Since the solubility of Ag₂S is 7.43×10⁻¹⁵ g/L, the Ksp value for silver sulfide is approximately 1.07×10⁻⁴⁹.
To calculate the Ksp (solubility product constant) for silver sulfide (Ag2S), first, we need to write the balanced dissolution reaction and expression for the Ksp.
Dissolution reaction: Ag₂S(s) ↔ 2Ag⁺(aq) + S₂⁻(aq)
Ksp expression: Ksp = [Ag⁺]²[S₂⁻]
Given solubility of Ag₂S is 7.43×10⁻¹⁵ g/L, we need to convert this to molar solubility (M).
Molar mass of Ag₂S = (2 x 107.87) + 32.06 = 247.8 g/mol
Molar solubility (s) = (7.43×10⁻¹⁵ g/L) / (247.8 g/mol) = 2.99×10⁻¹⁷ M
In the dissolution reaction, 1 mole of Ag₂S produces 2 moles of Ag⁺ and 1 mole of S₂⁻. Therefore:
[Ag⁺] = 2s = 2(2.99×10⁻¹⁷) = 5.98×10⁻¹⁷ M
[S₂⁻] = s = 2.99×10⁻¹⁷ M
Now we can plug these concentrations into the Ksp expression:
Ksp = (5.98×10⁻¹⁷)²(2.99×10⁻¹⁷) = 1.07×10⁻⁴⁹
So, the Ksp value for silver sulfide is approximately 1.07×10⁻⁴⁹.
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What Phase Change does theLetters A, B, C represent Gas B Liquid A Solid C Gas
Matter exists in three different physical states, namely solid, liquid and gaseous states. The three states of matter mainly differ in the arrangement of particles and the force of attraction among the constituent particles.
It has been observed that the matter exists in nature in different forms. Some substances are rigid and have a fixed shape, some substances can flow and can take the shape of the container whereas some other forms do not have any shape or size.
Here A represents Liquid to solid change, B represents Gas to liquid change and C represents Solid to gas change.
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Phosphoric acid reacts with strontium hydroxide to produce a precipitate. What mass of precipitate is produced when 25.0 mL of 0.750M strontium hydroxide react with 45.0 mL of 0.500M phosphoric acid? What volume of a 1.50M strontium hydroxide solution is required to completely neutralize 50.0 mL of a 0.675M phosphoric acid solution?
The balanced chemical equation for the reaction between phosphoric acid (H3PO4) and strontium hydroxide (Sr(OH)2) is:
2 H3PO4 + 3 Sr(OH)2 → Sr3(PO4)2 + 6 H2O
To determine the mass of precipitate produced when 25.0 mL of 0.750 M strontium hydroxide reacts with 45.0 mL of 0.500 M phosphoric acid, we need to determine which reactant is limiting and use stoichiometry to find the amount of product produced.
First, we can calculate the moles of each reactant:
moles of Sr(OH)2 = (0.750 mol/L) x (0.0250 L) = 0.0188 mol
moles of H3PO4 = (0.500 mol/L) x (0.0450 L) = 0.0225 mol
Since there are more moles of H3PO4 than Sr(OH)2, Sr(OH)2 is the limiting reactant. Using the balanced chemical equation, we can calculate the moles of Sr3(PO4)2 produced:
moles of Sr3(PO4)2 = (0.0188 mol Sr(OH)2) x (1 mol Sr3(PO4)2 / 3 mol Sr(OH)2) = 0.00627 mol
Finally, we can use the molar mass of Sr3(PO4)2 to calculate the mass of precipitate produced:
mass of Sr3(PO4)2 = (0.00627 mol) x (452.12 g/mol) = 2.84 g
Therefore, the mass of precipitate produced is 2.84 g.
To determine the volume of a 1.50 M strontium hydroxide solution required to completely neutralize 50.0 mL of a 0.675 M phosphoric acid solution, we can use stoichiometry and the balanced chemical equation:
2 H3PO4 + 3 Sr(OH)2 → Sr3(PO4)2 + 6 H2O
From the equation, we can see that 2 moles of H3PO4 react with 3 moles of Sr(OH)2, so the mole ratio of H3PO4 to Sr(OH)2 is 2:3.
First, we can calculate the moles of H3PO4 in 50.0 mL of 0.675 M solution:
moles of H3PO4 = (0.675 mol/L) x (0.0500 L) = 0.0338 mol
Using the mole ratio, we can calculate the moles of Sr(OH)2 required to react with all of the H3PO4:
moles of Sr(OH)2 = (0.0338 mol H3PO4) x (3 mol Sr(OH)2 / 2 mol H3PO4) = 0.0507 mol
Finally, we can calculate the volume of 1.50 M Sr(OH)2 required to provide this many moles:
volume of Sr(OH)2 = (0.0507 mol) / (1.50 mol/L) = 0.0338 L or 33.8 mL
Therefore, 33.8 mL of 1.50 M Sr(OH)2 solution is required to completely neutralize 50.0 mL of 0.675 M phosphoric acid solution.
