of HI are produced from the reaction of 115. 7 g of N2H4 with excess iodine?

Correct option is d)0.36
To find the number of moles present, we can use the Ideal Gas Law formula:

PV = nRT

Where:
P = pressure (1.5 atm)
V = volume (6.2 L)
n = number of moles (which we need to find)
R = gas constant (0.0821 L atm/mol K)
T = temperature in Kelvin (38°C + 273.15 = 311.15 K)

Rearranging the formula to solve for n:

n = PV / RT

Plugging in the given values:

n = (1.5 atm * 6.2 L) / (0.0821 L atm/mol K * 311.15 K)

n ≈ 0.36 moles

Th answer is: d) 0.36

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Approximately 0.0769 liters (76.9 mL) of solution is required to create a 1.3 x [tex]10^-2[/tex] M concentration of calcium hydroxide using [tex]1.0 x 10^-3[/tex] moles of solute.

A solute is a material that a solvent can dissolve into a solution. A solute can take on various shapes. It might exist as a solid, a liquid, or a gas. Solvent refers to the component of a solution that is most prevalent. It is the fluid in which the solute has been dissolved.
Molarity (M) = moles of solute / volume of solution (L)
Here, you're given the desired molarity ([tex]1.3 x 10^-2[/tex] M) and the moles of solute ([tex]1.0 x 10^-3[/tex]moles). You need to find the volume of solution (in liters).

Volume (L) = moles of solute / Molarity (M)
Now, plug in the given values:
Volume (L) = [tex](1.0 x 10^-3[/tex] moles) / ([tex]1.3 x 10^-2[/tex]M)
Volume (L) ≈ 0.0769 L

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The resulting diagram should show VA and V B pointing to the right, parallel to V AB.

To determine the direction of the wave velocity at points A and B, we need to consider the direction in which the wave is traveling.

Assuming that the wave is traveling from left to right, the direction of the wave velocity at point A will be to the right, and the direction of the wave velocity at point B will also be to the right.

To represent the direction of the wave velocity at points A and B using vectors, we can use the following steps:

Draw a vector representing the direction from point A to point B. This vector, which we'll call V AB, represents the direction of the string itself.

Draw another vector, V A, originating from point A and pointing in the direction of the wave motion. Since the wave is traveling to the right, this vector should also point to the right.

Similarly, draw another vector, V B, originating from point B and pointing in the direction of the wave motion. This vector should also point to the right.

Rotate V A and V B so that they are both parallel to VAB. This represents the fact that the wave velocity is in the same direction as the direction of the string itself.

The resulting diagram should show VA and V B pointing to the right, parallel to V AB.

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In the following problems, various calculations related to solutions and chemical reactions are performed, including percent composition, molarity, and neutralization. The setup and units are provided, and the final answers are shown.

Let's proceed with the calculations:

1. Mass of NaOH = 22.5 g

Mass of water = 75.0 g

Total mass of solution = 22.5 g + 75.0 g = 97.5 g

% composition of NaOH = (mass of NaOH/total mass of solution) x 100%

= (22.5 g/97.5 g) x 100%

= 23.08%

% composition of water = (mass of water/total mass of solution) x 100%

= (75.0 g/97.5 g) x 100%

= 76.92%

2. Volume of solution = 3.00 L

Concentration of solution = 0.065 M

moles = concentration x volume

= 0.065 M x 3.00 L

= 0.195 mol

Therefore, 0.195 mol of aluminum nitrate are required.

3. Mass of aluminum nitrate = 7.50 g

Molar mass of aluminum nitrate = 213.0 g/mol

Concentration of solution = 0.500 M

moles of aluminum nitrate = mass/molar mass

= 7.50 g/213.0 g/mol

= 0.035 mol

Volume of solution = moles/concentration

= 0.035 mol/0.500 M

= 0.070 L = 70 mL

Therefore, 70 mL of 0.500 M solution can be prepared.

4. Volume of 15.0 M ammonium hydroxide required = (0.30 M/15.0 M) x 175.0 mL

= 3.50 mL

Therefore, 3.50 mL of 15.0 M ammonium hydroxide are needed.

5. Volume of potassium sulfate solution = 623 mL

% composition of potassium sulfate in solution = 22.5%

Density of solution = 1.23 g/mL

Mass of solution = volume x density

= 623 mL x 1.23 g/mL

= 766.29 g

Mass of potassium sulfate = % composition x mass of solution/100

= 22.5% x 766.29 g/100

= 172.91 g

Therefore, 172.91 g of potassium sulfate would be recovered.

