Give the $E_{cell}$ equation for the general reaction: $aA + bB \to cC + dD$.

  • A
    $E_{cell} = E^0_{cell} - \frac{RT}{nF} \ln \frac{[C]^c [D]^d}{[A]^a [B]^b}$
  • B
    $E_{cell} = E^0_{cell} + \frac{RT}{nF} \ln \frac{[C]^c [D]^d}{[A]^a [B]^b}$
  • C
    $E_{cell} = E^0_{cell} - \frac{nF}{RT} \ln \frac{[C]^c [D]^d}{[A]^a [B]^b}$
  • D
    $E_{cell} = E^0_{cell} - \frac{RT}{nF} \ln \frac{[A]^a [B]^b}{[C]^c [D]^d}$

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$EMF$ of the following concentration cell will be ............. $V$
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