Answer: 17.49L
Explanation:
STP is 1atm and 273.15K
V=nRT/
V=(0.78)(0.0821)(273.15)/1
V= 17.49L
A balloon has a volume of 2. 32 liters at 24. 0°c. The balloon is heated to 48. 0°C. Calculate the new volume of the balloon.
To solve this problem, we need to use the combined gas law, which relates the pressure, volume, and temperature of a gas.
The combined gas law is expressed as:
(P1V1)/T1 = (P2V2)/T2
where P1 is the initial pressure, V1 is the initial volume, T1 is the initial temperature, P2 is the final pressure, V2 is the final volume, and T2 is the final temperature.
In this problem, we are given the initial volume V1 as 2.32 liters and the initial temperature T1 as 24.0°C. We need to find the final volume V2 when the temperature is raised to 48.0°C.
We can set up the equation as:
(P1V1)/T1 = (P2V2)/T2
Since the pressure remains constant, we can cancel it out:
V1/T1 = V2/T2
We can rearrange this equation to solve for V2:
V2 = (V1/T1) x T2
Substituting the given values, we get:
V2 = (2.32 L/297.15 K) x 321.15 K
V2 = 2.86 L
Therefore, the new volume of the balloon is 2.86 liters when heated to 48.0°C.
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A 31. 4 gg wafer of pure gold initially at 69. 7 ∘C∘C is submerged into 64. 1 gg of water at 26. 8 ∘C∘C in an insulated container. The specific heat capacity for gold is 0. 128 J/(g⋅∘C)J/(g⋅∘C) and the specific heat capacity for water is 4. 18 J/(g⋅∘C)J/(g⋅∘C)? Part A What is the final temperature of both substances at thermal equilibrium?
A 31.4 g gold wafer initially at 69.7°C is submerged into 64.1 g of water at 26.8°C. The final temperature at which both substances reach thermal equilibrium is 31.9°C.
The final temperature of both substances at thermal equilibrium needs to be determined.
We can use the principle of conservation of energy. Since the system is insulated, the heat lost by the gold will be equal to the heat gained by the water.
The heat lost by the gold can be calculated using:
Q = mcΔT
where Q is the heat lost, m is the mass of the gold, c is its specific heat capacity, and ΔT is the change in temperature.
Similarly, the heat gained by the water can be calculated using:
Q = mcΔT
where Q is the heat gained, m is the mass of the water, c is its specific heat capacity, and ΔT is the change in temperature.
Setting these two equations equal to each other and solving for the final temperature, we get:
[tex]m_{\text{gold}} \cdot c_{\text{gold}} \cdot (T_{\text{final}} - T_{\text{initial\_gold}}) = m_{\text{water}} \cdot c_{\text{water}} \cdot (T_{\text{final}} - T_{\text{initial\_water}})[/tex]
where [tex]$m_{\text{gold}}$[/tex] is the mass of the gold, [tex]c_{\text{gold}}[/tex] is its specific heat capacity, [tex]T_{\text{initial\_gold}}[/tex] is its initial temperature, [tex]m_{\text{water}}[/tex] is the mass of the water, [tex]$c_{\text{water}}$[/tex] is its specific heat capacity, and [tex]T_{\text{initial\_water}}[/tex] is its initial temperature.
Plugging in the values we get:
[tex]31.4 \, \text{g} \times 0.128 \, \text{J/(g} \cdot \text{°C)} \times (T_{\text{final}} - 69.7^\circ\text{C}) = 64.1 \, \text{g} \times 4.18 \, \text{J/(g} \cdot \text{°C)} \times (T_{\text{final}} - 26.8^\circ\text{C})[/tex]
Solving for [tex]$T_{\text{final}}$[/tex], we get:
[tex]T_{\text{final}} = \frac{(31.4 \, \text{g} \times 0.128 \, \text{J/(g} \cdot \text{°C)} \times 69.7^\circ\text{C}) + (64.1 \, \text{g} \times 4.18 \, \text{J/(g} \cdot \text{°C)} \times 26.8^\circ\text{C})}{(31.4 \, \text{g} \times 0.128 \, \text{J/(g} \cdot \text{°C)}) + (64.1 \, \text{g} \times 4.18 \, \text{J/(g} \cdot \text{°C)})}[/tex]
[tex]$T_{\text{final}}$[/tex] = 31.9°C
Therefore, the final temperature of both substances at thermal equilibrium is 31.9°C.