6. Volume of hydrobromic acid solution = 100.0 mL

Concentration of hydrobromic acid solution = 11.0 M

Molar mass of hydrobromic acid = 80.91 g/mol

moles of hydrobromic acid = concentration x volume

= 11.0 M x 0.100 L

= 1.10 mol

Mass of hydrobromic acid = moles x molar mass

= 1.10 mol x 80.91 g/mol

= 88.99 g

Therefore, 88.99 g of hydrobromic acid are present in 100.0 mL of 11.0 M hydrobromic acid solution.

7. Volume of sulfuric acid sample = 525.0 mL

Concentration of sulfuric acid = 5.50 M

Density of sulfuric acid sample = 1.49 g/mL

Mass of sulfuric acid sample = volume x density

= 525.0 mL x 1.49 g/mL

= 779.25 g

Mass percent of sulfuric acid = (mass of sulfuric acid / total mass of solution) x 100%

= (779.25 g / 779.25 g) x 100%

= 100%

Therefore, the concentration of the sulfuric acid solution in mass percent is 100%.

8. The balanced equation for the reaction is:

H₂SO₄ + 2NaOH -> 2H₂O + Na₂SO₄

According to the balanced equation, the molar ratio between sulfuric acid (H₂SO₄) and sodium hydroxide (NaOH) is 1:2.

Volume of sulfuric acid sample = 15.0 mL

Volume of sodium hydroxide solution = 25.5 mL

Concentration of sodium hydroxide solution = 0.546 M

Moles of sodium hydroxide = concentration x volume

= 0.546 M x 25.5 mL

= 0.01397 mol

From the balanced equation, 1 mole of sulfuric acid reacts with 2 moles of sodium hydroxide. Therefore, the moles of sulfuric acid in the sample are half of the moles of sodium hydroxide.

Moles of sulfuric acid = 0.01397 mol / 2

= 0.006985 mol

Volume of sulfuric acid sample = 15.0 mL = 0.0150 L

Molarity of sulfuric acid = moles of sulfuric acid / volume of sulfuric acid

= 0.006985 mol / 0.0150 L

= 0.4657 M

Therefore, the molarity of the sulfuric acid is 0.4657 M.

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Complete question :

Show all calculation setups, including units, for all problems, and enter answer(s), including units and correct significant figures, on the line(s).

1. What will be the percent composition by mass of a solution made by dissolving 22.5 g of sodium hydroxide in 75.0 g water? NaOH

2. How many moles of aluminum nitrate are required to prepare 3.00 L of 0.065 M solution?

3. How many milliliters of 0.500 M solution can be prepared by dissolving 7.50 g of aluminum nitrate in water?

4. How many milliliters of 15.0 M ammonium hydroxide are needed to prepare 175.0 mL of 0.30 M ammonium hydroxide solution? 133

5. How many grams of potassium sulfate would be recovered by evaporating 623 mL of 22.5 % potassium sulfate solution to dryness (d 1.23 g/mL)?

6. How many grams of hydrobromic acid are in 100.0 mL of 11.0 M hydrobromic acid solution?

7. A 525.0 mL sample of 5.50 M sulfuric acid has a density of 1.49 g/mL. Express the concentration of the solution in mass percent. water +

8. Consider the following equation: sulfuric acid + sodium hydroxide sodium sulfate A 15.0 mL sample of sulfuric acid required 25.5 mL of 0.546 M sodium hydroxide for neutralization. Calculate the molarity of the acid. (Hint: start by writing and balancing the equation)

The first step is to calculate the molar flow rate of fuel, oxidizer, and product. This is done by dividing the mass flow rate (0.5 kg/s) by the molecular weight of each species (29 kg/kmol).

Molecular is a term used to describe the smallest units of matter. Molecules are made up of atoms and are held together by a chemical bond, which involves the sharing of electrons between atoms.

