A potted plant is placed under a grow lamp, which provides 6,200. J of energy to the plant and the soil over the course of an hour. The specific heat capacity of the soil is about 0. 840 J/g°C and the temperature goes up by 8. 75°C of soil. How many grams of soil are there?


WILL GIVE BRAINLIEST!!!!!!!!!!!!!!!!

Answers

Answer 1

A potted plant is placed under a grow lamp, which provides 6,200. J of energy to the plant and the soil over the course of an hour. The specific heat capacity of the soil is about 0. 840 J/g°C and the temperature goes up by 8. 75°C of soil.  800 grams of soil are there

We can use the formula:

Q = m * c * ΔT

where Q is the amount of energy transferred, m is the mass of the material, c is the specific heat capacity of the material, and ΔT is the change in temperature.

We know that Q = 6,200 J, c = 0.840 J/g°C, and ΔT = 8.75°C. We can rearrange the formula to solve for m:

m = Q / (c * ΔT)

Plugging in the values, we get:

m = 6,200 J / (0.840 J/g°C * 8.75°C)

m = 800 grams

Therefore, there are 800 grams of soil.

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Related Questions

A 0. 05m solution of potassium iodide is needed to lower the freezing point of a sample of pure water. How many grams of KI must be dissolved in 500 grams water to produce a. 050 mole solution of KI?[ water density is 1g/1ml]


A) 4 grams


B) 4. 15 grams


C) 8. 3 grams


D) 25 grams

Answers

The mass of KI that must be dissolved in 500 g of water to produce a 0.05 M solution of KI is approximately 8.3 grams. The answer is C) 8.3 grams.

To calculate the mass of KI required to make a 0.05 M solution, we need to use the formula for freezing point depression:

ΔT = K_f × m

where ΔT is the freezing point depression, K_f is the freezing point depression constant of water (1.86 °C/m), and m is the molality of the solution (moles of solute per kilogram of solvent).

Since we want to make a 0.05 M solution of KI, we need to find the molality of the solution. 0.05 moles of KI per liter of solution corresponds to 0.05 moles of KI per 1000 g of water, since the density of water is 1 g/mL. Therefore:

m = 0.05 moles KI / 0.5 kg water = 0.1 mol/kg

Now we can use the freezing point depression formula to find ΔT:

ΔT = K_f × m = 1.86 °C/m × 0.1 mol/kg = 0.186 °C

This means that the freezing point of the solution will be lowered by 0.186 °C compared to pure water.

To calculate the mass of KI required, we can use the formula:

moles of solute = mass of solute / molar mass of solute

Since we want 0.05 moles of KI, we can rearrange this formula to solve for the mass of KI:

mass of KI = moles of KI × molar mass of KI

The molar mass of KI is 166 g/mol. Substituting the given values, we get:

mass of KI = 0.05 mol × 166 g/mol = 8.3 g

Therefore, the mass of KI that must be dissolved in 500 g of water to produce a 0.05 M solution of KI is approximately 8.3 grams. The answer is C) 8.3 grams.

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Ethylene glycol has a density of 1. 1 kg/L. How many liters of ethylene glycol should be added to the water in the radiator to protect the system to -18°C?

Answers

Approximately 1.82 liters of ethylene glycol should be added to the water in the radiator to make a 50:50 mixture that will protect the system to -18°C.

A 50:50 mixture of ethylene glycol and water is recommended to provide protection down to approximately -37°C. This mixture will provide freeze point depression of approximately -34°C. We can use the following equation to calculate the volume of ethylene glycol required:

Veth = (Vtot × Ceth) / ρeth

where:

Veth = volume of ethylene glycol

Vtot = total volume of mixture

Ceth = concentration of ethylene glycol

ρeth = density of ethylene glycol

To calculate volume of ethylene glycol required to make a 50:50 mixture, we can substitute these values into the equation:

[tex]Veth = (Vtot * Ceth) / \rho eth \\Veth = (4 L * 0.5) / 1.1 kg/L \\Veth = 1.82 L[/tex]

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Which refers to a phenomenon that occurs as solar radiation is absorbed by Earth’s surface and re-radiated into the atmosphere, where it gets trapped and warms the Earth? energy budgeting greenhouse effect solar circulation incoming radiation

Answers

The phenomenon being referred to in this question is the greenhouse effect.

This effect occurs as solar radiation is absorbed by Earth's surface and re-radiated into the atmosphere. Some of this energy gets trapped in the atmosphere by greenhouse gases such as carbon dioxide, methane, and water vapor. This trapped energy warms the Earth, leading to global climate change.

To explain further, the Earth has an energy budgeting system where incoming radiation from the sun is balanced by outgoing radiation from the Earth's surface and atmosphere. However, due to human activities such as burning fossil fuels and deforestation, the concentration of greenhouse gases in the atmosphere has increased.

This increase in greenhouse gases has disrupted the balance of the energy budgeting system, leading to an overall warming of the Earth.

Solar circulation also plays a role in the greenhouse effect, as it affects the distribution of heat and energy around the planet. As the Earth's surface warms, air and water move around the globe, distributing heat and energy. This solar circulation helps to regulate the Earth's temperature, but it can also contribute to changes in climate patterns and weather events.

In summary, the greenhouse effect is a phenomenon that occurs as solar radiation is absorbed by the Earth's surface and re-radiated into the atmosphere. This trapped energy warms the Earth, leading to global climate change.