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2 MnI2 + 13 F2 - 2 MnF3 + 4 IF5
Write the conversion factor to use when converting moles of MnIz to moles of F2
The balanced chemical equation is:
2 MnI2 + 13 F2 → 2 MnF3 + 4 IF5
According to the stoichiometry of the reaction, for every 13 moles of F2 that react, 2 moles of MnI2 are consumed. Therefore, the conversion factor to use when converting moles of MnI2 to moles of F2 is:
13 moles F2 / 2 moles MnI2
This conversion factor can be used to convert moles of MnI2 to moles of F2 or vice versa, by multiplying the number of moles of the starting substance by the conversion factor.
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How many grams of calcium oxide will be produced in a closed vessel containing 20. 0 kg of calcium and 20. 0 kg of oxygen gas if the reaction goes to completion?
2Ca(s)+0 (g) 2CaO(s)
A total of 28,000 grams of calcium oxide will be produced.
To find out how many grams of calcium oxide will be produced in a closed vessel containing 20.0 kg of calcium and 20.0 kg of oxygen gas, follow these steps:
1. Convert the given masses into moles using the molar mass of each element:
- For calcium (Ca): 20,000 g / 40.08 g/mol ≈ 499 moles
- For oxygen (O2): 20,000 g / 32 g/mol ≈ 625 moles
2. Determine the limiting reactant using the stoichiometry of the balanced equation:
- The stoichiometric ratio of Ca to O2 is 2:1, so 625 moles of O2 would require 1,250 moles of Ca, but there are only 499 moles of Ca available. Therefore, calcium is the limiting reactant.
3. Calculate the moles of calcium oxide (CaO) produced using the stoichiometry of the balanced equation:
- The ratio of Ca to CaO is 1:1, so 499 moles of Ca will produce 499 moles of CaO.
4. Convert the moles of calcium oxide back to grams using the molar mass:
- The molar mass of CaO is 56.08 g/mol (40.08 g/mol for Ca + 16 g/mol for O). Therefore, 499 moles of CaO * 56.08 g/mol ≈ 28,000 grams of calcium oxide will be produced.
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calculate the molality of a solition with 85 g of KOH added to 590. g of water
The molality of the solution is 2.57 mol/kg.
To calculate the molality of a solution
We need to determine the number of moles of solute (in this case, KOH) dissolved in a specified mass of the solvent (in this case, water).
First, let's convert the given mass of KOH to moles:
molar mass of KOH = 56.11 g/mol
moles of KOH = mass of KOH / molar mass of KOH
moles of KOH = 85 g / 56.11 g/mol
moles of KOH = 1.515 mol
Next, we need to calculate the mass of the solvent (water) in kilograms:
mass of solvent = 590. g
mass of solvent in kg = mass of solvent / 1000
mass of solvent in kg = 590. g / 1000
mass of solvent in kg = 0.590 kg
Now we can use these values to calculate the molality of the solution:
molality = moles of solute / mass of solvent in kg
molality = 1.515 mol / 0.590 kg
molality = 2.57 mol/kg
Therefore, the molality of the solution is 2.57 mol/kg.
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Will award you points!
Read the chemical equation. N2 + 3H2 – 2NH3 Using the volume ratio, determine how many liters of NH3 is produced if 3. 6 liters of H2 reacts with an excess of N2, if all measurements are taken at the same temperature and pressure? 5. 4 liters 2. 4 liters 1. 8 liters 1. 2 liters
Using this volume ratio, we can determine that (b) 2.4 liters of ammonia are produced when 3.6 liters of hydrogen reacts with an excess of nitrogen.
The given chemical equation represents the reaction between nitrogen and hydrogen to produce ammonia. The balanced equation shows that for every 3 volumes of hydrogen, 2 volumes of ammonia are produced.
According to the balanced chemical equation N₂ + 3H₂ → 2NH₃, for every 3 volumes of H₂, 2 volumes of NH₃ are produced.
Therefore, if 3.6 liters of H₂ reacts, the amount of NH₃ produced can be calculated as follows:
3.6 L H₂ * (2 L NH₃ / 3 L H₂) = 2.4 L NH₃
Therefore, 2.4 liters of NH₃ would be produced if 3.6 liters of H₂ reacts with an excess of N₂. The correct answer is option (b) 2.4 liters.
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How many grams of protein are needed to produce 23,000 cal of energy? Every gram of protein can produce 17 KJ of energy
A total of 96,320 kJ / 17 kJ per gram of protein = 5,670 grams of protein.
