what is the OH- ion concentration in a 5.2*10^-4M HNO3 solution
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What is the pH of 2.8*10 4M Ba(OH)2? What is the pH of 5.2*10 4M HNO3?
A solution with hydronium ion concentration [H+] =
1.60×10^-8 M has a hydroxide ion concentration [OH-] = ?
A solution with hydronium ion concentration THT) = 1.60 X 10Mhas a hydroxide ion concentration (OH) =
At 25 °C, what is the hydroxide ion concentration, [OH–], in an
aqueous solution with a hydrogen ion concentration of [H ] = 2.3 ×
10–8 M?
At 25 °C, what is the hydroxide ion concentration, [OH], in an aqueous solution with a hydrogen iorn concentration of [H1 2.3 x10-8M? Number Tools × 102
At 25 °C, what is the hydroxide ion concentration, [OH], in an aqueous solution with a hydrogen ion concentration of (H*]-2.3 x 10 M? OH=
At 25 °C, what is the hydroxide ion concentration, [OH-], in an aqueous solution with a hydrogen ion concentration of [H"]=2.3 x 10-5 M? [OH-] =
At 25 °C, what is the hydroxide ion concentration, [OH−] , in an aqueous solution with a hydrogen ion concentration of [H+]=4.9×10−5 M? [OH−]= M
The concentration of HNO3 in a solution is 2.90 ✕ 10-6M. a. What is the [H3O+] in the solution? ____ M b. What is the [OH-] in the solution? ____ M c. What is the pH of the solution? ____ d. What is the pOH of the solution? ____
At 25 °C, what is the hydroxide ion concentration. [OH-], in an aqueous solution with a hydrogen ion concentration of TH+1=2.3 x 10-8 M2 (OH) = M
At 25 °C, what is the hydroxide ion concentration, [OH–], in an aqueous solution with a hydrogen ion concentration of [H ] = 4.4 × 10–6 M?
What is the hydroxide ion concentration, [OH-], in a solution with a hydronium ion concentration, [H3O+] = (1.42x10^-3) M? NOTE: The problem statement uses the caret symbol, "^" to indicate exponentiation and shows the entire value in parentheses. For example: The value 1.37 x 10-4 would be shown as (1.37x10^-4). Note: Your answer is assumed to be reduced to the highest power possible.