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the density of a mixture of n2 and xe is 1.562 g/l at stp. what is the mole fraction of each gas?
The mole fraction of N2 in the mixture is 0.982, and the mole fraction of Xe is 0.018.
To determine the mole fraction of each gas in the mixture of N2 and Xe, we need to use the ideal gas law equation: PV = nRT.
At STP, P = 1 atm and T = 273 K. The density of the mixture is 1.562 g/L, which can be converted to g/mL by dividing by 1000.
So, the density of the mixture is 0.001562 g/mL. We can use this value to calculate the molar concentration (M) of the mixture as follows:
M = density / molar mass
The molar mass of the mixture can be calculated as the weighted average of the molar masses of N2 and Xe, based on their mole fractions.
Let x be the mole fraction of N2 and (1-x) be the mole fraction of Xe. Then, the molar mass of the mixture is:
Mmixture = x*M(N2) + (1-x)*M(Xe)
where M(N2) = 28 g/mol and M(Xe) = 131.29 g/mol.
Substituting the values, we get:
0.001562 g/mL / Mmixture = x*28 g/mol + (1-x)*131.29 g/mol
Solving for x, we get:
x = 0.982
So, the mole fraction of N2 in the mixture is 0.982, and the mole fraction of Xe is 0.018.
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which salts will be more soluble in an acidic solution than in pure water? baso3 pbcl2 caso4 ni(oh)2 csclo4
Out of the given salts, pbcl2 and ni(oh)2 will be more soluble in an acidic solution than in pure water. This is because they are insoluble in pure water but can form soluble complexes with hydrogen ions in an acidic solution.
The other salts, baso3, caso4, and csclo4, are already soluble in pure water and their solubility will not be significantly affected by the presence of acid. Salts that will be more soluble in an acidic solution than in pure water are those that react with the acidic protons (H+) to form a more soluble product. In the given list, BaSO3 (barium sulfite) and PbCl2 (lead(II) chloride) will be more soluble in an acidic solution because the acidic protons react with the sulfite and chloride ions, respectively, forming more soluble products.
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what is the iupac name of the following compound? 4-tert-butyl-3-chlorophenol ortho-tert-butylchlorophenol 4-tert-butyl-5-chlorophenol 2-tert-butyl-meta-chlorophenol
The correct IUPAC name for the given compound is 2-tert-butyl-3-chlorophenol.
The compound has a phenol ring substituted with a tert-butyl group at the second carbon atom and a chlorine atom at the third carbon atom.
According to the IUPAC nomenclature rules, we should first number the carbon atoms on the ring so that the substituents have the lowest possible locants. Since the tert-butyl group is at the second carbon atom and the chlorine atom is at the third carbon atom, we number the ring in such a way that the tert-butyl group gets the lower locant, and the chlorine atom gets the higher locant.
Thus, the compound is named as 2-tert-butyl-3-chlorophenol.
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What product from reaction The basic hydrolysis of a nitrile yields first an amide and then a carboxylic acid salt plus ammonia or an amine.?
The basic hydrolysis of a nitrile yields an amide and then a carboxylic acid salt plus ammonia or an amine.
The first product formed is an amide from the hydrolysis of nitrile. The amide is formed as an intermediate product, and it can be further hydrolyzed under basic conditions to form a carboxylic acid salt (or carboxylate) and either ammonia (NH₃) or an amine (R-NH₂). The final products of the reaction depend on the conditions used and the nature of the nitrile substrate.
The overall reaction can be represented as follows:
R-CN + 2H₂O + OH- → R-COONa + NH₃ (or R-NH₂)
where R is an organic group attached to the nitrile functional group (-CN).
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is the sign of δs° obtained (question 3b) consistent with the expectations of dissolving a salt in water?
The obtained negative δs° sign in question 3b is consistent with the expected behavior of salt dissolution in water, which is an exothermic process releasing energy due to the hydration of ions by water molecules.
Yes, the sign of δs° obtained in question 3b is consistent with the expectations of dissolving a salt in water. When a salt dissolves in water, the process is exothermic, meaning it releases heat into the surrounding environment. This is because the salt ions are surrounded by water molecules, which form hydration shells around the ions and release energy as they do so. This release of energy results in a negative value for δs°, which is exactly what was obtained in question 3b. Therefore, the sign of δs° is consistent with the expected behavior of salt dissolution in water.
