Home
Class 12
CHEMISTRY
Calculate the emf of the following cell ...

Calculate the emf of the following cell at `298K`:
Fe(s) abs(Fe^(2+)(0.001M))abs(H^+(1M))H_2(g)(1"bar"),Pt(s) ("Give`E_("Cell")^@=+0.44V)`

Promotional Banner

Similar Questions

Explore conceptually related problems

Calculate the emf of the following cell at 298K : Fe(s)|Fe^(2+)(0.001M)||H^+(1M)|H_2(g)(1"bar"),Pt(s) (Given E_("Cell")^@=+0.44V)

Calculate the emf of the following cell at 298k : Feabs(Fe^(2+)(0.001M)) abs(H^+(1M)) H_2(g)(1 b a r ),Pt(s) (given E^@,_(cell)=+0.44V )

Calculate the emf of the following cell at 298K, Fe(s)Fe^(2+)(0.001M)||H^+(1M)|H_2(g)(1ba r), Pt(s)

Write the Nernst equation and emf of the following cells at 298K. Fe(s)|Fe^(2+)(0.001M)||H^+(1M)|H_2(g)(1 bar)|pt(s)

Write The Nernst equation and calculate the e.m.f. of the following cell at 298K. Fe_((s))|Fe_((0.001M))^(2+)||H_((1M))^(+)|H_(2(1atm).Pt) Given E_(Fe^(2+)//Fe)^(@)=-0.44V

Write the Nernst equation and emf of the following cells at 298K. Fe_((s))|Fe^(2+)(0.001M)||H_(1M)^+|H(2(g)(1 bar))|Pt_((s)) (Given E_(Fe^(2+)//Fe)^0=-0.440V)

Determine the e.m.f of the following cell at 298 K. Pt(s)//Br_(1)//Br(0.01M)\\H^+(0.03M)//H_2(g)(1bar)Pt(s) .

Write the cell reaction and calculate the e.m.f. of the following cell at 298 K : Sn(s) |Sn^(2+) (0.004M)||H^(+) (0.020M) |H_(2)(g) (1 bar )| Pt(s) (Given E_(Sn^(2+)//Sn)^(@) = -0.14V ).