To determine the grams of protein needed to produce 23,000 calories of energy, we need to convert the calories to kilojoules (kJ) and then divide by the energy produced by each gram of protein.
23,000 calories = 96,320 kJ (1 calorie = 4.184 kJ)
Each gram of protein produces 17 kJ of energy.
Protein is an important nutrient for our bodies, as it provides the building blocks for our muscles, bones, and other tissues. It also plays a role in many cellular functions and processes. One of the functions of protein is to provide energy for our bodies, although this is not its primary role.
When we eat protein, our bodies break it down into amino acids, which can then be used for various purposes. One of these purposes is to produce energy.
Every gram of protein contains 4 calories, or 17 kilojoules, of energy. This is less than the amount of energy provided by a gram of fat (9 calories or 37 kilojoules) or a gram of carbohydrate (4 calories or 17 kilojoules), but it is still significant.
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1. in a laboratory experiment, an undergraduate student collected a sample of ammonium
phosphate. if the sample contains 9.52 x 1025 molecules, how many grams of the sample did he
collected?
The student collected 2.63 x 10¹⁰ grams of ammonium phosphate.
To determine the mass of the sample collected, we need to know the molar mass of ammonium phosphate, which is (NH₄)₃PO₄. The molar mass of (NH₄)₃PO₄ can be calculated by adding the atomic masses of the constituent atoms:
Molar mass of (NH₄)₃PO₄ = (3 x molar mass of NH₄) + (1 x molar mass of PO₄)
= (3 x 18.04 g/mol) + (1 x 94.97 g/mol)
= 149.99 g/mol
The number of moles of (NH₄)₃PO₄ in the sample can be calculated by dividing the number of molecules by Avogadro's number (6.022 x 10²³):
Number of moles of (NH₄)₃PO₄ = 9.52 x 10²⁵ molecules / 6.022 x 10²³ molecules/mol
= 15.8 mol
Finally, we can calculate the mass of the sample using the formula:
Mass = Number of moles x Molar mass
= 15.8 mol x 149.99 g/mol
= 2.63 x 10¹⁰ g
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After 45 days a radioactive material has decayed 55. 1%, after an additional 45 days, what percent of the original amount will it have decayed to
The material has decayed to 37.2% of the original amount after 90 days (with an additional 45 days after decaying 55.1%).
The amount of radioactive material remaining after time t can be calculated using the formula:
[tex]N(t) = N0 * (1/2)^(t/T)[/tex]
where N0 is the initial amount, t is the time elapsed, and T is the half-life of the radioactive material.
In this problem, the initial amount of radioactive material has decayed by 55.1% after 45 days. This means that:
[tex]N(45) = N0 * (1 - 0.551) = 0.449 * N0[/tex]
After an additional 45 days, the total time elapsed is now 90 days. We can use the same formula to calculate the amount of radioactive material remaining after 90 days:
[tex]N(90) = N0 * (1/2)^(90/T)[/tex]
We can then use the two equations to solve for the percentage of the original amount that has decayed after 90 days:
[tex]N(90) = 0.449 * N0 * (1/2)^(90/T)0.449 = (1/2)^(45/T)[/tex]
Taking the natural logarithm of both sides:
[tex]ln(0.449) = ln(1/2)^(45/T)[/tex]
ln(0.449) = -(45/T) * ln(2)
T = -(45/ln(2)) * ln(0.449) = 86.5 days (to the nearest tenth)
Now that we know the half-life of the material, we can use the original formula to calculate the amount of material remaining after 90 days:
[tex]N(90) = N0 * (1/2)^(90/86.5) = 0.372 * N0[/tex]
Therefore, the material has decayed to 37.2% of the original amount after 90 days (with an additional 45 days after decaying 55.1%).
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A 0. 515 g sample of CaCl2 reacts with aqueous sodium phosphate to give 0. 484 g Ca3(PO4)2. Show the calculation for the theoretical yield of Ca3(PO4)2.
What is the percent yield of Ca3(PO4)2.
The percent yield of Ca₃(PO₄)2 is 100.6%. This means that the actual yield is slightly higher than the theoretical yield, which could be due to experimental error or incomplete reaction.
To calculate the theoretical yield of Ca₃(PO₄)2, we need to determine the limiting reagent in the reaction. We can do this by calculating the amount of Ca₃(PO₄)2 that can be produced from each reactant, using stoichiometry and the molar masses of the compounds.
