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Question

Given $${ E }^{ \circ }_{ { Ag }^{ + }/Ag }=0.80\quad V,{ E }^{ \circ }_{ { Mg }^{ 2+ }/Mg }=2,37\quad V,{ E }^{ \circ }_{ { Cu }^{ 2+ }/Cu }=0.34\quad V,\quad { E }^{ \circ }_{ { Hg }^{ 2+ }/Hg }=0.79\quad V.$$ Which of the following statement is correct

A
$${ AgNO }_{ 3 }$$
B
$$Mg{ \left( { NO }_{ 3 } \right) }_{ 2 }$$ can not be stored in copper vessel
C
$${ CuCI }_{ 2 }$$ can be stored in silver vessel
D
$${ HgCI }_{ 2 }$$ can be stored in copper vessel
Solution
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Correct option is A. $${ AgNO }_{ 3 }$$

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Similar Questions
Q1

Given : EAg|Ag=0.80V,EMg2+|Mg=2.37V; ECu2+|Cu=0.34V.EHg2+|Hg=0.79V

Which of the following statements is/ are incorrect ?


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Q2
Given: EoAg+/Ag=0.80V,EoMg2+/Mg=2.37V,EoCu2+/Cu=0.34V,EoHg2+/Hg=0.79V.
Which of the following statement is correct?
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Q3
Given the standard reduction potentials,
EK+/K=2.93 V,EAg+/Ag=+0.80 V,EHg2+/Hg=0.79 V
EMg2+/Mg=2.37 V,ECr3+/Cr=0.74 V.
The correct increasing order of reducing power is:
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Q4

Given: EAg|Ag=+0.80V;ECo2+|Co=0.28V,

ECu2+|Cu=+0.34V,EZn2+|Zn=0.76V

Which metal will corrode fastest?


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Q5
The voltage of a cell whose half cell reactions are given below is
Mg2++2eMg(s);E=2,37V
Cu2++2eCu(s);E=+0.34V
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