The greenhouse effect is a result of an imbalance in the Earth's energy budgeting system, caused by the increase in greenhouse gases in the atmosphere. Solar circulation also plays a role in regulating the Earth's temperature and climate patterns.

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Answer:

greenhouse Effect (B , edge 2023)

Explanation:

1.

What is the boiling point of a solution prepared by dissolving 2. 50 g of biphenyl (C12 H10)

in 85. 0 g of benzene. The molecular weight of biphenyl is 154 g. ​

Answers

The boiling point of the solution prepared by dissolving 2.50 g of biphenyl in 85.0 g of benzene is 80.58 °C.

The boiling point elevation of the solution can be determined using the equation ΔTb = Kb x m, where ΔTb represents the boiling point elevation, Kb is the boiling point elevation constant (for benzene, Kb = 2.53 °C/m), and m denotes the molality of the solution.

To calculate the molality, we first need to find the number of moles of biphenyl in the solution. By dividing the given mass of biphenyl (2.50 g) by its molar mass (154 g/mol), we obtain 0.0162 mol.

Next, we can determine the molality by dividing the moles of solute by the mass of the solvent in kilograms. Given that the mass of the solvent is 85.0 g (0.085 kg), the molality is calculated as 0.0162 mol / 0.085 kg = 0.191 mol/kg.

Substituting this molality into the equation, we have ΔTb = 2.53 °C/m x 0.191 mol/kg = 0.484 °C.

This indicates that the boiling point of the solution is raised by 0.484 °C compared to the boiling point of pure benzene, which is 80.1 °C.

Therefore, the boiling point of the solution, prepared by dissolving 2.50 g of biphenyl in 85.0 g of benzene, is 80.58 °C.

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How many grams of CaCl2 would be required to produce a. 750 M solution with a 855 ml volume?

Answers

To make a 750 M solution with a volume of 855 ml, we need 56.79 grams of CaCl₂. The calculation involves using the formula mass = Molarity x Volume x Molar mass.

To calculate the mass of CaCl₂ required to make a 750 M solution with a volume of 855 ml, we can use the following formula:

mass = Molarity x Volume x Molar mass

where:

Molarity is the concentration of the solution in moles per liter (M)

Volume is the volume of the solution in liters (L)

Molar mass is the mass of one mole of the solute in grams (g/mol)

The molar mass of CaCl₂ is:

Ca = 40.08 g/mol

Cl₂ = 2 x 35.45 g/mol = 70.90 g/mol

Molar mass of CaCl₂ = 40.08 + 70.90 = 110.98 g/mol

Substituting the given values into the formula, we get:

mass = 750 mol/L x 855 mL x (1 L / 1000 mL) x 110.98 g/mol

Note that we need to convert the volume from milliliters to liters by dividing by 1000.

mass = 56.79 g

Therefore, we need 56.79 grams of CaCl₂ to make a 750 M solution with a volume of 855 ml.

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What volume of oxygen gas at STP would be needed


to react completely with 1. 55 g of aluminum?

Answers

The volume of oxygen gas at STP that would be needed to react completely with 1.55 g of aluminum is 2.24 L.

The balanced chemical equation for the reaction of aluminum with oxygen gas is:

4Al + 3O₂ → 2Al₂O₃

From the equation, we can see that 4 moles of aluminum react with 3 moles of oxygen gas to produce 2 moles of aluminum oxide. We need to first calculate the number of moles of aluminum present in 1.55 g of aluminum:

moles of Al = mass/molar mass = 1.55 g/ 26.98 g/mol = 0.0574 mol

According to the balanced equation, 3 moles of oxygen gas react with 4 moles of aluminum. Therefore, the number of moles of oxygen gas required can be calculated as:

moles of O₂ = (3/4) * moles of Al = (3/4) * 0.0574 mol = 0.0431 mol

Finally, we can use the ideal gas law to calculate the volume of oxygen gas at STP (standard temperature and pressure, 0°C and 1 atm) that is required:

PV = nRT

where P = 1 atm, V = volume of gas, n = 0.0431 mol, R = 0.0821 L·atm/mol·K, and T = 273 K.

Solving for V, we get:

V = nRT/P = (0.0431 mol) * (0.0821 L·atm/mol·K) * (273 K) / (1 atm) = 2.24 L


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1. a balloon
is filled with hydrogen at a temperature of 22.0°c and a pressure of
$12 mm hg. if the balloon's original volume was 1.25 liters, what will its new
volume be at a higher altitude, where the pressure is only 625 mm hg? assume
the temperature stays the same.

Answers

The new volume of the hydrogen-filled balloon at a higher altitude with a pressure of 625 mm Hg will be 6.25 L.

To solve this problem, we can use the gas law equation, which is P1V1 = P2V2, where P1 and V1 are the initial pressure and volume, and P2 and V2 are the final pressure and volume.

Given the initial pressure P1 = 112 mm Hg, the initial volume V1 = 1.25 L, and the final pressure P2 = 625 mm Hg, we can calculate the final volume V2 by rearranging the equation:

V2 = (P1V1) / P2

V2 = (112 mm Hg × 1.25 L) / 625 mm Hg

V2 = 6.25 L

So, the new volume of the balloon at a higher altitude will be 6.25 liters, assuming the temperature remains constant at 22.0°C.

