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in Chemistry by (130k points)

Write the Nernst equation and emf of the following cells at 298 K:

 (i) Mg(s) | Mg2+(0.001M) || Cu2+(0.0001 M) | Cu(s)

 (ii) Fe(s) | Fe2+(0.001M) || H+(1M)|H2(g)(1bar) | Pt(s)

 (iii) Sn(s) | Sn2+(0.050 M) || H+(0.020 M) | H2(g) (1 bar) | Pt(s)

 (iv) Pt(s) | Br2(l) | Br−(0.010 M) || H+(0.030 M) | H2(g) (1 bar) | Pt(s). 

1 Answer

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Best answer

(i) For the given reaction, the Nernst equation can be given as: 

(ii) For the given reaction, the Nernst equation can be given as: 

(iii) For the given reaction, the Nernst equation can be given as: 

(iv) For the given reaction, the Nernst equation can be given as: 

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