The balanced chemical equation for the reaction is:
3 CaCl₂ + 2 Na₃PO₄ → Ca₃(PO₄)2 + 6 NaCl
The molar mass of CaCl₂ is 110.98 g/mol, and the molar mass of Ca₃(PO₄)2 is 310.18 g/mol.
First, we convert the mass of CaCl₂ to moles:
0.515 g CaCl₂ / 110.98 g/mol = 0.00464 mol CaCl₂
Next, we use stoichiometry to calculate the moles of Ca₃(PO₄)2 that can be produced from the CaCl₂:
0.00464 mol CaCl₂ × (1 mol Ca₃(PO₄)2 / 3 mol CaCl₂) = 0.00155 mol Ca₃(PO₄)2
Finally, we convert the moles of Ca₃(PO₄)2 to grams:
0.00155 mol Ca₃(PO₄)2 × 310.18 g/mol = 0.481 g Ca₃(PO₄)2 (theoretical yield)
Therefore, the theoretical yield of Ca₃(PO₄)2 is 0.481 g.
To calculate the percent yield, we use the formula:
percent yield = (actual yield / theoretical yield) × 100%
The actual yield is given as 0.484 g. Plugging in the values, we get:
percent yield = (0.484 g / 0.481 g) × 100% = 100.6%
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What is the name of this branched alkene? Please help me as fast as possible I need to study, please! ILL MARK AS BRAINLIEST PLEASE HELP MEE
The name of the branched alkene given in the question is:
6-ethyl-8-methyl-5-propyl-2-nonene or 6-ethyl-8-methyl-5-propylnon-2-ene
How do i determine the mane of the branched alkene?The naming of compound is obtained by the of IUPAC standard. This is illustrated below:
Identify the parent chain. In this case, the longest chain is carbon 9. Thus, the parent name is nonene.Identify the substituent groups attached. In this case the substituent groups attached are: CH₃, CH₂CH₃ and CH₂CH₂CH₃ Identify the position of the substituents by considering the double bond. In this case, the double bond is at carbon 2, CH₂CH₃ is located at carbon 6, CH₃ is located at carbon 8 and CH₂CH₂CH₃ is located at carbon 5.Combine the above to obtain the IUPAC name for the compound.Thus, the IUPAC name for the branched alkene is:
6-ethyl-8-methyl-5-propyl-2-nonene or 6-ethyl-8-methyl-5-propylnon-2-ene
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What quantity in moles of hydrogen gas at 150. 0 °C and 23. 3 atm would occupy a vessel of 8. 50 L?
Answer ASAP
The number of moles of hydrogen gas comes out to be 5.700 that can be calculated using the ideal gas equation.
Using ideal gas equation,
PV = nRT ......(1)
It is given that,
T = 150.0 °C
P = 23.3 atm
V = 8.50 L
To calculate the number of moles, substitute the known values in equation (1).
PV = nRT
23.3 atm x 8.50 L = n x 0.0821 L atm/mol/K x 423.15 K
n = (23.3 atm x 8.50 L) / (0.0821 L atm/mol/K x 423.15 K)
= 198.05 / 34.74 mole
= 5.700 moles
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Determine the mass of ammonium chloride, NH4Cl, required to prepare 0. 250 L of a 0. 35 M solution of ammonium chloride.
Answer: 4.7g NH4Cl
Explanation:
First we need to determine how many moles of NH4Cl we have:
0.250Lx0.35M= 0.0875moles
now we can multiply the molar mass of NH4Cl by how many moles we have
NH4Cl has a molar mass of 53.49g/mol
53.49 x 0.0875= 4.68g NH4Cl or 4.7g NH4Cl using 2 sig figs.
A sample of crushed rock is found to have 4. 81 x 10^21 atoms of gold, how many moles of hold are present in this sample?
The sample of crushed rock containing 4.81 x 10²¹ atoms of gold corresponds to 0.008 moles of gold.
The number of moles of gold in the sample of crushed rock can be calculated by dividing the total number of atoms of gold by Avogadro's number, which represents the number of particles in one mole of a substance.
First, we convert the given value of atoms of gold to moles by dividing by Avogadro's number (6.022 x 10²³ atoms per mole).
Number of moles of gold = 4.81 x 10²¹ atoms / 6.022 x 10²³ atoms/mol
Simplifying the calculation, we get:
Number of moles of gold = 0.00799 moles
Therefore, there are approximately 0.008 moles of gold present in the sample of crushed rock.
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Now you are ready to explain what happened when Lee mixed sodium and hydrogen chloride. Be sure to use key
concepts in your explanation and provide examples from the Sim or the token activity.