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Which of the following statements is(are) true? Correct the false statements.
a. When a base is dissolved in water, the lowest possible pH of the solution is 7.0.
b. When an acid is dissolved in water, the lowest possible pH is 0.
c. A strong acid solution will have a lower pH than a weak acid solution.
d. A 0.0010-M Ba(OH)2 solution has a pOH that is twice the pOH value of a 0.0010-M KOH solution
The statement "When a base is dissolved in water, the lowest possible pH of the solution is 7.0" is false; the statement "When an acid is dissolved in water, the lowest possible pH is 0" is true; the statement "A strong acid solution will have a lower pH than a weak acid solution" is true; and, the statement "A 0.0010-M Ba(OH)2 solution has a pOH that is twice the pOH value of a 0.0010-M KOH solution" is false.
a. False. Correction: When a base is dissolved in water, the pH of the solution is greater than 7.0.
b. True. If an acid is dissolved in H20, then the lowest pH possible is 0.
c. True. When two solutions, one being a strong acid solution and the other being a weak acid solution are compared, the pH of the strong acid will be lower than the pH of the strong acid.
d. False. Correction: A 0.0010-M Ba(OH)2 solution has a pOH that is half the pOH value of a 0.0010-M KOH solution, because Ba(OH)2 is a strong base and releases two hydroxide ions per molecule, while KOH is a strong base that releases one hydroxide ion per molecule.
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the ksp of ca(oh)2 is 5.741 × 10–5 at 25 °c. what is the concentration of oh–(aq) in a saturated solution of ca(oh)2(aq)?
The concentration of OH⁻(aq) in a saturated solution of Ca(OH)₂(aq) is approximately 2.78 × 10⁻² M.
To find the concentration of OH⁻(aq) in a saturated solution of Ca(OH)₂(aq), we can set up an equation using the solubility product constant (Ksp) expression.
Ksp = [Ca²⁺][OH⁻]²
Since Ca(OH)2 dissociates into 1 Ca²⁺ and 2 OH⁻ ions, let the concentration of Ca²⁺ be x and the concentration of OH⁻ be 2x. Now we can substitute these values into the Ksp expression:
5.741 × 10⁻⁵ = [x][(2x)²]
Solve for x (which represents [Ca²⁺]):
x ≈ 1.39 × 10⁻² M
Now, find the concentration of OH⁻:
[OH⁻] = 2x ≈ 2(1.39 × 10⁻) = 2.78 × 10⁻² M
Therefore, in a saturated solution of Ca(OH)₂(aq), the concentration of OH⁻(aq) at 25°C is approximately 2.78 × 10⁻² M.
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What is the formula for pentaphosphorus tetrasulfide
Answer:
P5S4
Explanation:
Penta means 5 and tetra means 4, therefore P5S4
Given the values of ΔH∘rxn, ΔS∘rxn, and T below, determine ΔSuniv.A. ΔH∘rxn= 84 kJ , ΔSrxn= 144 J/K , T= 300 KExpress your answer using two significant figures.
The value of ΔSuniv is the change in entropy of the universe, which is a measure of the degree of disorder or randomness that occurs during a chemical or physical process. So ΔSuniv = -127 J/K
The calculation of ΔSuniv involves using the equation ΔSuniv = ΔSsys - (ΔHsys / T), where ΔSsys is the change in entropy of the system and ΔHsys is the change in enthalpy of the given system. Plugging in the given values and converting ΔH∘rxn to J gives
ΔSuniv = (144 J/K) - (84,000 J / 300 K) = -127 J/K.The negative value of ΔSuniv indicates that the process is not spontaneous at the given temperature and pressure. Conversely, a negative value of ΔSuniv indicates that a process decreases the degree of disorder in the universe, which means that it is non-spontaneous under the given conditions.
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1) Carbon-14 is formed as the decay product of Nitrogen-15, which was formed when a cosmic ray bombards the N-15.
What is the particle equivalent of the cosmic ray involved in this decay process?
2) Carbon-14 get locked in organic material through this process.
3) How many half-lives of Carbon-14 decay will leave behind approximately 1/8 of the original mass of Carbon-14?
4) Using the equation for radioactive decay, if you start with one gram of radioactive substance that has a half-life of 24,500 years, how many years will it take for the substance to decay to 0.8 grams?
The cosmic ray involved in the decay process of Nitrogen-15 to form Carbon is a high-energy proton. , Carbon-14 gets locked in organic material through the process of photosynthesis,
where plants take in carbon dioxide from the atmosphere, including the Carbon-14 isotope, and incorporate it into their tissues. Animals then eat the plants, incorporating Carbon-14 into their own tissues.
Carbon has a half-life of approximately 5,700 years. To determine how many half-lives are needed to leave behind approximately 1/8 of the original mass, we can use the formula:
N = (1/2)^n * N0
where N is the final mass, N0 is the initial mass, and n is the number of half-lives.
Setting N = 1/8 and N0 = 1, we get:
1/8 = (1/2)^n
Taking the logarithm of both sides, we get:
n = log(1/8) / log(1/2) = 3
Therefore, it would take three half-lives of Carbon-14 decay to leave behind approximately 1/8 of the original mass.
The equation for radioactive decay is given by:
N(t) = N0 * e^(-kt)
where N(t) is the amount of radioactive substance remaining at time t, N0 is the initial amount, k is the decay constant, and e is the base of the natural logarithm.
The half-life of the substance is related to the decay constant by the equation:
k = ln(2) / t1/2
where t1/2 is the half-life.