This gives us the following molar flow rates:

Fuel: 0.017 kmol/s

Oxidizer: 0.027 kmol/s

Product: 0.046 kmol/s

Next, we need to calculate the enthalpy change for the reaction. Since we are dealing with a single product species, the enthalpy change can be calculated using the following equation:

ΔH = (hf f o , + hf ox o , - hf o , pr) * n

Where:

hf f o , = Enthalpy of formation of fuel

hf ox o , = Enthalpy of formation of oxidizer

hf o , pr = Enthalpy of formation of product

n = Molar flow rate of product

Substituting the given values, we get the following:

ΔH = (-2000 + 0 - (-4000)) * 0.046 = 920 kJ/s

Now we can calculate the heat of reaction by multiplying the enthalpy change with the molar flow rate of the reactants. This gives us the following result:

Heat of reaction = (0.017 kmol/s * 920 kJ/s) + (0.027 kmol/s * 920 kJ/s) = 24.12 kJ/s

We can then calculate the temperature of the reactor by subtracting the heat loss (2000 W) from the heat of reaction and dividing by the total mass flow rate of the reactants (0.5 kg/s) multiplied by the specific heat capacity (1100 J/kg-K). This gives us the following result:

T = (24.12 kJ/s - 2000 W) / (0.5 kg/s * 1100 J/kg-K) = 436 K

Finally, we can calculate the residence time by dividing the volume of the reactor (0.003 m3) by the total mass flow rate of the reactants (0.5 kg/s). This gives us the following result:

Residence time = 0.003 m3 / 0.5 kg/s = 0.006 s

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The temperature in the reactor is approximately 10.74 K. and 0.006 s.  

The temperature in the reactor and the residence time, we need to solve the following set of equations:

dU = w + Q / m

Next, we need to find the rate of change of mass flow rate, which is given by:

dm = Fv - D

here Fv is the volume flow rate of reactants and D is the diffusion rate of the product.

Finally, we can use the above equations to find the temperature in the reactor and the residence time as follows:

Temperature in the reactor:

T = (dU / Q) / (m / cP)

here cP is the specific heat at constant pressure.

Residence time:

t = (m / D)

We can assume that the reactants have a volume flow rate of 0.5 kg/s and the product species has a volume flow rate of 0.001 kg/s. Therefore, the mass flow rate of the reactants is:

m = 0.5 kg/s * 0.002 m3/kg = 0.001 kg/s

The diffusion rate of the product can be calculated as:

D = k * (yox - yf) / (yf + yox)

here k is the reaction rate constant and (yox - yf) / (yf + yox) is the molar fraction of the product species.

Using the values of k, m, and (yox - yf) / (yf + yox) from the problem statement, we can calculate the diffusion rate of the product as:

D = 1 * (0.003 - 0.2) / (0.2 + 0.003)

= 0.00006 / 0.003

= 0.1833

Therefore, the residence time of the reactor is:

t = (0.001 kg/s / 0.1833 kg/mol) = 0.051 s

The temperature in the reactor is given by:

T = (dU / Q) / (m / cP)

here cP is the specific heat at constant pressure of the reactants, which is 1100 J/kg-K.

T = (w + Q / m) / (0.001 kg/s / 1100 J/kg-K) / (0.001 kg/s / 0.003 m3/kg)

= 10.74 K

Residence time = 0.003 m3 / 0.5 kg/s = 0.006 s

Therefore, the temperature in the reactor is approximately 10.74 K and 0.006 s.  

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The new volume of the tire is 15.6 L if the temperature is increased from 22° C to 34°C if the previous volume was 15 L.

The relation between pressure and volume in a system is explained by Charles's Law. It states that the temperature is inversely proportional to the volume in the system. It is expressed as:

[tex]T_2V_1=T_1V_2[/tex]

where T is the temperature

V is the volume

with no change in pressure and a number of moles of gases.

Given in the question,

[tex]V_1[/tex] = 15 L

[tex]T_1[/tex] = 22°C = 295 K

[tex]T_2[/tex] = 34°C = 307 K

307 * 15 = 295 * [tex]V_2[/tex]

[tex]V_2[/tex] = 15.6 L

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In diluting the standard solutions, it is more important to use the correct volume of the HNO₃ solution for the dilution rather than the correct concentration.

The concentration of a solution is defined as the amount of solute present in a given amount of solvent. Dilution is the process of adding solvent to a solution to decrease its concentration. In order to achieve a desired concentration of the final solution, one must carefully measure the volume of solvent and the volume of the initial solution that is being diluted.

In this case, the initial solution is 0.01 M HNO₃, which means that it contains 0.01 moles of HNO₃ per liter of solution. To dilute this solution to a desired concentration, one must add a certain volume of water to the initial solution. The key factor in this dilution process is the volume of water added. The volume of the initial solution can be adjusted to compensate for any errors in its concentration, but the volume of water added is critical to achieving the desired concentration.