Answer the following question: How did sodium and hydrogen chloride change into two different substances?
pls help
When Lee mixed sodium and hydrogen chloride, a chemical reaction occurred. Sodium has a single valence electron, which it donates to hydrogen chloride, forming Na⁺ and Cl⁻ ions.
These ions then combine to form solid sodium chloride (NaCl) and hydrogen gas (H₂). This reaction is an example of a redox reaction, where the sodium undergoes oxidation and the hydrogen chloride undergoes reduction.
In the simulation or token activity, the reaction can be represented by the following equation:
2 Na + 2 HCl → 2 NaCl + H₂
Thus, the sodium and hydrogen chloride changed into two different substances, solid sodium chloride and gaseous hydrogen, as a result of a chemical reaction involving the transfer of electrons.
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Given the equation: 2C2H2 + 5O2 → 4CO2 + 2H2O How many grams of C2H2 are required to react completely with 2. 0 mole of O2?
20.8 grams of C2H2 are required to react completely with 2.0 moles of O2.
The balanced chemical equation is: [tex]2C2H2 + 5O2 → 4CO2 + 2H2O[/tex]
The stoichiometry of the balanced equation shows that 2 moles of C2H2 react with 5 moles of O2 to produce 4 moles of CO2 and 2 moles of H2O.
Therefore, the mole ratio of C2H2 to O2 is 2:5.
If 2.0 moles of O2 are completely reacted, then the required moles of C2H2 can be calculated as follows:
2.0 mol O2 x (2 mol C2H2/5 mol O2) = 0.8 mol C2H2
Now, we can use the molar mass of C2H2 to calculate the mass required:
0.8 mol C2H2 x 26.04 g/mol = 20.8 g C2H2
Therefore, 20.8 grams of C2H2 are required to react completely with 2.0 moles of O2.
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You are given 10. 34 grams of C7H14O7. How many moles of the compound do you have?
There are 0.0492 moles of the compound C7H14O7 when given 10.34 grams.
To determine how many moles of the compound C7H14O7 you have when given 10.34 grams, you need to follow these steps:
1. Calculate the molar mass of the compound C7H14O7:
- For carbon (C), there are 7 atoms, each with a molar mass of 12.01 g/mol.
- For hydrogen (H), there are 14 atoms, each with a molar mass of 1.01 g/mol.
- For oxygen (O), there are 7 atoms, each with a molar mass of 16.00 g/mol.
2. Add up the molar masses:
- Molar mass of C7H14O7 = (7 * 12.01) + (14 * 1.01) + (7 * 16.00) = 84.07 + 14.14 + 112.00 = 210.21 g/mol.
3. Use the formula to convert grams to moles:
- Moles = mass (grams) / molar mass (g/mol)
4. Plug in the values and solve for moles:
- Moles of C7H14O7 = 10.34 grams / 210.21 g/mol = 0.0492 moles.
So, you have 0.0492 moles of the compound C7H14O7 when given 10.34 grams.
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If the solubility of CO2 is 0. 348 g/100 ml water at 101. 3 kPa, calculate the solubility of CO2 in water at a pressure of 263. 4 kPa. Assume the temperature is constant at 0°C
The solubility of CO₂ in water at 263.4 kPa is 1.064 g/100 ml water.
We can use Henry's law to calculate the solubility of CO₂ in water at a different pressure. Henry's law states that the amount of gas dissolved in a liquid is directly proportional to the partial pressure of the gas above the liquid. Thus, we can set up the following equation:
(Solubility at new pressure) / (Solubility at reference pressure) = (Partial pressure of gas at new pressure) / (Partial pressure of gas at reference pressure)We are given the solubility of CO₂ at a reference pressure of 101.3 kPa, which is 0.348 g/100 ml water. We want to find the solubility at a new pressure of 263.4 kPa. We can rearrange the equation above to solve for the solubility at the new pressure:
(Solubility at new pressure) = (Partial pressure of gas at new pressure) x (Solubility at reference pressure) / (Partial pressure of gas at reference pressure)We know that the temperature is constant at 0°C, so we can assume that the solubility is directly proportional to the partial pressure. Thus, we can set up a ratio:
(Solubility at new pressure) / (Solubility at reference pressure) = (Partial pressure of gas at new pressure) / (Partial pressure of gas at reference pressure)Plugging in the given values, we get:
(Solubility at new pressure) / (0.348 g/100 ml) = (263.4 kPa) / (101.3 kPa)Solving for the solubility at the new pressure, we get:
Solubility at new pressure = (263.4 kPa) / (101.3 kPa) x (0.348 g/100 ml)Solubility at new pressure = 1.064 g/100 mlTherefore, the solubility of CO₂ in water at a pressure of 263.4 kPa is 1.064 g/100 ml water.