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Acetylene (c2h2) is a flammable gas used in welder's torches. Styrene (C8H8) is used to make packing peanuts. What is the empirical formula for each? Describe why the empirical formula might be useful in the lab setting but not useful for predicting the properties and/or functions of materials

Answers

The empirical formula for acetylene (C₂H₂) is also C₂H₂, while the empirical formula for styrene (C₈H₈) is CH. The empirical formula is useful in the lab for quickly identifying the simplest ratio of atoms in a compound.

To determine the empirical formula of a compound, we need to find the simplest whole-number ratio of the atoms present in the compound. For acetylene (C₂H₂), the ratio is 1:1 for carbon and hydrogen, so the empirical formula is also C₂H₂.

For styrene (C₈H₈), the ratio of carbon to hydrogen is 1:1, so the empirical formula is CH.

The empirical formula can be useful in the lab setting as a quick way to identify the simplest ratio of atoms in a compound, which can help in determining reaction stoichiometry and other practical applications.

However, it may not be useful for predicting the properties or functions of a material, as it does not provide information about the molecular structure or bonding present in the compound.

For example, while acetylene and styrene have the same empirical formula (CH), they have very different chemical and physical properties due to their different molecular structures and bonding.

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(copied answer from the sheet)
The iron haematite contains 70% iron by mass. We can calculate the amount of iron obtained in 1 tonne (1000kg) of haematite by:
Mass of iron )kg)= 70/100 x1000=700kg
Calculate the amount of calcium and magnesium obtained from 500kg of dolomite, which is 22% calcium and 13% magnesium by mass. Show your working

Answers

1. The mass of calcium obtained from 500 Kg of dolomite is 110 kilograms

2. The mass of magnesium obtained from 500 Kg of dolomite is  65 kilograms

How do i determine the mass obtained?

The mass of calcium and magnesium in the 500 Kg of dolomite can be obtained as shown below:

1. For calcium

Percentage of calcium = 22%Mass of dolomite = 500 kilogramsMass of calcium =?

Mass of calcium = Percentage of calcium × Mass of dolomite

Mass of calcium = 22% × 500

Mass of calcium = (22/100) × 500

Mass of calcium = 110 kilograms

2. For magnesium

Percentage of magnesium = 13%Mass of dolomite = 500 kilogramsMass of magnesium =?

Mass of magnesium = Percentage of magnesium × Mass of dolomite

Mass of magnesium = 13% × 500

Mass of magnesium = (13/100) × 500

Mass of magnesium = 65 kilograms

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Use Boyle's, Charle's, or Gay-Lussac's law to calculate the missing value in each of the following. A. V1=2. 0 L, P1=0. 82 Atm, V2=1. 0 L, p2=?

Answers

After using Gay-Lussac's Law the missing value in this problem is P2, which is equal to 1.64 Atm

In this problem, we can use Gay-Lussac's law to calculate the missing value. Gay-Lussac's law states that at constant volume, the pressure of a gas is directly proportional to its temperature. In other words, if we increase the temperature of a gas, its pressure will increase as well, as long as the volume remains constant.

To use Gay-Lussac's law, we need to know the initial pressure and volume of the gas, as well as the final volume. We can then calculate the final pressure using the formula:

P2 = (P1 * V1 * T2) / (V2 * T1)

In this case, we know that V1 = 2.0 L, P1 = 0.82 Atm, V2 = 1.0 L, and we need to find P2. We don't know the temperature of the gas, but since the volume is decreasing and the pressure is likely to increase, we can assume that the temperature is staying the same.

Plugging in the values we have, we get:

P2 = (0.82 Atm * 2.0 L * T2) / (1.0 L * T1)

Simplifying this expression, we get:

P2 = 1.64 Atm

Therefore, the missing value in this problem is P2, which is equal to 1.64 Atm. We used Gay-Lussac's law to calculate this value based on the initial pressure, volume, and the final volume of the gas.

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Predict which of these compounds has the highest boiling point.




ammonia, because its low density reduces heat transfer



ammonia, because its low density reduces heat transfer



water, because strong hydrogen bonds form between its molecules



water, because strong hydrogen bonds form between its molecules



ethanol, because its high molecular mass reduces its kinetic energy



ethanol, because its high molecular mass reduces its kinetic energy



ethane, because its low melting point indicates high stability in the liquid phase

Answers

The compound with the highest boiling point would be water, because of its strong hydrogen bonds between molecules.

Hydrogen bonding occurs when a hydrogen atom is covalently bonded to an electronegative atom, such as oxygen or nitrogen.

In water, each molecule is capable of forming four hydrogen bonds, leading to a strong intermolecular force that requires a large amount of energy to overcome. This results in a higher boiling point compared to ammonia, ethanol, and ethane, which do not exhibit hydrogen bonding to the same extent.

The statement that ammonia has a low density that reduces heat transfer and that ethanol has a high molecular mass that reduces kinetic energy are not relevant to the comparison of boiling points between these compounds.

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What is the concentration of KBr in a solution prepared by mixing 0. 200 L of 0. 053 M KBr with
0. 550 L of 0. 078 M KBr?

Answers

To find the concentration of KBr in the solution, we can use the formula:

C1V1 + C2V2 = C3V3

where C1 and V1 are the concentration and volume of the first solution, C2 and V2 are the concentration and volume of the second solution, and C3 and V3 are the concentration and volume of the resulting mixed solution.



