Home
Class 11
CHEMISTRY
Given K(a) values of 5.76xx10^(-10) and ...

Given `K_(a)` values of `5.76xx10^(-10)` and `4.8xx10^(-10)` for `NH_(4)^(+)` and HCN respectively. What is the equilibrium constant for the following reaction?
`NH_(4)^(+)(aq.)+CN^(-)(aq.)hArrNH_(3)(aq.)+HCN(aq.)`

A

`0.83`

B

`1.2`

C

`8.0xx10^(-11)`

D

`27.6xx10^(-10)`

Text Solution

Verified by Experts

Promotional Banner

Topper's Solved these Questions

  • IONIC EEQUILIBRIUM

    NARENDRA AWASTHI|Exercise Level- 1|1 Videos
  • IONIC EEQUILIBRIUM

    NARENDRA AWASTHI|Exercise Level- 2|10 Videos
  • GASEOUS STATE

    NARENDRA AWASTHI|Exercise Level 3 - Subjective Problems|1 Videos
  • SOLID STATE

    NARENDRA AWASTHI|Exercise Level 3 - Subjective Problems|1 Videos

Similar Questions

Explore conceptually related problems

Balance the following equation : KCN (aq) +H_2SO_4(aq) rarr K_2SO_4(aq)+HCN(g)

Which of the following reactions is possible? ZnSO_4(aq)+Cu(s)rarrCuSO_4(aq)+Zn(s)

Which of the following reactions is possible? Zn(s)+CuSO_4(aq)rarrZnSO_4(aq)+Cu(s)

Complete the following chemical equation : MnO_4^(-)(aq) + S_2O_3^(2-)(aq)+ H_2O (l) rarr

Explain the following : Complete the following reaction: C_6H_5NH_2 + Br_2(aq) rarr

Balance the following equations. Pb(NO_3)_2 (aq) + Fe_2(SO_4)_3 (aq) rarr Fe(NO_3)_3(aq) + PbSO_4

Complete the following chemical reaction equations . MnO_4^- (aq) + C_2O_4^(2-) (aq) + H^+ (aq) to

The rate constant for a reaction is 1.6 xx10^-5 and 6.36 xx 10^-3 s^-1 at 600 K and 700 K respectively. Calculate the activation energy for the reaction.

Identify the reaction order from each of the following rate constants. k = 3 xx 10^(-4) s^(-1)

Is following reactions will occurs?explain: MgSO_4(aq)+Fe(s)rarrFeSO_4(aq)+Mg(s)