1.) AgCl(s) --> Ag+(aw)+ Cl-(aq)

  1. Combine the Ksp and Kf equilibria for AgCl and Ag(NH3)2+ respectively and demonstrate Hess's law to determine the equilibrium
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    2. Kaitlin asked by Kaitlin
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  2. So Ag+ + Cl- ---> AgCl and delta H is -65.5 kJ. I'm supposed to calculate delta H when one mole of AgCl dissolved in water, so 1
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    2. Victor asked by Victor
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  3. Calculate solubility of AgCl (in g/L) in a 6.5*10^-3 M silver Nitrate solution ksp= 1.8 * 10^-10(AgCl molecular mass is 143.3g)
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    2. Steve asked by Steve
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  4. Calculate solubility of AgCl (in g/L) in a 6.5*10^-3 M silver Nitrate solution ksp= 1.8 * 10^-10(AgCl molecular mass is 143.3g)
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    2. Steve asked by Steve
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  5. Question 2What is the solubility of AgCl in 10 M NH3? The Kf of Ag(NH3)2+ from AgCl(s) in aqueous NH3 is 0.0031, which is for
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    2. Nevaeh asked by Nevaeh
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  6. I do not quiet understand what you said. Could you show your work.What is the solubility of AgCl in 10 M NH3? The Kf of
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    2. Nevaeh asked by Nevaeh
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  7. What is the solubility of AgCl in 10 M NH3? The Kf of Ag(NH3)2+ from AgCl(s) in aqueous NH3 is 0.0031, which is for the balanced
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    2. Nevaeh asked by Nevaeh
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  8. A solution contains 0.022 M Ag and 0.033 M Pb2 . If you add Cl–, AgCl and PbCl2 will begin to precipitate. What is the
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    2. Sally asked by Sally
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  9. Some AgNO3, NaCl, and AgCl are added to water and the following reaction consumes some AgCl until equilibrium is established.
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    2. sara asked by sara
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  10. Equilibrium expression: AgCl(s) ⇌ Ag+(aq) + Cl-(aq) KSP = 1.8 x 10-10 The solubility of AgCl in: i) pure water: solubility =
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    2. JAY_ndabeh asked by JAY_ndabeh
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