Plugging in the given values, we get:

(0.053 M x 0.200 L) + (0.078 M x 0.550 L) / (0.200 L + 0.550 L)

= (0.0106 mol + 0.0429 mol) / 0.750 L

= 0.0587 M

Therefore, the concentration of KBr in the final solution is 0.0587 M.

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You need to neutralize 100. 0ml of a 2. 5 M solution of H2SO4. How many grams of KOH are needed

Answers

To neutralize 100.0ml of a 2.5 M solution of H2SO4, you will need 28.055 grams of KOH.

To neutralize 100.0ml of a 2.5 M solution of H2SO4, you will need to add a certain amount of KOH, which will react with the H2SO4 to form water and a salt. The goal of this process is to achieve a neutral pH of 7, indicating that the acid and base have been completely reacted.

To calculate how many grams of KOH are needed, you first need to determine the number of moles of H2SO4 present in the solution. This can be done using the formula:

moles = concentration (M) x volume (L)

Plugging in the values, we get:

moles H2SO4 = 2.5 M x 0.100 L = 0.250 moles

Since H2SO4 is a diprotic acid, meaning it can donate two hydrogen ions, it will require twice the amount of KOH to neutralize. Therefore, we need to double the number of moles of H2SO4 to get the number of moles of KOH needed:

moles KOH = 2 x 0.250 moles = 0.500 moles

Now we can use the formula for finding the mass of a compound using its moles and molar mass:

mass = moles x molar mass

The molar mass of KOH is 56.11 g/mol, so we can plug in the values and solve for the mass of KOH needed:

mass KOH = 0.500 moles x 56.11 g/mol = 28.055 g

Therefore, to neutralize 100.0ml of a 2.5 M solution of H2SO4, you will need 28.055 grams of KOH.

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What set of coefficients will balance the chemical equation below:


___FeS (s) + ___O2 (g) ___Fe2O3 (s) + ___SO2 (g)

A. 4,7,2,4

B. 1,2,3,1

C. 2,7,2,2

D. 4,1,4,8

Answers

A. 4,7,2,4 set of coefficients will balance the chemical equation below:

4FeS (s) + 7O2 (g) 2Fe2O3 (s) +4SO2 (g)

What are the coefficients for balancing?

Stoichiometric coefficients are the numbers required to balance a chemical equation. These are essential because they connect the amounts of reactants used and the products produced. The coefficients are related to the equilibrium constants since they are used to calculate them.

The coefficients indicate how many of each ingredient are present throughout the reaction and can be changed to make the equation balanced.

It makes sense that H2O has a bond order of 2, whereas NH3 has a bond order of 3, given the number of bonds each possesses.

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Use the equation mava=mbvb to answer the question. 50 ml of 0.5 barium hydroxide (baoh) are required to fully titrate a 100 ml solution of sulfuric acid. what is the initial concentration of the acid?​

Answers

The initial concentration of the sulfuric acid solution is 0.25 M.

In this titration reaction, barium hydroxide ([tex]Ba(OH)2[/tex]) is reacting with sulfuric acid ([tex]H2SO4[/tex]) to form barium sulfate ([tex]BaSO4[/tex]) and water ([tex]H2O[/tex]).

The balanced equation for the reaction is:

[tex]Ba(OH)2(aq) + H2SO4(aq) → BaSO4(s) + 2H2O(l)[/tex]

From the equation, we can see that one mole of [tex]Ba(OH)2[/tex] reacts with one mole of[tex]H2SO4[/tex]. Therefore, the moles of [tex]Ba(OH)2[/tex] used in the titration can be calculated as follows:

moles of [tex]Ba(OH)2[/tex] = (50 mL × 0.5 M) / 1000

moles of[tex]Ba(OH)2[/tex] = 0.025 mol

Since the stoichiometry of the reaction is 1:1, the moles of [tex]H2SO4[/tex] in the original solution are also equal to 0.025 mol.

We can use the volume and moles of [tex]H2SO4[/tex] to calculate the initial concentration of the acid:

initial concentration of [tex]H2SO4[/tex] = moles of H2SO4 / volume of [tex]H2SO4[/tex]

initial concentration of [tex]H2SO4[/tex] = 0.025 mol / 0.1 L

initial concentration of [tex]H2SO4[/tex] = 0.25 M

Therefore, the initial concentration of the sulfuric acid solution is 0.25 M.

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Environmental scientists can use a similar lab kit to test collected water samples from


bodies of water. In lakes and streams, calcium carbonate (CaCO3) causes alkalinity,


which allows it to function as a buffer, neutralizing any acid rain that may enter the


water supply. A buffer is a substance that serves to resist small changes in acidity or


alkalinity in a solution.


Environmental scientists monitoring pollution levels are measuring buffer levels in


two specific lakes. They found that Lake B had a greater ppm of calcium carbonate


than Lake A.


Which of the two lakes would be able to neutralize a greater amount of acid rain?


Explain your answer.

Answers

Lake B with a greater ppm of calcium carbonate would be able to neutralize a greater amount of acid rain.

Calcium carbonate (CaCO₃) acts as a buffer in lakes and streams by neutralizing any acid rain that may enter the water supply. A buffer is a substance that serves to resist small changes in acidity or alkalinity in a solution. Environmental scientists monitoring pollution levels are measuring buffer levels in two specific lakes. They found that Lake B had a greater ppm of calcium carbonate than Lake A.

Since calcium carbonate causes alkalinity, which allows it to function as a buffer, neutralizing any acid rain that may enter the water supply, Lake B would be able to neutralize a greater amount of acid rain than Lake A because it has a greater ppm of calcium carbonate.

