Asked by Karlie
                Calculate the \rm pH of a 0.10 M solution of hydrazine, \rm N_2H_4. K_b for hydrazine is 1.3\times 10^{-6}.
            
            
        Answers
                    Answered by
            DrBob222
            
    ........N2H4 + HOH ==> N2H5^+ + OH^-
I.......0.1M...........0.........0
C........-x.............x........x
E......0.1-x............x........x
Substitute the E line into Kb expression and solve for x = OH^-, then convert to pH.
    
I.......0.1M...........0.........0
C........-x.............x........x
E......0.1-x............x........x
Substitute the E line into Kb expression and solve for x = OH^-, then convert to pH.
                                                    There are no AI answers yet. The ability to request AI answers is coming soon!
                                            
                Submit Your Answer
We prioritize human answers over AI answers.
If you are human, and you can answer this question, please submit your answer.