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Answer:

0.779

Explanation:

Determine the molecular weight of the hydrocarbon. We know that its vapor density is 29, which means that one mole of the hydrocarbon has a mass of 29 grams. Therefore, the molecular weight of the hydrocarbon is 29 g/mol.

Calculate the number of moles of the hydrocarbon. We can use the formula:

moles = mass / molecular weight

Substituting the values, we get:

moles = 29 g / 29 g/mol = 1 mol

Therefore, we have one mole of the hydrocarbon.

Write the balanced chemical equation for the combustion of the hydrocarbon in oxygen. The general equation is:

hydrocarbon + oxygen → carbon dioxide + water

For one mole of the hydrocarbon, we need one mole of oxygen to completely burn it. The balanced equation is:

CnHm + (n+m/4) O2 → n CO2 + m/2 H2O

Calculate the volume of carbon dioxide produced. We know that 1 mole of any gas at STP occupies 22.4 L. Therefore, one mole of carbon dioxide occupies 22.4 L. The volume of 448 ml of carbon dioxide at STP can be converted to liters:

448 ml = 0.448 L

The number of moles of carbon dioxide produced can be calculated using the ideal gas law:

PV = nRT

where P is the pressure (1 atm), V is the volume (0.448 L), n is the number of moles, R is the gas constant (0.0821 L atm/mol K), and T is the temperature (273 K). Substituting the values, we get:

n = PV/RT = (1 atm x 0.448 L) / (0.0821 L atm/mol K x 273 K) = 0.0177 mol

Therefore, 0.0177 moles of carbon dioxide are produced.

Calculate the mass of carbon dioxide produced. We can use the formula:

mass = moles x molecular weight

The molecular weight of carbon dioxide is 44 g/mol. Substituting the values, we get:

mass = 0.0177 mol x 44 g/mol = 0.779 g

Therefore, the mass of carbon dioxide produced is 0.779 grams.

C. 3CuO (aq) + 2NH3 (g) 3Cu (s) + 3H2O (l) + N2 (g) one of the following reactions is NOT a double replacement reaction

Double replacement reactions typically fall into two categories: precipitation reactions, and neutralisation reactions.

Aqueous metathesis with precipitation (precipitation reactions), counter-ion exchange, alkylation, neutralization, acid-carbonate reactions, and aqueous metathesis with double decomposition are a few categories into which double displacement processes may be divided. (double decomposition reactions).

When a portion of two ionic compounds is swapped, a double displacement reaction takes place, creating two new components.

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Measuring the volume of rinse water does not significantly impact the overall volume during titration.

Titration is a commonly employed laboratory method that involves determining the concentration of an unknown solution by reacting it with a solution of known concentration, known as the titrant, until the chemical reaction between the two is fully completed. This process requires precision and accuracy to ensure reliable results are obtained.

To guarantee that all reactants are thoroughly mixed and avoid any skewing of results due to reactants left on the walls of the container, it is useful to rinse the sides of the beaker or flask with distilled water during titration. However, measuring the volume of rinse water used is not necessary as it does not significantly impact the overall volume of titrant used in titration. It is crucial to be mindful not to use an excessive amount of rinse water as this can dilute the sample and compromise result accuracy. Rest assured that accuracy will not be affected by the volume of rinse water used, but it's essential to maintain a balance between thorough rinsing and preserving sample concentration.

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To calculate the equilibrium concentrations, we first need to determine the initial concentrations of each gas.

The initial concentration of CO is 0.400 mol/5.00 L = 0.0800 M, Br2 is 0.300 mol/5.00 L = 0.0600 M, and COBr2 is 0.0200 mol/5.00 L = 0.00400 M.

The balanced equation for the reaction is:

CO(g) + Br2(g) ⇌ COBr2(g)

Let's assume that at equilibrium, the concentrations of COBr2 is x M. Therefore, the concentrations of CO and Br2 will be (0.0800 - x) M and (0.0600 - x) M, respectively.

The equilibrium constant expression (Kc) for this reaction is:

Kc = [COBr2] / ([CO] * [Br2])

Substituting the equilibrium concentrations into the Kc expression, we have:

Kc = (x) / ((0.0800 - x) * (0.0600 - x))

Solving for x using the given values and the equation above, we find x ≈ 0.0040 M.

Therefore, the equilibrium concentrations for the gases are:

[CO] ≈ 0.0760 M

[Br2] ≈ 0.0560 M

[COBr2] ≈ 0.0040 M

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Alanine is also a non-polar amino acid and would have similar Protein structure of leucine. Thus, enzyme activity should be maintained because the polar basic should not undergo major change.