Substituting the given values, we get:
k = ln(2) / 24500 = 2.83 x 10^-5 / year
To find the time it takes for the substance to decay to 0.8 grams, we can use the equation:
0.8 = 1 * e^(-2.83 x 10^-5 t)
Taking the natural logarithm of both sides, we get:
ln(0.8) = -2.83 x 10^-5 t
Solving for t, we get:
t = -ln(0.8) / 2.83 x 10^-5 = 11,848 years
Therefore, it would take approximately 11,848 years for one gram of radioactive substance with a half-life of 24,500 years to decay to 0.8 grams.
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how much heat is gained by copper when 51.8 g of copper is warmed from 15.5°c to 76.4°c? the specific heat of copper is 0.385 j/(g · °c)..
The heat gained by copper when 51.8 g of copper is warmed from 15.5°C to 76.4°C is 1,090.97 J.
To calculate the heat gained, you can use the formula q = mcΔT, where q is the heat gained, m is the mass of copper, c is the specific heat of copper, and ΔT is the change in temperature.
1. Determine the mass (m): 51.8 g
2. Identify the specific heat (c): 0.385 J/(g·°C)
3. Calculate the change in temperature (ΔT): 76.4°C - 15.5°C = 60.9°C
4. Plug the values into the formula: q = (51.8 g) x (0.385 J/(g·°C)) x (60.9°C)
5. Calculate the heat gained (q): 1,090.97 J
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Determine the pH during the titration of 74.5 mL of 0.348 M nitrous acid (Ka = 4.5×10-4) by 0.348 M NaOH at the following points.
(a) Before the addition of any NaOH ?
(b) After the addition of 18.0 mL of NaOH ?
(c) At the half-equivalence point (the titration midpoint) ?
(d) At the equivalence point ?
(e) After the addition of 112 mL of NaOH ?
The pH can be determined using the nitrous acid Ka expression before any NaOH is added: pH = pKa + log([HNO2]/[NO2-]). HNO2 is initially present at a concentration of 0.348 M without NaOH.
The moles of NaOH added after the addition of 18.0 mL of NaOH can be computed using the formula (0.348 M) x (0.018 L) = 0.00626 mol. The moles of HNO2 that have reacted are also 0.00626 mol since the reaction between HNO2 and NaOH is a 1:1 reaction. With respect to HNO2, the remaining moles are (0.348 mol) - (0.00626 mol) = 0.34174 mol. (74.5 mL + 18.0 mL) = 92.5 mL is the remaining capacity. pH is calculated using the Henderson-Hasselbalch equation, where [HNO2] is defined as 0.34174 mol/0.0925 L3.69 M and [NO2-] as 0.00626 mol/0.018 L0.348 M. So, pH is equal to 3.35 plus log(3.69/0.348) 3.98. Half of the original moles of HNO2 had interacted with NaOH at the point of half-equivalence. When the volume of additional NaOH supplied is equivalent to half the volume of the first solution of HNO2. HNO2 has a starting mole of (0.348 M) x (0.0745 L) = 0.02597 mol. This half has 0.012985 mol. 0.012985 mol of NaOH are also required to get to this point.
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how many grams of carbon dioxide are produced from the combustion of a candle formula
The amount of carbon dioxide produced from the combustion of a candle formula depends on the specific formula and the mass of the candle. However, on average, the combustion of one gram of wax in a candle produces approximately 3 grams of carbon dioxide.
Most candles are made of paraffin wax, which is a hydrocarbon with the general formula CnH2n+2. Let's assume that we are dealing with a simple hydrocarbon, such as C25H52 (a common component of paraffin wax).
During combustion, the hydrocarbon reacts with oxygen (O2) to produce carbon dioxide (CO2) and water (H2O). The balanced chemical equation for the combustion of C25H52 is:
C25H52 + 38O2 → 25CO2 + 26H2O
To find the grams of CO2 produced, we need to know the mass of C25H52 that is combusted. For example, let's say we have 1 mole of C25H52 (molecular weight = 25*12.01 + 52*1.01 = 352.76 g/mol).
From the balanced equation, 1 mole of C25H52 produces 25 moles of CO2. The molecular weight of CO2 is 12.01 (C) + 2*16.00 (O) = 44.01 g/mol. So, the mass of CO2 produced from 1 mole of C25H52 is:
25 moles CO2 * 44.01 g/mol = 1100.25 grams of CO2
So, in this example, the combustion of 1 mole (352.76 grams) of C25H52 from a candle produces 1100.25 grams of carbon dioxide.
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how many milliliters of 0.7513 m naoh standard solution are needed to neutralize 50.00 ml of 0.3442 m tartaric acid?
The volume in milliliters of 0.7513 M NaOH standard solution needed to neutralize 50.00 ml of 0.3442 M tartaric acid is 45.8 mL.
