Question

Electrodeposition of copper: what mass of copper can be deposited in 1.00 hr by a current of 1.62 A?

`Cu^(2+)(aq)+2e^(-)\rarrCu(s)`

Answer 1

This can be done with a unit conversion.

• Each `"Cu"^(2+)` receives `2` electrons in this half-reaction, so `n = "2 mol e"^(-)"/mol atom"`.
• `"1.62 A"` `=` `"1.62 C/s"` is the current.
• `F = "96485 C/mol e"^(-)` is the Faraday constant.

So, in `"1.00 hr"`,

`1.00 cancel"hr" xx (60 cancel"min")/(cancel"1 hr") xx (60 cancel"s")/cancel"1 min" = "3600 s"`

has passed, and

`3600 cancel"s" xx (1.62 cancel"C")/(cancel"s") xx (cancel("1 mol e"^(-)))/(96485 cancel"C") xx (cancel"1 mol Cu")/(cancel("2 mol e"^(-))) xx ("63.55 g Cu")/(cancel"1 mol Cu")`

`=` `color(blue)("1.92 g Cu"(s))`

can be deposited into the cathode.