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A 5. 5 g piece of metal is heated, and the amount


of energy transferred is 9624 ). If the specific


heat of the metal is 0. 74 J/g°C, what is the change


in temperature?

Answers

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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Silver reacts with hydrogen sulphide gas, and oxygen according to the reaction: 4Ag(s) + 2H2S(g) + O2(g) → 2Ag2S(s)+ 2H2O(g) How many grams of silver sulphide are formed when 1. 90 g of silver reacts with 0. 280 g of hydrogen sulphide and 0. 160 g of oxygen?

Answers

When 90 g of silver reacts with 0.280 g of hydrogen sulphide and 0.160 g of oxygen, approximately 1.018 grams of silver sulphide are formed.

To determine how many grams of silver sulphide (Ag2S) are formed when 90 g of silver (Ag) reacts with 0.280 g of hydrogen sulphide (H2S) and 0.160 g of oxygen (O2), follow these steps:

1. Calculate the moles of each reactant using their molar masses:
- Silver (Ag): 90 g / (107.87 g/mol) ≈ 0.834 moles
- Hydrogen Sulphide (H2S): 0.280 g / (34.08 g/mol) ≈ 0.00821 moles
- Oxygen (O2): 0.160 g / (32.00 g/mol) ≈ 0.00500 moles

2. Determine the limiting reactant using the stoichiometry of the balanced chemical equation:
- Ag: 0.834 moles / 4 = 0.2085
- H2S: 0.00821 moles / 2 = 0.00411
- O2: 0.00500 moles / 1 = 0.00500

The smallest value is 0.00411, which corresponds to H2S, making it the limiting reactant.

3. Calculate the moles of Ag2S produced using the stoichiometry from the balanced chemical equation:
- Moles of Ag2S = 0.00411 moles H2S × (2 moles Ag2S / 2 moles H2S) = 0.00411 moles Ag2S

4. Convert the moles of Ag2S to grams using its molar mass (247.87 g/mol):
- Grams of Ag2S = 0.00411 moles Ag2S × 247.87 g/mol = 1.018 g Ag2S

So, when 90 g of silver reacts with 0.280 g of hydrogen sulphide and 0.160 g of oxygen, approximately 1.018 grams of silver sulphide are formed.

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The electron in a hydrogen atom can undergo a transition from n = 6 to n = 1, emitting a photon with energy 2.11 × 10–18 J. (2 points)

i. What is the frequency of this transition? (1 point)


ii. How does this transition show that the energy of a photon is quantized? (1 point)



C. Why is it impossible for an electron to have the quantum numbers n = 3, l = 0, ml = 1, ms = +? (2 points)

Answers

i. The frequency of this transition is 3.18 × 10¹⁵ Hz.

How to determine frequency?

i. Use the relationship E = hf to find the frequency (f) of the photon:

E = hf

f = E/h

f = (2.11 × 10–18 J) / (6.626 × 10⁻³⁴ J s)

f ≈ 3.18 × 10¹⁵ Hz

ii. This transition shows that the energy of a photon is quantized because the electron in a hydrogen atom can only exist in certain energy levels (quantum states). When an electron moves from a higher energy level to a lower energy level, it must release energy in the form of a photon with a specific frequency and energy.

C. According to the Pauli exclusion principle, no two electrons in an atom can have the same set of four quantum numbers. The quantum numbers are:

n: the principal quantum number (positive integer values)

l: the azimuthal quantum number (integer values from 0 to n-1)

ml: the magnetic quantum number (integer values from -l to l)

ms: the spin quantum number (+1/2 or -1/2)

Since there can only be one electron in an atom with the specified quantum numbers, and since the Pauli exclusion principle forbids two electrons from having the same set of quantum numbers, it follows that an electron cannot have the quantum numbers n = 3, l = 0, ml = 1, or ms = +.

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How many moles are in 98. 3 grams of nickel(III) phosphate

Answers

There are 0.596 moles of nickel(III) phosphate in 98.3 grams of the compound.

To calculate the number of moles in 98.3 grams of nickel(III) phosphate, we need to use the formula:

moles = mass (in grams) / molar mass

First, we need to find the molar mass of nickel(III) phosphate. To do this, we need to know the chemical formula of the compound. Nickel(III) phosphate has the chemical formula NiPO4. The molar mass of nickel(III) phosphate can be calculated by adding the atomic masses of nickel, phosphorus, and four oxygen atoms:

Molar mass of NiPO4 = (1 x atomic mass of Ni) + (1 x atomic mass of P) + (4 x atomic mass of O)

Molar mass of NiPO4 = (1 x 58.69) + (1 x 30.97) + (4 x 15.99)

Molar mass of NiPO4 = 164.67 g/mol

Now we can use the formula above to calculate the number of moles:

moles = 98.3 g / 164.67 g/mol

moles = 0.596 moles

Therefore, there are 0.596 moles of nickel(III) phosphate in 98.3 grams of the compound.

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Metamorphic rock that breaks into sheets when broken

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Metamorphic rock that breaks into sheets when broken is called "foliated metamorphic rock." Foliated metamorphic rocks are characterized by their layering or alignment of minerals, which occurs during the metamorphic process. This distinct feature makes it possible for the rocks to break along these layers, forming sheets when fractured.