To solve this problem, we need to use the equation for molarity:
Molarity (M) = moles (mol) / volume (L)
First, let's calculate the moles of tartaric acid in 50.00 ml of 0.3442 M solution:
mol tartaric acid = Molarity x Volume = 0.3442 mol/L x 0.05000 L = 0.01721 mol
Since the mole ratio from the balanced chemical equation for the reaction between tartaric acid and NaOH is 1:2, we know that we will need twice as many moles of NaOH to neutralize the tartaric acid. Therefore, we need:
mol NaOH = 2 x mol tartaric acid = 2 x 0.01721 mol = 0.03442 mol
Now we can use the molarity of the NaOH solution to calculate the volume of solution we need:
Molarity (NaOH) = moles (NaOH) / volume (NaOH)
0.7513 mol/L = 0.03442 mol / volume (NaOH)
volume (NaOH) = 0.03442 mol / 0.7513 mol/L = 0.0458 L
Finally, we need to convert liters to milliliters:
volume (NaOH) = 0.0458 L x 1000 mL/L = 45.8 mL
Therefore, we need 45.8 mL of 0.7513 M NaOH solution to neutralize 50.00 mL of 0.3442 M tartaric acid.
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The volume in milliliters of 0.7513 M NaOH standard solution needed to neutralize 50.00 ml of 0.3442 M tartaric acid is 45.8 mL.
To solve this problem, we need to use the equation for molarity:
Molarity (M) = moles (mol) / volume (L)
First, let's calculate the moles of tartaric acid in 50.00 ml of 0.3442 M solution:
mol tartaric acid = Molarity x Volume = 0.3442 mol/L x 0.05000 L = 0.01721 mol
Since the mole ratio from the balanced chemical equation for the reaction between tartaric acid and NaOH is 1:2, we know that we will need twice as many moles of NaOH to neutralize the tartaric acid. Therefore, we need:
mol NaOH = 2 x mol tartaric acid = 2 x 0.01721 mol = 0.03442 mol
Now we can use the molarity of the NaOH solution to calculate the volume of solution we need:
Molarity (NaOH) = moles (NaOH) / volume (NaOH)
0.7513 mol/L = 0.03442 mol / volume (NaOH)
volume (NaOH) = 0.03442 mol / 0.7513 mol/L = 0.0458 L
Finally, we need to convert liters to milliliters:
volume (NaOH) = 0.0458 L x 1000 mL/L = 45.8 mL
Therefore, we need 45.8 mL of 0.7513 M NaOH solution to neutralize 50.00 mL of 0.3442 M tartaric acid.
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calculate the molar solubility of kht (in mol/l) when 0.950 g of kht is dissolved in 25.00ml of water.
When 0.950 g of KHT is dissolved in 25.00 ml of water, its molar solubility (measured in mol/l) is 0.202 mol/L.
Molar solubility is the number of moles of a solute that can dissolve in a solvent before the solvent reaches saturation.
To calculate the molar solubility of KHT (potassium hydrogen tartrate), we need to first find the number of moles of KHT present in 0.950 g.
The molar mass of KHT is 188.18 g/mol (39.10 g/mol for potassium + 133.08 g/mol for hydrogen tartrate).
Using the formula:
moles = mass/molar mass
We can calculate the moles of KHT as:
moles = 0.950 g / 188.18 g/mol = 0.00505 moles
Now, we need to find the volume of the solution in liters.
25.00 ml is equal to 0.025 L.
Finally, we can use the formula for molar solubility:
molar solubility = moles of solute/volume of solution in liters
molar solubility = 0.00505 moles / 0.025 L = 0.202 M
Therefore, the molar solubility of KHT in this solution is 0.202 mol/L.
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How many molecules of C2H6 are required to react with 5.6 mol O2? 2 C2H6 +7024 CO₂+6 H₂O +4CO,+6H,O• Use 6.022 x 1023 mol-1 for Avogadro's number.
• Your answer should have two significant figures.
The molecules of [tex]C_{2}H_{6}[/tex] required to react with 5.6 mol of [tex]O_{2}[/tex] is [tex]9.6*10^{23}[/tex]. This is obtained when Avogadro's number is considered.
Avogadro's numberHere the balanced chemical reaction is [tex]2C_{2}H_{6} +7O_{2} +4CO_{2} +6H_{2}O > > > > 4CO_{2} + 6H_{2}O[/tex]
Here, 7 moles of [tex]O_{2}[/tex] reacts with 2 moles of [tex]C_{2}H_{6}[/tex], if we start with 5.6 mol of [tex]O_{2}[/tex] we get
[tex]\frac{5.6*2}{7}[/tex]
= 1.6 moles
To find the molecules multiply this with Avogadro's number we get
[tex]9.6*10^{23}[/tex]
The proportionality factor that connects the number of constituent particles in a sample with the amount of substance in that sample is known as the Avogadro constant, also known as NA or L. [tex]6.02214076*10^{23}[/tex]reciprocal moles is the precise value of this SI defining constant.
Avogadro's number can be multiplied or divided to convert between molecules and moles: Adding [tex]6.02214076*10^{23}[/tex]to the number of moles will convert it to molecules. Divide the number of molecules by [tex]6.02214076*10^{23}[/tex] in order to convert that number to moles.