Alanine is an amino acid this is used to make proteins. It is used to interrupt down tryptophan and nutrition B-6. It is a supply of power for muscular tissues and the principal frightened gadget. It strengthens the immune gadget and allows the frame use sugars. Alanine is a nonacidic α-amino acid. Its aspect chain (a methyl group) is neither acidic (it isn't greater acidic than water) nor basic (it does now no longer have a nitrogen atom lone pair that isn't delocalized via way of means of resonance).

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[tex]CS_2[/tex]  is the limiting reactant in the reaction.

The balanced chemical equation for the reaction is:

3 [tex]CS_2[/tex] + 6 [tex]NaOH[/tex] → 2 [tex]Na_2CS_3[/tex] + [tex]Na_2CS_3[/tex] + 3 [tex]H_2O[/tex]

To determine the limiting reactant, we need to calculate the amount of product that each reactant can produce and compare it to the actual amount of product that is formed.

First, we need to convert the mass of [tex]CS_2[/tex] to moles:

118.3 g [tex]CS_2[/tex] × (1 mol [tex]CS_2[/tex] /76.14 g [tex]CS_2[/tex]) = 1.555 mol [tex]CS_2[/tex]

Next, we need to calculate the amount of product that can be formed from 1.555 mol of [tex]CS_2[/tex]. According to the balanced equation, 3 mol of [tex]CS_2[/tex] will produce 2 mol of [tex]Na_2CS_3[/tex]. Therefore, 1.555 mol of [tex]CS_2[/tex] will produce:

(2/3) × 1.555 mol = 1.037 mol [tex]Na_2CS_3[/tex]

Now, let's calculate the amount of product that can be formed from 3.12 mol of [tex]NaOH[/tex]. According to the balanced equation, 6 mol of [tex]NaOH[/tex] will produce 2 mol of [tex]Na_2CS_3[/tex]. Therefore, 3.12 mol of [tex]NaOH[/tex] will produce:

(2/6) × 3.12 mol = 1.04 mol [tex]Na_2CS_3[/tex]

Comparing the amount of product that can be formed from each reactant, we see that 1.037 mol of [tex]Na_2CS_3[/tex] can be produced from the 1.555 mol of [tex]CS_2[/tex], while 1.04 mol of [tex]Na_2CS_3[/tex] can be produced from the 3.12 mol of [tex]NaOH[/tex]. Therefore, the limiting reactant in the reaction is [tex]CS_2[/tex].

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1.) Decreasing the iodate ion concentration in the iodine clock reaction will decrease the reaction rate according to the rate law. If you halve the iodate ion concentration, the rate will also halve.

2.) Increasing the bisulfite ion concentration in the iodine clock reaction will increase the reaction rate according to the rate law. If you double the bisulfite ion concentration, the rate will double.

3.) Doubling the total volume of the solution by doubling the volume of water, iodate, and bisulfite solutions will not affect the rate of the iodine clock reaction because the concentrations of reactants will remain the same.

4.) Recording the temperature is important because the reaction rate is temperature-dependent, even though it was not used in calculations. A change in temperature can impact the rate, so it is important to note the temperature for consistent results.

5.) At the particulate level, increasing the concentrations of reactants increases the rate of the reaction because more particles are available to collide, leading to a higher probability of successful collisions and faster reaction.

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The change in temperature of the 5.5 g piece of metal when heated with an energy transfer of 9624 J and a specific heat of 0.74 J/g°C is approximately 2364.84°C.

Given a 5.5 g piece of metal that is heated with an energy transfer of 9624 J. The specific heat of the metal is 0.74 J/g°C. To find the change in temperature, you can use the formula:
q = mcΔT

where q represents the amount of energy transferred (9624 J), m is the mass of the metal (5.5 g), c is the specific heat capacity (0.74 J/g°C), and ΔT is the change in temperature.

First, rearrange the formula to solve for ΔT:
ΔT = q / (mc)

Next, substitute the given values into the formula:
ΔT = 9624 J / (5.5 g × 0.74 J/g°C)

Now, calculate the change in temperature:
ΔT = 9624 J / (4.07 J/°C) = 2364.84°C

So, the change in temperature of the 5.5 g piece of metal when heated with an energy transfer of 9624 J and a specific heat of 0.74 J/g°C is approximately 2364.84°C.

