(C) The oxidizing power of a species is directly proportional to its standard reduction potential $(E^o)$.Comparing the given values:$Bi^{3+} (E^o = +

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$Bi^{3+} < Ce^{4+} < Pb^{4+} < Co^{3+}$

(C) The oxidizing power of a species is directly proportional to its standard reduction potential $(E^o)$.Comparing the given values:$Bi^{3+} (E^o = +0.20 \ V) Therefore,the order of increasing oxidizing power is $Bi^{3+} < Ce^{4+} < Pb^{4+} < Co^{3+}$.

Class 12 Chemistry Electrochemistry Electrode potential and ECell

Difficult

Given:
$Co^{3+} + e^- \longrightarrow Co^{2+}; E^o = 1.81 \ V$
$Pb^{4+} + 2e^- \longrightarrow Pb^{2+}; E^o = + 1.67 \ V$
$Ce^{4+} + e^- \longrightarrow Ce^{3+}; E^o = + 1.61 \ V$
$Bi^{3+} + 3e^- \longrightarrow Bi; E^o = + 0.20 \ V$
Oxidizing power of the species will increase in the order:

JEE MAIN 2019 All JEE MAIN

A
$Ce^{4+} < Pb^{4+} < Bi^{3+} < Co^{3+}$
B
$Co^{3+} < Pb^{4+} < Ce^{4+} < Bi^{3+}$
C
$Bi^{3+} < Ce^{4+} < Pb^{4+} < Co^{3+}$
D
$Co^{3+} < Ce^{4+} < Bi^{3+} < Pb^{4+}$

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Electrode potential and ECell

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For metals $A, B$ and $C$,the standard reduction potentials are $0.68 \ V, -2.50 \ V$ and $0.5 \ V$ respectively. What is the order of their reducing power?

Easy

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Given that $E_{O_2/H_2O}^o = +1.23 \ V$; $E_{S_2O_8^{2-}/SO_4^{2-}}^o = 2.05 \ V$; $E_{Br_2/Br^-}^o = +1.09 \ V$; $E_{Au^{3+}/Au}^o = 1.4 \ V$. The strongest oxidizing agent is

DifficultJEE MAIN 2019

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For the cell reaction:
$2 Fe^{3+}_{(aq)} + 2 I^{-}_{(aq)} \rightarrow 2 Fe^{2+}_{(aq)} + I_{2(aq)}$
$E^{\ominus}_{cell} = 0.24 \ V$ at $298 \ K$. The standard Gibbs energy $(\Delta_r G^{\ominus})$ of the cell reaction in $kJ \ mol^{-1}$ is:
[Faraday constant $F = 96500 \ C \ mol^{-1}$]

DifficultNEET 2019

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Which of the following will have a standard oxidation potential less than $SHE$?

Difficult

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The standard electrode potential $(E^o)$ of $Cu^{2+}/Cu$ is $+0.34 \, V$,while that of $Zn^{2+}/Zn$ is $-0.76 \, V$. Explain the reason for this difference.

Medium

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Given:$Co^{3+} + e^- \longrightarrow Co^{2+}; E^o = 1.81 \ V$$Pb^{4+} + 2e^- \longrightarrow Pb^{2+}; E^o = + 1.67 \ V$$Ce^{4+} + e^- \longrightarrow Ce^{3+}; E^o = + 1.61 \ V$$Bi^{3+} + 3e^- \longrightarrow Bi; E^o = + 0.20 \ V$Oxidizing power of the species will increase in the order:

Similar Questions

For metals $A, B$ and $C$,the standard reduction potentials are $0.68 \ V, -2.50 \ V$ and $0.5 \ V$ respectively. What is the order of their reducing power?

Given that $E_{O_2/H_2O}^o = +1.23 \ V$; $E_{S_2O_8^{2-}/SO_4^{2-}}^o = 2.05 \ V$; $E_{Br_2/Br^-}^o = +1.09 \ V$; $E_{Au^{3+}/Au}^o = 1.4 \ V$. The strongest oxidizing agent is

For the cell reaction:$2 Fe^{3+}_{(aq)} + 2 I^{-}_{(aq)} \rightarrow 2 Fe^{2+}_{(aq)} + I_{2(aq)}$$E^{\ominus}_{cell} = 0.24 \ V$ at $298 \ K$. The standard Gibbs energy $(\Delta_r G^{\ominus})$ of the cell reaction in $kJ \ mol^{-1}$ is:[Faraday constant $F = 96500 \ C \ mol^{-1}$]

Which of the following will have a standard oxidation potential less than $SHE$?

The standard electrode potential $(E^o)$ of $Cu^{2+}/Cu$ is $+0.34 \, V$,while that of $Zn^{2+}/Zn$ is $-0.76 \, V$. Explain the reason for this difference.

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Given:
$Co^{3+} + e^- \longrightarrow Co^{2+}; E^o = 1.81 \ V$
$Pb^{4+} + 2e^- \longrightarrow Pb^{2+}; E^o = + 1.67 \ V$
$Ce^{4+} + e^- \longrightarrow Ce^{3+}; E^o = + 1.61 \ V$
$Bi^{3+} + 3e^- \longrightarrow Bi; E^o = + 0.20 \ V$
Oxidizing power of the species will increase in the order:

For the cell reaction:
$2 Fe^{3+}_{(aq)} + 2 I^{-}_{(aq)} \rightarrow 2 Fe^{2+}_{(aq)} + I_{2(aq)}$
$E^{\ominus}_{cell} = 0.24 \ V$ at $298 \ K$. The standard Gibbs energy $(\Delta_r G^{\ominus})$ of the cell reaction in $kJ \ mol^{-1}$ is:
[Faraday constant $F = 96500 \ C \ mol^{-1}$]