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how many atoms are in 6.27 g of f2? report your answer as the non-exponential part of the value ______x 1022 recall that avogadro's number is 6.02 x 1023
There are 1.987 x 10²² atoms are present in 6.27g of F₂
To determine the number of atoms in 6.27 g of F₂, we'll use the following steps:
1. Convert grams of F₂ to moles using the molar mass of F₂.
2. Determine the number of F atoms in a mole of F₂.
3. Calculate the total number of F atoms using Avogadro's number.
Step 1: The molar mass of F2 is 2 × 19 g/mol (since there are two F atoms, and each F atom has a molar mass of 19 g/mol). So, 6.27 g of F₂ × (1 mol F2 / 38 g F₂) = 0.165 moles of F₂.
Step 2: In one mole of F₂, there are two moles of F atoms (since each F₂ molecule contains two F atoms).
Step 3: Calculate the total number of F atoms using Avogadro's number. 0.165 moles of F × 2 moles of F atoms/mol F₂× (6.02 × 10²³ atoms/mol) = 1.987 × 10²³F atoms.
Since you want the non-exponential part of the value, the answer is 1.987 x 10²² atoms in 6.27 g of F₂.
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how much heat is absorbed by an iron rod with a mass of 35 g as it warms from the temperature -4 degree celsius to the body temperature of 37 degree celsius.
The iron rod absorbs 645.75 Joules of heat as it warms from -4°C to 37°C.
To calculate the amount of heat absorbed by the iron rod, we need to use the specific heat capacity of iron, which is 0.45 J/g°C.
First, we need to calculate the change in temperature:
ΔT = 37°C - (-4°C) = 41°C
Next, we can use the formula:
Q = m x c x ΔT
Where:
Q = heat absorbed (in Joules)
m = mass of the iron rod (in grams)
c = specific heat capacity of iron (in J/g°C)
ΔT = change in temperature (in °C)
Plugging in the values, we get:
Q = 35 g x 0.45 J/g°C x 41°C
Q = 645.75 J
Therefore, the iron rod absorbs 645.75 Joules of heat as it warms from -4°C to 37°C.
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A sample of aluminum of mass 1.00kg is cooled at constant pressure from 300K to 250K. Calculate the energy that must be removed as heat and the change in entropy of the sample. The molar heat capacity of aluminum is 24.35 J/K mol
The first step is to determine the number of moles of aluminum present in the sample:
moles of Al = mass of Al / molar mass of Al
moles of Al = 1000 g / 26.98 g/mol
moles of Al = 37.05 mol
Next, we can calculate the energy that must be removed as heat:
ΔH = nCΔT
ΔH = (37.05 mol) x (24.35 J/K mol) x (300 K - 250 K)
ΔH = -44,022.75 J
So the energy that must be removed as heat is -44,022.75 J.
Finally, we can calculate the change in entropy of the sample using the formula:
ΔS = nCln(T2/T1)
ΔS = (37.05 mol) x (24.35 J/K mol) ln(250 K/300 K)
ΔS = -37.39 J/K
So the change in entropy of the sample is -37.39 J/K.
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Fe + N -> Fe2N balanced reaction
The balanced chemical equation for the reaction between iron (Fe) and nitrogen (N) to form iron nitride (Fe2N) is: 6 Fe + N2 → 2 Fe2N
What is the balanced chemical reaction?This equation is balanced because there are equal numbers of atoms of each element on both sides of the arrow, and the ratio of the reactants and products is 6:1 for Fe and N2, and 2:1 for Fe2N.
To balance the equation, we need to make sure that the number of atoms of each element is the same on both sides of the equation. Here's how we can do it:
On the LHS, we have 6 atoms of Fe and 2 atoms of N (since N2 consists of 2 nitrogen atoms bonded together).
On the RHS, we have 4 atoms of Fe (2 atoms in each Fe2N molecule) and 2 atoms of N (1 atom in each Fe2N molecule).
To balance the equation, we can multiply the reactants by 3 to get 6 Fe atoms and 6 N atoms:
6 Fe + 3 N2 → 2 Fe2N
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Calculate ΔHrm for the following reaction based on the given data. Is this reaction endothermic or exothermic? C2H4 (g) + H2 (g) → C2H6 (g)C2H4 (g) + 302 (g) → 2CO2 (g) + 2H20(1) AH1-1411. kJ/moleC2H6 (g) + 7/202 (g) → 2CO2 (g) + 3H2O (l) Δ㎐ =-1560. kJ/moleH2 (g) + I/202 (g) → H2O (l) AH3 =-285.8 kJ/moleHow much heat is transferred between the system and the surroundings when 3.5 moles of ethylene (C2H4) reacts with excess of hydrogen gas to produce ethane (C2H6)? Please specify if energy is release or absorbed by the system.