The process of metamorphism, which involves the transformation of pre-existing rocks due to changes in temperature, pressure, or mineral composition, causes the minerals within the rock to reorient themselves. This reorientation leads to the alignment of minerals, creating a parallel orientation of platy or elongated minerals within the rock.

Examples of foliated metamorphic rocks include slate, phyllite, schist, and gneiss. Slate, for instance, is derived from shale and is characterized by its fine-grained texture and well-defined cleavage, allowing it to break easily into thin sheets.

Phyllite, formed from slate, exhibits a slightly coarser texture and a glossy sheen due to the re-crystallization of its constituent minerals. Schist, a medium to coarse-grained rock, is characterized by its platy minerals like micas, which also contribute to its sheet-like breaking pattern. Lastly, gneiss, formed at even higher metamorphic grades, displays distinct banding due to the segregation of its minerals but may also break into sheets depending on the mineral alignment.

In summary, a metamorphic rock that breaks into sheets when broken is known as a foliated metamorphic rock. This unique property is a result of the alignment of minerals during the metamorphic process, creating distinct layers that allow the rock to fracture along these planes. Examples of foliated metamorphic rocks include slate, phyllite, schist, and gneiss, each exhibiting varying degrees of foliation and textural features due to different metamorphic conditions.

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Chlorine reacts with benzene to produce chlorobenzene and hydrogen chloride ch + c.h. → ch, ci + hci

a. determine the limited reactant if 45.0 g of benzene reacts with 450 g chlorine

b. what is the mass of the excess reactant?

c. what is the mass of chlorobenzene produced? -



7. nickel reacts with hydrochloric acid to produce nickel(ii) chloride and hydrogen ni + 2 hcl - nicl2 + h2

a. if 5.00 g of nickel is reacted with 2.50g of hci what is the limited reactant?

b. how much excess reactant will remain?

c. what mass of nickel(ii) chloride will be produced?​

Answers

6) The limiting reactant is benzene.

mass of excess chlorine is 409.1 g.mass of chlorobenzene produced is 64.85 g

7) Ni is the limiting reactant.

3.69 g of HCl remains unreacted.11.02 g of NiCl₂ will be produced

How to determine reactant amounts and products?

For the first reaction:

a) To determine the limiting reactant, compare the number of moles of each reactant with their stoichiometric coefficients, benzene:

Molar mass of benzene (C₆H₆) = 78.11 g/mol

Number of moles of benzene = 45.0 g / 78.11 g/mol = 0.5765 mol

Calculate the number of moles of chlorine:

Molar mass of chlorine (Cl₂) = 70.91 g/mol

Number of moles of chlorine = 450 g / 70.91 g/mol = 6.344 mol

The stoichiometric coefficient of benzene is 1 and the stoichiometric coefficient of chlorine is also 1. Therefore, the limiting reactant is benzene, as it produces fewer moles of product than the amount of chlorine available.

b) To calculate the mass of excess reactant, find out how much of the excess reactant is left after the reaction, determine the amount of chlorine that reacts:

From the balanced chemical equation, 1 mole of benzene reacts with 1 mole of chlorine to produce 1 mole of chlorobenzene and 1 mole of hydrogen chloride.

0.5765 mol of benzene reacts with 0.5765 mol of chlorine, according to the equation. Therefore, the amount of excess chlorine is:

6.344 mol - 0.5765 mol = 5.7675 mol

The mass of excess chlorine is:

5.7675 mol x 70.91 g/mol = 409.1 g

c) The molar mass of chlorobenzene (C₆H₅Cl) is 112.56 g/mol. Since 1 mole of benzene produces 1 mole of chlorobenzene, the number of moles of chlorobenzene produced is equal to the number of moles of benzene reacted:

0.5765 mol of chlorobenzene is produced.

The mass of chlorobenzene produced is:

0.5765 mol x 112.56 g/mol = 64.85 g

7. For the second reaction:

a. To determine the limiting reactant, we need to compare the number of moles of each reactant to the stoichiometric coefficients in the balanced chemical equation. The balanced equation is:

Ni + 2HCl → NiCl₂ + H₂

The molar masses of Ni and HCl are 58.69 g/mol and 36.46 g/mol, respectively. Using these values, calculate the number of moles of each reactant:

Number of moles of Ni = 5.00 g / 58.69 g/mol = 0.085 mol

Number of moles of HCl = 2.50 g / 36.46 g/mol = 0.069 mol

Since the stoichiometric coefficient of Ni is 1 and the stoichiometric coefficient of HCl is 2, Ni is the limiting reactant.

b. To calculate the amount of excess reactant, first determine the theoretical amount of HCl needed to react completely with the amount of Ni present. From the balanced equation, 1 mole of Ni reacts with 2 moles of HCl. Therefore, the theoretical amount of HCl needed is:

Theoretical amount of HCl = 0.085 mol Ni × (2 mol HCl/1 mol Ni) = 0.17 mol HCl

The actual amount of HCl present is 0.069 mol, so the amount of excess HCl is:

Excess HCl = 0.17 mol - 0.069 mol = 0.101 mol

Convert this amount to grams using the molar mass of HCl:

Excess HCl mass = 0.101 mol × 36.46 g/mol = 3.69 g HCl

Therefore, 3.69 g of HCl will remain unreacted.

c. From the balanced equation, we can see that 1 mole of Ni produces 1 mole of NiCl₂. Therefore, the amount of NiCl₂ produced is equal to the amount of Ni reacted, which is 0.085 mol. Convert this amount to grams using the molar mass of NiCl₂:

Mass of NiCl₂ produced = 0.085 mol × 129.60 g/mol = 11.02 g NiCl₂

Therefore, 11.02 g of NiCl₂ will be produced.