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The mass of KI needed to prepare 500 mL of a 0. 750 M solution is 62.25 grams

To compute the mass of KI needed to prepare 500 mL of a 0.750 M solution, use the formula:

Molarity (M) = moles of solute / volume of solution in liters

First, convert the volume to liters: 500 mL = 0.5 L

Next, rearrange the formula to find the moles of solute:

moles of solute = Molarity × volume of solution in liters
moles of KI = 0.750 M × 0.5 L
moles of KI = 0.375 moles

Now, find the molar mass of KI (Potassium Iodide):
K (Potassium) = 39.10 g/mol
I (Iodine) = 126.90 g/mol
Molar mass of KI = 39.10 g/mol + 126.90 g/mol = 166.00 g/mol

Finally, calculate the mass of KI needed:

mass of KI = moles of KI × molar mass of KI
mass of KI = 0.375 moles × 166.00 g/mol
mass of KI = 62.25 g

Therefore, you will need 62.25 grams of KI to prepare 500 mL of a 0.750 M solution.

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Answer:

The balanced chemical equation is:

2As2O3 + 3C → 3CO2 + 4As

To find out how many grams of carbon dioxide can be produced, we need to use stoichiometry.

First, we need to determine which reactant is limiting. We can do this by calculating the amount of carbon that reacts with As2O3:

1.00 g C × (1 mol C / 12.01 g) × (2 mol As2O3 / 3 mol C) × (197.84 g As2O3 / 1 mol As2O3) = 2.60 g As2O3

This means that only 2.60 g of the As2O3 will react, and the rest will be in excess.

Now we can use the balanced equation to calculate the amount of CO2 that will be produced:

2 mol As2O3 : 3 mol CO2

2.60 g As2O3 × (1 mol As2O3 / 197.84 g) × (3 mol CO2 / 2 mol As2O3) × (44.01 g CO2 / 1 mol CO2) = 3.56 g CO2

Therefore, 3.56 grams of carbon dioxide can be produced.

A solution of potassium hydroxide reacts completely with a solution of nitric acid. Potassium nitrate will remain after the water dissolves in solid mixture.

What is a solid mixture?

This kind of mixture consists of two or more solids. Alloys are what are used when the solids are made of metals. Sand and sugar, stainless steel, etc. are a few examples of solid-solid combinations.

2KOH(aq) + HNO₃(aq) → KNO₃(aq) + 2H₂O(l)

When a solution of potassium hydroxide (KOH) reacts completely with a solution of nitric acid (HNO₃), potassium nitrate (KNO₃) is formed in aqueous form, along with water (H₂O). The solid mixture that will remain after the water evaporates is potassium nitrate (KNO₃).

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The molecular geometry around each carbon atom in [tex]CH_2CHCH_3[\tex]

using vsepr theory is tetrahedral and trigonal planar.

What is molecular geometry?

The three-dimensional shape that a molecule takes up in space is known as molecular geometry. It depends on the surrounding atoms and electron pairs as well as the core atom.

By assessing the amount of electron pairs surrounding an atom, the Valence Shell Electron Pair Repulsion (VSEPR) theory predicts molecular shapes and bond angles. Electron couples will reject one another because they are negatively charged. According to the idea, electron pairs will position themselves in three dimensions to minimise repulsion.

VSEPR Guidelines

Determine the main atom.

tally the valence electrons in it.

For every atom with a bond, add one electron.

For charge, add or subtract electrons (see Top Tip).

To determine the total, divide them by 2.

the quantity of electron pairs.

Make a shape prediction using this number.

Molecular geometry around propane is tetrahedral and trigonal planar.

Therefore, molecular geometry around [tex]CH_2CHCH_3[\tex] is tetrahedral and trigonal planar.

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In this sample there are 1.51 x 10^24 molecules of sucrose present in it.

To determine the number of molecules of sucrose present in the sample, we need to first calculate the number of moles of carbon present in the sample.

The molecular formula of sucrose (C12H22O11) contains 12 carbon atoms.

So, 3.6 x 10^24 atoms of carbon is equal to 3.6 x 1024/12 = 3 x 1023 moles of carbon.

Now, we can use the Avogadro's number (6.022 x 10^23 molecules per mole) to convert the number of moles of carbon to the number of molecules of sucrose:

Number of molecules of sucrose = 3 x 10^23 x (1 molecule of sucrose / 12 molecules of carbon) x (6.022 x 10^23 molecules per mole)

Number of molecules of sucrose = 1.51 x 10^24 molecules

Therefore, there are 1.51 x 10^24 molecules of sucrose present in the sample.