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which of the following transitions within an atom is not possible? group of answer choices an electron begins in an excited state and then gains enough energy to jump to the ground state. an electron begins in the ground state and then gains enough energy to jump to an excited state. an electron begins in the ground state and then gains enough energy to become ionized. an electron begins in an excited state and then gains enough energy to become ionized.
The transition within an atom that is not possible is an electron begins in an excited state and then gains enough energy to become ionized. Option D is correct.
An excited electron already has excess energy above its ground state energy level. If it gains more energy, it can transition to a higher energy level or even become ionized by being ejected from the atom. However, an electron that has already been excited and has reached its highest energy level cannot gain any more energy from the atom and therefore cannot be ionized further.
Once an electron is in its highest energy level, it is said to be in the ionization continuum and cannot be further excited or ionized by the atom. Therefore, the transition of an electron beginning in an excited state and then gaining enough energy to become ionized is not possible. On the other hand, the other three transitions listed are possible and occur naturally in many physical and chemical processes, such as atomic emission and absorption spectra. Option D is correct.
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A person uses 500kcal of energy to run a race. convert the energy used for the race to the following energy units:
joules(j)
kilojoules (kj)
1 calorie= 4.184 joules
Answer: Look at the image I attached - I drew what you should write.
Put these atoms in order from most positive overall charge to least positive overall charge.
Atom B: 24 protons, 19 electrons
Atom A: 14 protons, 16 electrons
Atom R: 26 protons, 24 electrons
Atom P: 8 protons, 11 electrons PLEASE HELP FAST
The pressure of 10 l of a gas is 1800 mmhg. how many l would this same gas occupy at a final pressure of 200 mmhg, if the amount of gas does not change?
The gas would occupy 90 L at a final pressure of 200 mmHg if the amount of gas does not change.
To determine how many liters this gas would occupy at a final pressure of 200 mmHg, we can use Boyle's Law. Boyle's Law states that the product of the initial pressure and volume of a gas is equal to the product of the final pressure and volume if the temperature and amount of gas remain constant. The formula for Boyle's Law is:
P₁ × V₁ = P₂ × V₂
Where P₁ is the initial pressure (1800 mmHg), V₁ is the initial volume (10 L), P₂ is the final pressure (200 mmHg), and V₂ is the final volume we need to find.
Rearranging the formula to find V₂:
V₂ = (P₁ × V₁) / P₂
Substituting the values:
V₂ = (1800 mmHg × 10 L) / 200 mmHg
V₂ = 18000 L·mmHg / 200 mmHg
V₂ = 90 L
So, this gas would occupy 90 L at a final pressure of 200 mmHg if the amount of gas does not change.
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Based on the equation and the enthalpies of formation shown, what is the AH of the reaction? A.-5335.8 B.-2815.8 C. -580.7 D.580.7
The AH of the reaction is given as C. -571.6 kJ/mol
How to solveThe enthalpy change of a reaction (∆H) can be calculated using the formula:
∆H = Σn ∆Hf°(products) - Σn ∆Hf°(reactants),
where n is the stoichiometric coefficient of each substance in the balanced equation.
If we apply this to the reaction of H2(g) and O2(g) forming H2O(l), we get ∆H = -571.6 kJ/mol, where ∆Hf°(H2(g)) = 0 kJ/mol and ∆Hf°(O2(g)) = 0 kJ/mol.
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Given the following reaction equation and the enthalpies of formation (∆Hf°) for each substance, what is the ∆H of the reaction?
2 H2(g) + O2(g) → 2 H2O(l)
∆Hf°(H2(g)) = 0 kJ/mol
∆Hf°(O2(g)) = 0 kJ/mol
∆Hf°(H2O(l)) = -285.8 kJ/mol
A. -5335.8 kJ/mol
B. -2815.8 kJ/mol
C. -571.6 kJ/mol
D. 580.7 kJ/mol
Consider a gas cylinder containing 0. 100 moles of an ideal gas in a
volume of 1. 00 L with a pressure of 1. 00 atm. The cylinder is
surrounded by a constant temperature bath at 298. 0 K. With an
external pressure of 5. 00 atm, the cylinder is compressed to 0. 500 L.
