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Show all work for both questions. #16. A 2.00 liter container is filled with 4.00 moles of phosphorus pentachloride...
Phosphorus pentachloride is formed when phosphorus trichloride and chlorine react. PCl3(g) + Cl2(g) ⇌ PCl5(g) The equilibrium constant for the reaction is KC = 38.0 at 233 °C. If 0.510 mol of phosphorus trichloride is added to 0.238 mol of chlorine in a 1.11-L reaction vessel at this temperature, what is the equilibrium concentration (in mol/L) of phosphorus pentachloride? Report your answer to THREE significant figures.
Revie Phosphorus trichloride gas and chlorine gas react to form phosphorus pentachloride according to the following equilibrium: What is the value of Kp at this temperature? Express the equlibrlum constant to three significant figures. PCl3 (9) +Cla (9) PCls (g) A7.5-Lgas vessel is charged with a mixture of PCls(9) equilibrate at 450K. At equilibrium, the partial pressures of the three gases are Ppci, 0.124 atm, Pa, 0.159 atm, and PpcCls 1.40 atm and Cl2 (g), which is allowed to VAXD...
Phosphorus pentachloride (PCl5) decomposes when heated to phosphorus trichloride and molecular chlorine according to the following equation: PCl5 (g) -> PCl3 (g) + Cl2 (g) When 2.53 mol of PCl5 is put in a 1.00 L container and allowed to come to equilibrium, the mixture is found to contain 0.277 mol of PCl3. How many moles of each gas are present at equilibrium?
Phosphorus pentachloride is formed when phosphorus trichloride and chlorine react. PCl3(g) + Cl2(g) ⇌ PCl5(g) The equilibrium constant for the reaction is KC = 40.3 at 256 °C. If 0.486 mol of phosphorus trichloride is added to 0.221 mol of chlorine in a 1.34-L reaction vessel at this temperature, what is the equilibrium concentration (in mol/L) of chlorine? Report your answer to THREE significant figures.
Phosphorus trichloride gas and chlorine gas react to form phosphorus pentachloride according to the following equilibrium: PCl3(g)+Cl2(g)⇌PCl5(g) A 7.5-L gas vessel is charged with a mixture of PCl3(g) and Cl2(g), which is allowed to equilibrate at 450 K . At equilibrium, the partial pressures of the three gases are PPCl3 = 0.129 atm , PCl2 = 0.159 atm , and PPCl5 = 1.20 atm . 1. What is the value of Kp at this temperature? Express the equilibrium constant to...
Question 1. Phosphorous trichloride reacts with chlorine to produce phosphorus pentachloride: PC13(g) + Cl2(8) - PC1s(8) The equilibrium constant (Kc) for the reaction is 96 at 400 K If the equilibrium concentration of PC13 is 0.50 M and Cl, is 0.070 M, what is the equilibrium concentration of PCI ? Question 2. Consider the reaction between hydrogen and iodine H2(g) + 12(6) 2 HI(g) Kc = 64 Initially, a container was charged with 0.55 atm of H, and I2, what...
1.100 mol phosphorus pentachloride, PCl5 were placed in an empty, sealed, 2.00 L container at room temperature, when PCl5 is a solid. Then temperature was raised to 250oC, all the chemical evaporated, and it was found that 45% of it (by mass) decomposed according to the equation: PCl5(g) PCl3(g) + Cl2(g) (a) What are the equilibrium molar concentrations of all three chemical compounds involved? (b) What is the equilibrium constant K for that rxn?
Please help with questions 5-9
5. Water vapor will react reversibly with methane (CH.) to produce carbon monoxide and hydrogen gas. The equilibrium, with a K -0.26, is established at 927°C in a 0.32L flask which contains 0.26mol Co, 0.091 mol H2, and 0.041 mol CH4. What is the concentration of water vapor? 6. The organic chemical butane (C Ho) will undergo reversible rearrangement to form isobutane (C,Hio) with K-2.5 under certain reaction conditions. A flask at those conditions is...
a.) Calculate the partial pressure in bar of phosphorus pentachloride produced in a system in which phosphorus trichloride and chlorine gases are initially each at a partial pressure of 3.00 bar and allowed to reach equilibrium. The reaction is run at a temperature in which the equilibrium constant = 1.12. Note: This K value is for the reaction written as: PCl3(g) + Cl2(g) ----> PCl5(g) b.) Strontium-90 is a radionuclide that is a legacy of nuclear weapons development and testing....
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B. Consider the system N2 (9) 3H2 (g) 2 NHs (9) dbie of NHs was placed in a 2.000 liter flask at 25°C. When equilibrium at that temperature, it was determined that the ammonia was reduced A 2.568-g sample was reached N to 75.0% of its original value. 1. Calculate K for the decomposition of 2.00 moles of ammonia at 25.0°C. 2. Calculate K for the decomposition of 2.00 moles of ammonia at NH3 is...