b. Design a system which can provide hydrogen measured over water at 296 K and 746.0 mmHg in 40 minutes based on the current used to produce 1 g of copper from a dilute solution of potassium tricvanocuprate(I), K2[Cu(CN)3], in 30 minutes? The half equation for Cu Cu* + e Cu The atomic weight for Cu= 63.55g/mel The half equation for H 2H* + 2e - H2 V = nRT/P Where V= Volume in L, n= number of ion/metal produced in mol, R molar gas constant (8.314 JK'mol1), T= temperature in K and P= Presssure in kPa (1 mmhg = 0.133322368 kilopascals)

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b. Design a system which can provide hydrogen measured over water at 296 K
and 746.0 mmHg in 40 minutes based on the current used to produce 1 g of
copper from a dilute solution of potassium tricyanocuprate(I), K2[Cu(CN):], in
30 minutes?
The half equation for Cu
Cu* + e → Cu
The atomic weight for Cu= 63.55g/mol
The half equation for H
2H* + 2e H2
V = nRT. / P
Where V= Volume in L, n= number of ion/metal produced in mol, R molar
gas constant (8.314 JK'mol-1), T= temperature in K and P= Presssure in kPa
(1 mmhg = 0.133322368 kilopascals)
Transcribed Image Text:b. Design a system which can provide hydrogen measured over water at 296 K and 746.0 mmHg in 40 minutes based on the current used to produce 1 g of copper from a dilute solution of potassium tricyanocuprate(I), K2[Cu(CN):], in 30 minutes? The half equation for Cu Cu* + e → Cu The atomic weight for Cu= 63.55g/mol The half equation for H 2H* + 2e H2 V = nRT. / P Where V= Volume in L, n= number of ion/metal produced in mol, R molar gas constant (8.314 JK'mol-1), T= temperature in K and P= Presssure in kPa (1 mmhg = 0.133322368 kilopascals)
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