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Problem- The gas arsine, AsH3, decomposes to form solid arsenic and hydrogen gas in the following equilibrium reaction:
2AsH3(g) < --- > 2As(s) + 3H2(g)
You inject 280.0 torr of arsine into an evacuated chamber, and measure a total pressure on successive days that does not change and remains at 380.0 torr. You may assume that the gases are ideal and that the temperature remains constant at T = 25.0 °C
Q- What are the equilibrium constant K and ?G° for this reaction. Next you rapidly inject an additional 120.0 torr of hydrogen gas into the chamber, disturbing the previously established equilibrium. What is the reaction quotient Q immediately after this injection? Which direction will the reaction shift (towards reactants, towards products, or neither) and why? Briefly justify your answer with 1-2 sentences.
Please provide with the balanced reaction. I want proficient help to crack the above problem
Show all the steps in the mechanism for the following reaction, When benzene is mixed with deuterated sulfuric acid, deuterium is slowly incorporated onto the ring. Show the mechanism for this reaction and explain how this relates the sulfonation of ..
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