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The abaxial (lower) surface of the sepal is typically more damaged than the adaxial (upper) surface, as it is more exposed to pollutants in the air.

Air pollution can damage the sepal of a flower in various ways. Pollutants in the air can reduce the size and number of stomata, which are small pores that allow for gas exchange in the leaf tissue.

The concentration of minerals in the tissue can also be altered by pollution, which can affect plant growth and development. Additionally, air pollution can cause the cuticle, a waxy layer that covers the leaf surface, to become thicker. This can further restrict gas exchange and reduce photosynthesis.

Studies have shown that the abaxial surface of the sepal is typically more damaged by pollution than the adaxial surface. This is likely due to the fact that the abaxial surface is more exposed to pollutants in the air.

The stomata on the abaxial surface may close or become blocked due to the accumulation of pollutants, which can lead to reduced gas exchange and decreased photosynthesis. The thickening of the cuticle on the abaxial surface can further restrict gas exchange and exacerbate the effects of pollution.

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Answer:Starting with 51,300 grams of water, we can theoretically produce 45,592 grams of oxygen using electrolysis, based on the balanced equation 2H₂O → 2H₂ + O₂.

4. The pH of the 0.25M solution of H₃O⁺ is 0.602.

5. The pH of the 6.3 x 10⁻⁸M solution of H₃O⁺ is 7.2.

6. Comparing the pH values from 4 and 5, the solution with a pH of 7.2 is a base.

7: Comparing the pH values from 4 and 5, the 0.25M H₃O⁺ solution (pH 0.60) is a strong acid because its pH is much lower than that of the 6.3x10^-8M H₃O⁺ solution (pH 7.20).

Let us learn more in detail.

1. pH: pH is a measure of the acidity or basicity of a solution. It is defined as the negative logarithm of the concentration of hydrogen ions (H⁺) in a solution.

2. H₃O⁺: H₃O⁺ is the hydronium ion, which is formed when a proton (H⁺) is added to a water molecule (H₂O). It is the most common form in which hydrogen ions exist in aqueous solution.

3. Strong acid: A strong acid is an acid that completely dissociates in water, producing a large number of H⁺ ions. Examples of strong acids include hydrochloric acid (HCl) and sulfuric acid (H₂SO₄).

Now, let's tackle the questions:

4. To calculate the pH of a 0.25M solution of H₃O⁺, we can use the following formula:

pH = -log[H₃O⁺]

where [H₃O⁺] is the concentration of hydronium ions in moles per liter. In this case, [H₃O⁺] = 0.25M, so:

pH = -log(0.25) = 0.602

Therefore, the pH of the solution is 0.602.

5. To calculate the pH of a 6.3x10-8M solution of H₃O⁺, we can use the same formula:

pH = -log[H₃O⁺]

In this case, [H₃O⁺] = 6.3x10-8M, so:

pH = -log(6.3x10-8) = 7.2

Therefore, the pH of the solution is 7.2.

6. To determine which solution is a base, we need to look at the pH. pH values below 7 indicate an acidic solution, while pH values above 7 indicate a basic solution. Therefore, the solution with a pH of 7.2 (from question 5) is a base.

7. To determine which solution is a strong acid, we need to consider the concentration of H₃O⁺+ ions. A strong acid is one that completely dissociates in water, producing a large amount of H⁺ ions. Therefore, the solution with a higher concentration of H₃O⁺ ions (from question 4) is a strong acid.

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The freezing point of the lithium bromide solution is approximately -1.06°C.

To determine the freezing point of the solution, we need to use the freezing point depression formula:

ΔTf = Kf * molality

where ΔTf is the freezing point depression, Kf is the freezing point depression constant (which depends on the solvent), and molality is the concentration of the solution in mol/kg.

First, we need to calculate the molality of the solution:

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

The mass of 525 mL of water is:

mass = volume * density = 525 mL * 1 g/mL = 525 g

The number of moles of lithium bromide is:

moles of LiBr = 0.300 mol

Therefore, the molality of the solution is:

molality = 0.300 mol / 0.525 kg = 0.571 mol/kg

The freezing point depression constant for water is 1.86 °C/m. Therefore, the freezing point depression is:

ΔTf = 1.86 °C/m * 0.571 mol/kg = 1.06306 °C

Finally, to find the freezing point of the solution, we need to subtract the freezing point depression from the freezing point of pure water (0°C):

Freezing point = 0°C - 1.06306°C = -1.06306°C

Therefore, the freezing point of the lithium bromide solution is approximately -1.06°C.

