Use the systematic method to determine the equilibrium concentration of A+ ion (M) when excess (meaning a saturated solution) AB(s) is added to 0.10 M NaB The Ksp of AC(s) is 1.8 x 10-9, the Ksp of AB(s) is 4.9 x 10-12, and NaB is fully soluble.
Chemical reactions: NaB(s) → Na+(aq) + B-(aq)
AC(s) ⇄ A+(aq) + C-(aq)
AB(s) ⇄ A+(aq) + B-(aq)
Use the systematic method to determine the equilibrium concentration of A+ ion (M) when excess (meaning...
A solution is prepared in which the Ag+ ion concentration is 2.5 x 10-3 M and the Cl- ion concentration is 3.2 x 10-4 M. Which of the following statements is true given that the Ksp for AgCl is 1.8 x 10^-10? A)No AgCl(s) will precipitate because Qsp<Ksp. B)No AgCl(s) will precipitate because the Ksp value indicates that AgCl is infinitely soluble in water. C)A precipitate of AgCl(s) will form because Qsp>Ksp. D)Insufficient data is given to make a prediction...
What is the concentration of silver ions when excess AgCl is added to a 0.200 M solution of calcium chloride? Ksp for AgCl is 1.8 x 10-10
What concentration of Calcium ion will be present at equilibrium in a solution that is saturated with CaF2 and contains 0.01 M NaF? Ksp for CaF2 = 5.3 x 10−9
1) Use equilibrium ion concentration to calculate Ksp. The Pb2+ concentration in a saturated solution of lead bromide is measured and found to be 1.19×10-2 M. Use this information to calculate a Ksp value for lead bromide. Ksp =___________ 2) Use solubility to calculate Ksp. The solubility of Fe(OH)2 is measured and found to be 1.15×10-3 g/L. Use this information to calculate a Ksp value for iron(II) hydroxide. Ksp =______________
The equilibrium concentration of iron(III) ion in a saturated iron(III) sulfide solution is ___ M. (the Ksp is given as 1.4 × 10-88)
Given the Ksp of Zn(OH)2 is 3.0x10-1, determine the Zn2 ion concentration when the pH of the solution is buffered to pH=12.00 (so that the hydroxide ion concentration is 0.010 M). 1. Zn(OH)2(s) A. [Zn2] 3.0x10-12 M B. [Zn2 3.7x10- M C. [Zn23.0x10-10 M D. [Zn2] 9.1x10-3 M E. [Zn2] 1.5x10-13 M Zn2 (aq) + 20H (aq) Ksp 3.0x10-16 2. When silver carbonate, Ag,COs, is mixed with water, it dissolves to some extent to form a saturated solution where the...
What concentration of Calcium ion will be present at equilibrium in a solution that is saturated with CaF2 and contains 0.01 M NaF? Ksp for CaF2 = 5.3 x 10−9 A. 8.1 x 10−3 M B. 1.74 x 10−3 M C. None of these D. 1.74 x 10−5 M E. 5.3 x 10−5 M
19. What is the equilibrium fluoride ion concentration of a so we equilibrium fluoride ion concentration of a solution that initially consists of 0.29 M HF and 0.490 M HCI? K, for HF is 6.8 x 10-4 a. 1.2 x 10-3 M b. 4.9 x 10-3 M c. 4 x 10-4 M d. 1.4 x 10-2 M e. 2.7 x 100 M
Write the equilibrium-constant expression for the reaction shown in terms of [NO], [0, 1, and [NO, J. 2 NO(g) + O2(g) = 2 NO, (g) Ke, which is sometimes symbolized as Kor Key, denotes that the equilibrium constant is expressed using molar concentrations. For this question, Kmeans the same thing as K and Ke. K. = [C] [D]2 [4][B] At 25 °C, only 0.0670 mol of the generic salt AB, is soluble in 1.00 L of water. What is the...
At a certain temperature, the equilibrium constant for the chemical reaction shown is 1.39 x 10-?. At equilibrium, the concentration of AB is 2.425 M, the concentration of BC is 1.525 M, and the concentration of AC is 0.200 M. Calculate the concentration of B at equilibrium. AB(aq) + BC(aq) = AC(aq) + 2 B(aq) [B] = M