the answer is (d) 1.3 x 10^-24 M

What is the concentration of Al^3+ when 25 grams of Al(OH)3 is added to 2.50 L...
In the presence of excess OH-, the Al3+(aq) ion forms a hydroxide complex ion, Al(OH)4-. Calculate the concentration of free Al3+ ion when 1.32×10-2 mol Al(NO3)3(s) is added to 1.00 L of solution in which [OH- ] is held constant (buffered at pH 13.00). For Al(OH)4-, Kf = 1.1×1033. [Al3+] = ?M
What is the solubility, in mol L-1, of Al(OH)3 in a solution buffered to give a pH of 9.50? Ksp (Al(OH)3) = 1.0 x 10-33 A. 3.2 X 10-15 B. 3.2 X 10-10 C. 3.2 X 10-20 D. 3.2 x 10-25 E. 3.2 X 10-5
Calculate concentration of species in a solution containing a complex ion. Close Problem In the presence of excess OH-, the Al3+(aq) ion forms a hydroxide complex ion, Al(OH)4-. Calculate the concentration of free Al3+ ion when 1.21×10-2 mol Al(CH3COO)3(s) is added to 1.00 L of solution in which [OH- ] is held constant (buffered at pH 12.60). For Al(OH)4-, Kf = 1.1×1033. [Al3+] = M
B) Given that Ksp of Al(OH)3 is 1.3X10-33, and the following dissociation : Al(OH)3 =→ Al3+ + 30H Calculate : 1- The concentration of Al ions in pure water. 2- The pH value of the suspension of Al(OH)3 in water.
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What is the approximate concentration of free Cu* ion at equilibrium when 1.57x102 mol copperII) nitrate is added to 1.00 L of solution that is 1.380 M in NH3. For [Cu(NH3)4j2, Kf 2.1 1013 [Cu2 м What is the approximate concentration of free Fe2* ion at equilibrium when 1.42x102mol iron(II) nitrate is added to 1.00 L of solution that is 1.38so M in CN. For [Fe(CN)6]4, Kf=1.0x1035 [Fe"]= In the presence of excess OH, the Al*(aq) ion forms...
Calculate the solubility of barium sulfate. BaSO4 in units of grams per liter. Ksp (BaSO4) = 1.1x10-10 solubility = AL The equilibrium concentration of chloride ion in a saturated lead chloride solution is M. In the presence of excess OH, the Ar+ (aq) ion forms a hydroxide complex ion. Al(OH)4 Calculate the concentration of free Ap+ ion when 1.56x10-mol Al(CH2C00)3(s) is added to 1.00 L of solution in which [OH-] is held constant (buffered at pH 12.10). For Al(OH)4, Ke=...
Determine the molar solubility of Al(OH)3 in a solution containing 0.0500M AlCl3, Ksp (Al(OH)3)=1.3*10^-33
Determine the molar solubility for Al(OH)3 in pure water. Ksp for Al(OH)3 = 1.3 x 10-33 2.6 x 10-9 M is the answer, but how? Please explain.
The Ksp of Al(OH)3 is 2 × 10–32. At what pH will a 0.4 M Al3+ solution begin to show precipitation of Al(OH)3? 6.1 1.0 3.6 3.1 10.4
Calculate concentration of species in a solution containing a complex ion In the presence of excess OH, the Al3 (aq) ion forms a hydroxide complex ion, AIOH)4. Calculate the concentration of free Al3 ion when 1.46*102 mol Al(NO3)3(s) is added to 1.00 L of solution in which [OH-] is held constant (buffered at pH 12.60). For Al(OH)4, K?1.1x1033.