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I(2) and Br(2) are added to a solution c...

`I_(2)` and `Br_(2)` are added to a solution containing `Br^(-)` and `T^(-)` ions what reaction will occur if `I_(2)+2 e^(-)rarr2I^(-),E^(@)=+0.54 V and Br_(2)+2e^(-)rarrBr^(-),E^(2)=+1.09 V`?

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To solve the problem, we need to analyze the given half-reactions and their standard electrode potentials. The reactions involve iodine (I₂), bromine (Br₂), and their respective ions (I⁻ and Br⁻). ### Step-by-Step Solution: 1. **Identify the Half-Reactions and Their Standard Potentials:** - The reduction half-reaction for iodine is: \[ I_2 + 2e^- \rightarrow 2I^-, \quad E^\circ = +0.54 \, \text{V} ...
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I2 and Br2 are added to a solution containing Br– and I– ions. What reaction will occur if, I_(2) + 2e^(-) rarr 2I^(-) , E^(0) = + 0.54V and Br_(2) + 2e^(-) rarr 2Br^(-) , E^(0) = +1.09 V?

Br_(2) and I_(2) are added to a solution containing 1M each of Br^(c-) and I^(c-) . What reaction will occur ?

Write the cell reaction that occurs when the folowing half cells are combined. I_(2)+2e^(-)rarr2I^(-)(1M), E^(@)=+0.54 V Br_(2)+2e^(-)rarrBr^(-)(1M),e^(@)=+1.08 V

Given that I_(2)+2e^(-)rarr2I^(-): E^(@)=0.54V Br_(2)+2e^(-)rarr2Br^(-):E^(@)=1.09V Predict which of the following is true

The standard reduction potential for half reactions for four different elements. A, B, C and D are: (i) A_(2) + 2e^(-) rarr 2A^(-), E^(@) = + 2.85 V (ii) B_(2) + 2e^(-) rarr 2B^(-), E^(@) = + 1.36 V (iii) C_(2) + 2e^(-) rarr 2C^(-), E^(@) = + 1.06 V (iv) D_(2) + 2e^(-) rarr 2D^(-), E^(@) = + 0.53 V The strongest oxidising reducing agents smong these :

Given that I_(2)+2e^(-) rarr 2I^(c-)," "E^(c-)=0.54V Br_(2)+2e^(-) rarr 2Br^(-)," "E^(c-)=1.69V Predict which of the following is true.

Write the cell reaction that occurs when the following half-cells are combined. I_(2)+2e^(-)to 2l^(-)(IM) , " "E^(@)=0.54 V Br_(2)+2e^(-)to 2Br^(-)(IM) , " "E^(@)=1.08 V

Goven : (i) CU^(2+) + 2e^- rarr Cu, E^@ = 0.337 V (ii) Cu^(2+) +e^- rarr Cu^(+) , E^2=0.1 5 3 V .

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