ΔHrm for the given reaction can be calculated as follows: [tex]ΔHrm = ΣnΔHf(products) - ΣnΔHf(reactants)[/tex] , [tex]ΔHrm = [2(-393.5) + 2(-241.8)] - [-1411 + (-285.8)][/tex],
[tex]ΔHrm = -136.4 kJ/mole[/tex]
The negative value of ΔHrm indicates that the reaction is exothermic, which means that energy is released by the system during the reaction.
The amount of heat transferred between the system and surroundings can be calculated using the equation:
[tex]q = ΔHrxn × n[/tex]
[tex]q = (-136.4 kJ/mole) × (3.5 moles)[/tex]
[tex]q = -477.4 kJ[/tex]
Therefore, the system releases 477.4 kJ of heat to the surroundings during the reaction.
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a 0.278 mol sample of o2 gas is contained in a 8.00 l flask at room temperature and pressure. what is the density of the gas, in grams/liter, under these conditions?
The density of O₂ gas under these conditions is 1.16 g/L.
To calculate the density of O₂ gas, we'll use the formula:
density = (mass of O₂) / volume
1. First, find the mass of O₂ by multiplying the moles (0.278 mol) by its molar mass (32 g/mol):
mass = 0.278 mol * 32 g/mol = 8.896 g
2. Next, divide the mass of O₂ (8.896 g) by the volume of the flask (8.00 L):
density = 8.896 g / 8.00 L = 1.112 g/L
However, since the gas is at room temperature and pressure, we need to account for the ideal gas law (PV=nRT) to adjust the density for these conditions. Assuming the room temperature is 298 K and the pressure is 1 atm, we can calculate the adjusted density:
3. Use the ideal gas law to find the volume of O₂ at room temperature and pressure:
PV = nRT
(1 atm) * V = (0.278 mol) * (0.0821 L atm/mol K) * (298 K)
V = 6.796 L
4. Divide the mass of O₂ (8.896 g) by the adjusted volume (6.796 L) to find the density:
density = 8.896 g / 6.796 L = 1.16 g/L
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4. Is there a solvent listed in the materials section that is inappropriate for NMR? Explain. 5. Which solvent would you order if you determined that a sample required a more polar solvent than what is available above? Explain. Saved
4. Hexane would not provide the necessary conditions for a successful NMR experiment. 5. DMSO-d6 is a highly polar solvent as it can dissolve a wide range of compounds.
Yes, there is a solvent listed in the materials section that is inappropriate for NMR. The solvent is hexane. Hexane is a non-polar solvent, which means that it does not dissolve polar molecules very well. Since NMR is a technique that relies on the interaction between magnetic fields and the electrons in a molecule, a polar solvent is needed to ensure that the sample is in solution and that the electrons are properly oriented. Hexane would not provide the necessary conditions for a successful NMR experiment.
If a sample required a more polar solvent than what is available above, the solvent that could be ordered is DMSO-d6. DMSO-d6 is a highly polar solvent and is often used for NMR experiments because it can dissolve a wide range of compounds, including polar molecules. Additionally, it has a low proton signal, which makes it useful for proton NMR experiments. DMSO-d6 can be ordered as a deuterated solvent, which means that it contains no protons and will not interfere with the sample being analyzed.
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4. Hexane would not provide the necessary conditions for a successful NMR experiment. 5. DMSO-d6 is a highly polar solvent as it can dissolve a wide range of compounds.
Yes, there is a solvent listed in the materials section that is inappropriate for NMR. The solvent is hexane. Hexane is a non-polar solvent, which means that it does not dissolve polar molecules very well. Since NMR is a technique that relies on the interaction between magnetic fields and the electrons in a molecule, a polar solvent is needed to ensure that the sample is in solution and that the electrons are properly oriented. Hexane would not provide the necessary conditions for a successful NMR experiment.
If a sample required a more polar solvent than what is available above, the solvent that could be ordered is DMSO-d6. DMSO-d6 is a highly polar solvent and is often used for NMR experiments because it can dissolve a wide range of compounds, including polar molecules. Additionally, it has a low proton signal, which makes it useful for proton NMR experiments. DMSO-d6 can be ordered as a deuterated solvent, which means that it contains no protons and will not interfere with the sample being analyzed.
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You have two species A and B in the liquid phase. B is a non volatile solute. The liquid phase of A is in equilibrium with the gas phase of A. How do their chemical potentials (µ) relate to each other?
Select one:
a.µ(A gas)>µ(A liquid)
b.µ(A gas)<µ(A liquid)
c.µ(A gas)=µ(A liquid)
The relationship between the chemical potentials (µ) of species A in the liquid phase and the gas phase, with species B as a non-volatile solute, when the liquid phase of A is in equilibrium with the gas phase of is c. µ(A gas) = µ(A liquid).
The chemical potential of a species in a mixture is defined as the rate of change of free energy of a thermodynamic system with respect to the change in the number of atoms or molecules of the species that are added to the system. When the system is at equilibrium, the chemical potentials of species A in the liquid and gas phases are equal. So the correct answer is:c. µ(A gas) = µ(A liquid).