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A solution contains 1.14×10^-2 M calcium acetate and 1.03×10^-2 M barium nitrate. Solid ammonium sulfate is added slowly to this mixture. A. What is the formula of the substance that precipitates first? formula =? B. What is the concentration of sulfate ion when this precipitation first begins? [SO42-] = M

Answers

the concentration of sulfate ion when the precipitation of barium sulfate begins is 1.07×10^-8 M.

To determine the formula of the substance that precipitates first, we need to determine which combination of ions will form an insoluble compound first. We can do this by considering the solubility rules for common ionic compounds.

Calcium acetate dissociates into Ca2+ and CH3COO- ions in solution, while barium nitrate dissociates into Ba2+ and NO3- ions. Ammonium sulfate, when added to the solution, will dissociate into NH4+ and SO42- ions.

The possible combinations of ions that can form insoluble compounds are:

- Ca2+ and SO42- form CaSO4, which is insoluble
- Ba2+ and SO42- form BaSO4, which is insoluble

According to the solubility rules, calcium sulfate (CaSO4) is slightly soluble in water, while barium sulfate (BaSO4) is insoluble. Therefore, the substance that precipitates first is barium sulfate (BaSO4).

To determine the concentration of sulfate ion when the precipitation first begins, we need to calculate the product of the concentrations of barium ion and sulfate ion, and compare it to the solubility product constant (Ksp) for barium sulfate.

The balanced chemical equation for the precipitation reaction is:

Ba(NO3)2 + (NH4)2SO4 → BaSO4↓ + 2NH4NO3

The Ksp expression for barium sulfate is:

Ksp = [Ba2+][SO42-]

At the point when precipitation begins, the barium and sulfate ion concentrations will be equal to each other, so we can use the concentration of barium ion to calculate the concentration of sulfate ion:

[Ba2+] = 1.03×10^-2 M

Ksp for barium sulfate is 1.1×10^-10 at 25°C.

Therefore, we can calculate the concentration of sulfate ion:

Ksp = [Ba2+][SO42-]

1.1×10^-10 = (1.03×10^-2 M)([SO42-])

[SO42-] = 1.07×10^-8 M

Therefore, the concentration of sulfate ion when the precipitation of barium sulfate begins is 1.07×10^-8 M.
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you are separating anthracene from benzoic acid via an extraction between ethyl acetate and a basic aqueous solution in a separatory funnel. how would you recover the benzoic acid? group of answer choices collect the top layer, dry with na2so4, filter to remove the na2so4, and evaporate the solvent. collect the bottom layer, dry with na2so4, filter to remove the na2so4, and evaporate the solvent. collect the top layer and add hcl to precitipate the compound. collect the bottom layer and add hcl to precipitate the compound. collect the top layer and add naoh to precipitate the compound. collect the bottom layer and add naoh to precipitate the compound.

Answers

To recover the benzoic acid, collect the bottom layer, dry it with [tex]Na_{2} SO_{4}[/tex], filter to remove [tex]Na_{2} SO_{4}[/tex], and evaporate the solvent. The option 4  is correct.

This is because benzoic acid is a carboxylic acid and will react with the basic aqueous solution to form a water-soluble carboxylate salt. As a result, benzoic acid will be in the aqueous layer, which is the bottom layer. Ethyl acetate is the organic solvent and will form the top layer. By collecting the bottom aqueous layer, we can isolate the benzoic acid. Drying the solution with [tex]Na_{2} SO_{4}[/tex] removes any remaining water, and evaporating the solvent leaves behind the solid benzoic acid. Option 4 is correct answer.

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--The complete Question is, you are separating anthracene from benzoic acid via an extraction between ethyl acetate and a basic aqueous solution in a separatory funnel. how would you recover the benzoic acid? group of answer choices

1.  collect the top layer, dry with na2so4,

2. filter to remove the na2so4, and evaporate the solvent.

3. collect the bottom layer, dry with na2so4,

4.  collect the bottom layer and add hcl to precipitate the compound.

5. collect the top layer and add hcl to precitipate the compound.  --

locate structures of cellulose and amylose. a. what is the same about the two structures? b. what is different? c. what stabilizes these structures?

Answers

Cellulose and amylose are both polysaccharides, which are long chains of monosaccharide units (glucose units) joined together by glycosidic linkages.

The structure of cellulose is a linear chain of beta-D-glucose units joined by beta-1,4 glycosidic linkages. The repeating unit in cellulose is cellobiose, which is made up of two glucose units joined by a beta-1,4 glycosidic linkage. Cellulose molecules are held together by hydrogen bonds between adjacent chains to form strong, rigid fibers.

The structure of amylose is a linear chain of alpha-D-glucose units joined by alpha-1,4 glycosidic linkages. Unlike cellulose, amylose is unbranched. Amylose forms a spiral or helical structure, with the glucose units arranged in a tight coil held together by hydrogen bonds between adjacent glucose units.

Both cellulose and amylose are made up of glucose units and are held together by glycosidic linkages. The main difference is the type of glycosidic linkage between the glucose units - cellulose has beta-1,4 glycosidic linkages, while amylose has alpha-1,4 glycosidic linkages. Another difference is the way in which the glucose units are arranged - cellulose forms straight, rigid chains, while amylose forms a coiled or helical structure.