Calculate the q(gas) in J for this compression process.
According to the question the q(gas) in J for this compression process is 0J.
What is gas ?Gas is a state of matter in which particles are spread out and have enough energy to move around freely. Gas is composed of molecules in constant motion and takes the shape and volume of its container. Gas can be either naturally occurring or man-made and is found in the atmosphere. Examples of naturally occurring gases include oxygen, nitrogen, and carbon dioxide. Man-made gases include helium, chlorine, and hydrogen. Gas is often used as a source of energy and is burned to produce heat, which can be used to power machines and vehicles. Gas is also used in many industries, such as in the production of chemicals and plastics.
In this case, n = 0.100 moles,
[tex]C_v[/tex] = (3/2)R = (3/2)(8.314 J/mol K) = 12.471 J/mol K, and
T₁ = 298.0 K,
T2 = 298.0 K.
Therefore, q(gas)
= nCv (T₂- T₁)
= 0.100 mol × 12.471 J/mol K × (298.0 K - 298.0 K)
= 0 J.
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-in your own words explain the steps involved to write the name (Sodium Chloride) of a chemical formula let’s include at least three steps and use your notes)?
-In your own words explain the steps involved to write the chemical formula (NaCl) from the name (must
include at least 3 steps and use your notes).
To write the name "Sodium Chloride" from a chemical formula, follow these steps:
1. Identify the elements present in the formula: In this case, the formula is "NaCl," which contains the elements Sodium (Na) and Chlorine (Cl).
2. Write the name of the metal (cation) first: In this case, the metal is Sodium (Na). So, the first part of the name is "Sodium."
3. Write the name of the non-metal (anion) with the suffix "-ide": The non-metal is Chlorine (Cl), so the name changes to "Chloride."
4. Combine the names of the metal and non-metal: The final name is "Sodium Chloride."
To write the chemical formula "NaCl" from the name "Sodium Chloride," follow these steps:
1. Identify the elements from the name: In this case, the name is "Sodium Chloride," which contains the elements Sodium (Na) and Chlorine (Cl).
2. Determine the charges of the elements: Sodium has a +1 charge as a cation, and Chlorine has a -1 charge as an anion.
3. Balance the charges to form a neutral compound: Since the charges are +1 and -1, they balance out, and you don't need to add any subscripts.
4. Write the chemical formula using the element symbols: Combine the symbols to form the formula "NaCl."
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11. The latent heat of fusion of water is 334 J/g. The latent heat of
vaporization of water is 2257 J/g. The specific heat capacity of
water is 4.186 J/g °C How much heat is needed to evaporate 500
og of ice that starts at 0°C ? Hint: Sum of AQS...Q1: Solid to Liquid;
Q2 of Liquid water; Q3 Liquid to Gas
The amount heat needed to evaporate 500 g of ice that starts at 0 °C is 1504800 J
How do i determine the heat needed to evaporate the ice?First, we shall determine the heat needed to melt the ice. Details below:
Mass of ice (m) = 500 gLatent heat of fusion (ΔHf) = 334 J/gHeat (H₁) =?H₁ = m × ΔHf
H₁ = 500 × 334
H₁ = 167000 J
Next, we shall determine the heat required to change the water from 0 °C to 100°C. Details below:
Mass of water (M) = 500 gInitial temperature of water (T₁) = 0 °CFinal temperature of water (T₂) = 100 °CChange in temperature of water (ΔT) = 100 - 0 = 100°CSpecific heat capacity of water (C) = 4.186 J/gºC Heat (H₂) =?H₂ = MCΔT
H₂ = 500 × 4.186 × 100
H₂ = 209300 J
Next, we shall determine the heat required to vaporize the water. Details below:
Mass of water (M) = 500 g Heat of Vaporization (ΔHv) = 2257 J/gHeat (H₃) =?H₃ = m × ΔHv
H₃ = 500 × 2257
H₃ = 1128500 J
Finally, we shall determine the heat required to evaporate the ice. Details below:
Heat required to melt the ice (H₁) = 167000 JHeat required to change the steam from 0 °C to 100 °C(H₂) = 209300 JHeat required to vaporize the water (H₃) = 1128500 JTotal heat required (Q) =?Q = H₁ + H₂ + H₃
Q = 167000 + 209300 + 1128500
Total heat required = 1504800 J
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To begin the experiment, 1. 65g of methane CH4 is burned in a bomb calorimeter containing 1000 grams of water. The initial temperature of water is 18. 98oC. The specific heat of water is 4. 184 J/g oC. The heat capacity of the calorimeter is 615 J/ oC. After the reaction the final temperature of the water is 36. 38oC.