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a particular reaction has a δho value of -159. kj and δgo of -162. kj at 201. k. calculate δso at 201. k in j/k
The entropy change (δso) at 201 K is -0.015 J/K.
To calculate δso at 201 K in J/K, we can use the following equation:
δgo = δho - Tδso
Where δho is the enthalpy change, δgo is the Gibbs free energy change, T is the temperature in Kelvin, and δso is the entropy change.
Substituting the given values, we get:
-162. kj = -159. kj - (201 K)δso
Solving for δso, we get:
δso = (-162. kj + 159. kj) / (201 K)
δso = -0.015 J/K
Therefore, the entropy change (δso) at 201 K is -0.015 J/K.
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EXAMPLE 6 Finding Linear and Angular Speed A boy rotates a stone in a 3-ft-long sling at the rate of 15 revolutions every 10 sec- onds. Find the angular and linear velocities of the stone. SOLUTION In 10 s the angle θ changes by 15.2m-30π rad. So the angular speed of the stone is o30 rad -3m rads -3T rad/s 10s The distance traveled by the stone in 10 s is s = 15 . 2tr-15-2π-3 = 90π ft. So 90π ft the linear speed of the stone is t 10s
The angular speed of the stone is 3π rad/s (since 15 revolutions = 30π radians, and it takes 10 seconds to complete those revolutions). The linear speed of the stone is 90π/10 ft/s = 9π ft/s (since the distance traveled by the stone in 10 seconds is 90π feet).
In this problem, we are asked to find the angular and linear velocities of a stone that is being rotated in a sling. We are given that the sling is 3 feet long and that the stone completes 15 revolutions in 10 seconds. To find the angular velocity, we use the formula: angular speed = change in angle/time. Since the stone completes 15 revolutions, the change in angle is 152pi radians. Dividing by time, we get an angular speed of 3*pi radians per second.
To find the linear velocity, we need to find the distance traveled by the stone in 10 seconds. Since the sling is 3 feet long, the stone travels a distance of 2pi3 feet for every revolution. Multiplying by the number of revolutions in 10 seconds, we get a distance of 90 pi feet. Dividing by the time, we get a linear velocity of 9pi feet per second.
Therefore, the angular velocity of the stone is 3pi radians per second and the linear velocity is 9pi feet per second.
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For the following equilibrium, what will occur if the vessel contracts: C(s) H2O(g)⇌CO(g) H2(g)
Select the correct answer below: a. shift right b. shift left c. no change d. impossible to predict
Answer:
When the vessel contracts, the equilibrium will shift towards the side with fewer moles of gas, which is the right side in this case.
What volume of oxygen is required to burn the above Hydrogen in space when the temperature is -50 degrees Celsius and pressure is 50 kPa?
Answer:
To calculate the volume of oxygen required to burn hydrogen, we need to use the balanced chemical equation for the combustion of hydrogen with oxygen which is
2H2(g) + O2(g) → 2H2O(g)
Two moles of hydrogen gas combine with one mole of oxygen gas to form two moles of water vapour, according to this equation. The coefficients in the equation provide information on the mole ratios of the reactants and products.
To determine the volume of oxygen necessary, we must first convert the problem's circumstances to standard temperature and pressure (STP), which are 0 degrees Celsius and 101.3 kPa. This conversion may be accomplished using the ideal gas law:
PV = nRT
where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature in Kelvin.
Next step is to convert the temperature of -50 degrees Celsius to Kelvin:
T = (−50 + 273.15) K = 223.15 K
Now we can use the ideal gas law to calculate the number of moles of hydrogen required for the reaction:
n(H2) = PV/RT = (50 kPa)(V)/(8.314 J/(mol·K))(223.15 K)
where we have used the units of the gas constant R in Joules per mole Kelvin (J/(mol·K)).
The stoichiometry of the balanced chemical equation may then be used to calculate the amount of moles of oxygen required for the reaction. Because the hydrogen-to-oxygen ratio is 2:1, we require half as many moles of oxygen as hydrogen:
n(O2) = n(H2)/2
Finally, we can use the ideal gas law again to calculate the volume of oxygen required at STP:
n(O2) = PV/RT = (101.3 kPa)(V)/(8.314 J/(mol·K))(273.15 K)
Now we can substitute the expression for n(O2) in terms of n(H2) into the equation for V(O2) and solve for V(O2):
V(O2) = n(O2)RT/P = [(50 kPa)(V)/(8.314 J/(mol·K))(223.15 K)](8.314 J/(mol·K))(273.15 K)/(101.3 kPa)
Simplifying this expression and solving for V(O2), we get:
V(O2) = (V/2) * (101.3/50) * (273.15/223.15) = 3.07 V
As a result, at -50 degrees Celsius and 50 kPa, the volume of oxygen required to burn a given volume of hydrogen in space is 3.07 times the volume of hydrogen. It should be noted that the volume units will be determined by the initial volume supplied for hydrogen in the problem.
(im so sorry if its wrong)