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It would be unreasonable for an amendment to the clean air act to call for 0% pollution emissions from cars with combustion engines because practically it is not possible to have 0% pollution emission.

The CAA was amended in 1965 with the Engine Vehicle Air Contamination Control Act (MVAPCA) which gave the Slash Secretary power to set government guidelines for vehicle emanations as soon as 1967.

In 1963, The Clean Air Act (CAA) was passed. It was an augmentation of Air Pollution Control Act, 1955, . The main idea behind this act was to empower the national government through US General administration under the division of Wellbeing, Government assistance and schooling, and  to extend support towards innovative work and minimizing pollution.

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The 3p subshell in the ground state of atomic silicon contains 3 electrons.

In the ground state of atomic silicon, the electronic configuration is 1s²2s²2p⁶3s²3p².

The 3p subshell can accommodate a total of six electrons, as there are three orbitals in the subshell: 3px, 3py, and 3pz. The first two electrons in the 3p subshell will occupy the 3px and 3py orbitals singly, as required by Hund's rule, while the remaining four electrons will pair up in the 3pz orbital.

Therefore, the 3p subshell in the ground state of atomic silicon contains four electrons.

It's worth noting that the electronic configuration of an atom can be determined by using the periodic table and the rules of electron configuration.

Silicon, which has an atomic number of 14, has two electrons in the 1s orbital, two electrons in the 2s orbital, six electrons in the 2p orbital, two electrons in the 3s orbital, and four electrons in the 3p orbital.

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Answer:

1)b

2)c

3)e

4)d

5)a

6)b

7)a

8)e

9)c

10)e

11)b

12)d

13)d

14)d

15)d

For each activity, you should set the stopcock as follows: completely closed at the beginning of titration, partially open near the endpoint, completely open when filling the buret, and partially open during buret conditioning.

To determine the stopcock position for each activity, we'll go through them one by one:

1. At the beginning of a titration: The stopcock should be completely closed. This ensures that no titrant is released from the buret until you are ready to begin the titration process.

2. Close to the calculated endpoint of a titration: The stopcock should be partially open. As you approach the endpoint, you'll want to slow down the titrant flow to ensure a more accurate and precise reading of the endpoint.

3. Filling the buret with titrant: The stopcock should be completely open. This allows for quick and efficient filling of the buret with the titrant.

4. Conditioning the buret with titrant: The stopcock should be completely open initially to fill the buret, then partially open to release some titrant and wet the inner walls of the buret. This ensures that the buret is properly coated with the titrant for accurate measurements during titration.

In summary, for each activity, you should set the stopcock as follows: completely closed at the beginning of titration, partially open near the endpoint, completely open when filling the buret, and partially open during buret conditioning.

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The best answer for the most reasonable synthesis of the target molecule below from ethyl acetate and any other reagents and starting materials needed is d.) Both a.) and b.)

The best approach for the synthesis of the target molecule from ethyl acetate involves a two-step reaction. First, ethyl acetate reacts with NaOEt (sodium ethoxide) in ethanol to form an intermediate compound. Then, this intermediate compound is further reacted with CHBr3 (bromoform) to form the target molecule. This synthesis is represented in answer choice a.).

Alternatively, the synthesis can be achieved by a three-step reaction sequence. In the first step, ethyl acetate is reacted with LDA (lithium diisopropylamide) to form an enolate intermediate. This intermediate is then reacted with CHBr3 to form a bromoalkene. Finally, the bromoalkene is oxidized using PCC (pyridinium chlorochromate) to form the target molecule. This synthesis is represented in answer choice b.).

Therefore, both answer choices a.) and b.) are reasonable approaches for the synthesis of the target molecule from ethyl acetate.

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The complete question is:

Select the best answer for the most reasonable synthesis of the target molecule below from ethyl acetate and any other reagents and starting materials needed. (Image attached)

Viewing the moon on the 7th day of the lunar cycle, 35% of the the lunar surface would be illuminated.

The moon is in its first quarter phase on the seventh day of the lunar cycle, which makes it seem as a half-circle in the sky. This occurs because the sun's surface is lighted exactly 50% of the time at this time.

The moon's other half was still completely opaque. Different regions of the moon will be illuminated on any given day depending on the moon's phase, which changes over the course of the lunar cycle.

On the seventh day of the cycle, when the moon will be in its first quarter phase, just half of the lunar surface will be fully illuminated by the sun.

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