The stability of the structures of cellulose and amylose is due to the hydrogen bonds between the glucose units. These hydrogen bonds are formed between the hydroxyl groups on adjacent glucose units, which allows for strong, stable interactions between the chains.

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A gas is confined in a cylinder fitted with a movable piston. At 27°C, the gas occupies a volume of 2. 0 L under a pressure of 3. 0 atm. The gas is heated to 47 °C and compressed to 5. 0 atm. What volume does the gas occupy in its final state?


a. 0. 48 L


b. 2. 1 L


c. 1. 3 L


d. 0. 78

Answers

The gas occupies a volume of 1.28 L in its final state, which is option (c).

We can solve this problem using the combined gas law:

(P1V1/T1) = (P2V2/T2)

where P1, V1, and T1 are the initial pressure, volume, and temperature, respectively, and P2, V2, and T2 are the final pressure, volume, and temperature, respectively.

Plugging in the given values, we have:

(3.0 atm)(2.0 L)/(300 K) = (5.0 atm)(V2)/(320 K)

Solving for V2, we get:

V2 = (3.0 atm)(2.0 L)(320 K)/(5.0 atm)(300 K) = 1.28 L

Therefore, the gas occupies a volume of 1.28 L in its final state, which is option (c).

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Let's say that the ground water is contaminated with barium ions caused by a barium chloride spill. We could add sodium sulfate to cause barium sulfate to precipitate according to the following balanced equation: BaCl2 (aq) + Na2SO4 (aq) → BaSO4 (8) + 2 NaCl (aq). Aqueous ions are too small to filter, but a precipitate is not too small. Now, the BaSO4(s) can be filtered out of the water. Does this procedure remove all of the barium ions from the water? Explain. ​

Answers

This procedure of filtering barium sulfate out of water doesn't remove all of the barium ions from the water.

The balanced equation is

BaCl₂(aq) + K₂SO₄(aq) → BaSO₄(s) + 2KCl(aq)

The reaction consumes 1 mole of barium chloride. The reaction produces 1 mole of barium sulfate and 2 moles of potassium chloride. This type of reaction is an example of a double displacement reaction where mutual exchange of cation and anion takes place.

Since, the aqueous ions are too small to filter they are carried away with the filtrate solution, leaving behind the precipitate. So, Barium ions will still be present in the solution of water.

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An ecosystem is a term used by scientists to describe a specific level of organization in an environment. Which of the


following lists make up an ecosystem? (AKS 6a)


A soil, air, sunlight, rocks, rain


O B. Different populations of wildebeest


O C. Leaopards, giraffes, antelope, hyenas


OD. Rain, grass, worms, jackals, lions, sunlight

Answers

An ecosystem is an interconnected set of living and non-living components that interact and influence each other to form a functional unit.

Here all options are correct

As such, it is a complex system of energy and material exchanges between its components. A list of components that make up an ecosystem can include soil, air, sunlight, rocks, rain, and different populations of living organisms. The living components of an ecosystem include plants, animals, and microorganisms, such as worms and jackals. These organisms interact and depend on each other for survival, such as the leopards, giraffes, antelope, and hyenas that rely on the grass and other plants that are watered by the rain.

The sunlight provides energy for photosynthesis, which is essential for the production of food and oxygen. The rocks, soil, and air in the environment provide the physical structure that allows different organisms to interact and thrive. All of these components contribute to the health of an ecosystem, and each component plays an important role in maintaining the balance of the ecosystem.

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The element krypton is a gas that shows almost no chemical activity. To find another element with similar properties, the student should look on the periodic table of the elements for an element _____.




In the same group


I’m the same period


With the same net charge


With the same atomic mass

Answers

To find another element with similar properties, the student should look on the periodic table of the elements for an element In the same group.

The student should look for an element in the same group as krypton on the periodic table of elements. Elements in the same group have similar chemical properties because they have the same number of valence electrons, which determine how the element interacts with other elements.

Krypton is a noble gas located in group 18 (also known as group 8A) of the periodic table. Other elements in this group, such as neon, helium, and xenon, also have very low chemical reactivity due to their full valence electron shells.

Elements in the same period as krypton may have similar atomic properties, but they are not guaranteed to have similar chemical properties since their valence electron configurations differ.

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Bomb calorimetry is best for determining heat values. Because we cannot have a bomb calorimeter for every pair of students, we use what is readily avaliable. Why would two styrofoam cups be an economical way of determining these heat values and what is the of the major pitfalls of using this system? think about this being an open or closed system.

Answers

Using two styrofoam cups as a calorimeter is an economical way of determining heat values because styrofoam is a good insulator, which means that it prevents heat exchange between the system and the surroundings.

Therefore, it is a good choice for an adiabatic container. Additionally, styrofoam cups are readily available and disposable, making them a convenient and low-cost option for conducting experiments.

One of the major pitfalls of using this system is that it is not a completely closed system, which means that heat can still escape or enter from the surroundings, although at a slower rate than if the cups were made of a different material.

This can result in errors in the measurement of the heat change, as the actual heat change of the system may be different from the measured heat change. This is especially true for reactions that produce or consume gases, as these gases can escape from the cups and contribute to the heat exchange with the surroundings.

Therefore, it is important to minimize heat loss or gain to the surroundings as much as possible, such as by using a lid or insulating the cups further.

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