5. The total heat absorbed by the water and the calorimeter can be by adding the heat calculated in steps 3 and 4. The amount of heat released by the reaction is equal to the amount of heat absorbed with the negative sign as this is an exothermic reaction. (2pts)
a. Using the formula ΔH = - (qcal + qwater ) , calculate the total heat of combustion. Show your work.
b. Convert heat of combustion (answer from part a) from joules to kilojoules. Show your work. 6. Evaluate the information contained in this calculation and complete the following sentence: (2pts) This calculation shows that burning _______ grams of methane [TAKES IN] / [GIVES OFF] energy (Choose one).
7. The molar mass of methane is 16. 04 g/mol. Calculate the number of moles of methane burned in the experiment. Show your work. (2pts)
8. What is the experimental molar heat of combustion in KJ/mol? Show your work. (2pts)
9. The accepted value for the heat of combustion of methane is -890 KJ/mol. Explain why the experimental data might differ from the theoretical value in 2-3 complete sentences. (2pts)
10. Given the formula: % error= |(theoretical value - experimental value)/theoretical value)| x 100 Calculate the percent error. Show your work. (2pts)
The heat of combustion of methane is -802.41 kJ/mol, indicating that the combustion of methane is an exothermic reaction that releases heat energy.
To calculate the heat of combustion of methane, we can use formula:
q = (m_water x C_water x ΔT) + (C_cal x ΔT)
Plugging in the values, we get:
q = (1000 g x 4.184 J/g°C x 17.4°C) + (615 J/°C x 17.4°C)
q = 21997.45 J
Next, we need to calculate the number of moles of methane burned:
moles [tex]CH_4[/tex] = mass [tex]CH_4[/tex] / molar mass [tex]CH_4[/tex]
moles [tex]CH_4[/tex] = 65 g / 16.04 g/mol
moles [tex]CH_4[/tex] = 4.05 mol
Finally, we can calculate the heat of combustion per mole of methane:
ΔH = q / moles [tex]CH_4[/tex]
ΔH = -802.41 kJ/mol
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--The complete Question is, 1. 65g of methane CH4 is burned in a bomb calorimeter containing 1000 grams of water. The initial temperature of water is 18. 98oC. The specific heat of water is 4. 184 J/g oC. The heat capacity of the calorimeter is 615 J/ oC. After the reaction the final temperature of the water is 36. 38oC.--
Help what’s the answer?
3MnO₂ + 4Al → 2Al₂O₃ + 3Mn
20.52 grams will react with 49.7 grams of MnO₂How to balance a chemical reaction?A chemical equation is said to be balanced when the number of atoms of each element on both sides of the equation are the same.
According to this question, manganese oxide reacts with aluminum to produce aluminum oxide and manganese. The balanced equation is given above.
49.7 grams of MnO₂ is equivalent to 0.57 moles
If 3 moles of MnO₂ reacts with 4moles of Al, then 0.57 moles of MnO₂ will react with 0.76 moles of Al.
0.76 moles of Al is equivalent to 20.52 grams of Al.
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16. If the difference in electro-negativities of the combining atoms is zero, then the bond formed is a
(a) covalent bond
(b) electrovalent bond
(c) non-polar covalent bond
(d) polar covalent bond
Find the percent composition of a sample containing 1.29 grams of carbon and
1.71 grams of oxygen.
The percent composition of the sample containing 1.29 grams of carbon and 1.71 grams of oxygen is 43% carbon and 57% oxygen.
The percent composition of a sample can be calculated by dividing the mass of each element in the sample by the total mass of the sample and then multiplying by 100%.
To find the percent composition of a sample containing 1.29 grams of carbon and 1.71 grams of oxygen, we need to calculate the total mass of the sample first.
Total mass of the sample = mass of carbon + mass of oxygen
= 1.29 grams + 1.71 grams
= 3 grams
Now, we can calculate the percent composition of carbon and oxygen in the sample:
Percent composition of oxygen = (mass of oxygen / total mass of the sample) x 100%
= (1.71 grams / 3 grams) x 100%
= 57%
Percent composition of carbon = (mass of carbon / total mass of the sample) x 100%
=(1.29 grams / 3 grams) x 100%
= 43%
Therefore, the sample contains 43% carbon and 57% oxygen by mass.
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