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.

Given : A^(2+)+2e^(-) rarr A(s)" "E^(c-)=0.08V B^(o+)+e^(-)rarr B(s)" "E^(c-)=-0.64V X_(2)(g)+2e^(-) rarr 2X^(c-)" "E^(c-)=1.03V Which of the following statements is // are correct ?

Given : Oxidation H_(2)O_(2) rarr O_(2)+2H^(o+)+2e^(-)" "E^(-)=-0.69V, 2F^(-)rarr F_(2)+2e^(-)" "E^(-)=-287V, Reduction : H_(2)O_(2)+2H^(o+)+2e^(-) rarr 2H_(2)O" "E^(-)=1.77V, 2I^(c-)rarr I_(2)+2e^(-)" "E^(c-)=-0.54V, Which of the following statements is // are correct ?

Given : Oxidation H_(2)O_(2) rarr O_(2)+2H^(o+)+2e^(-)" "E^(c-)=-0.69V, 2F^(c-)rarr F_(2)+2e^(-)" "E^(c-)=-287V, Reduction : H_(2)O_(2)+2H^(o+)+2e^(-) rarr 2H_(2)O" "E^(c-)=1.77V, 2I^(c-)rarr I_(2)+2e^(-)" "E^(c-)=-0.54V, Which of the following statements is // are correct ?

Given electrode potentials asre Fe^(3+)+e^(-) rarr Fe^(2+)," "E^(c-)=0.771V I_(2)+2e^(-) rarr 2I^(c-)," "E^(c-)=0.536V E^(c-)._(cell) for the cell reaction, Fe^(3+)+2I^(c-) rarr Fe^(2+)+I_(2) is

Peroxodisulphate salts, (e.g., Na_(2)S_(2)O_(8)) are strong oxidizing agents used be bleaching agents for fats, oils, ets. Given : O_(2)(g)+4H^(o+)(aq)+4e^(-)rarr 2H_(2)O(l)" "E^(c-)=1.23V S_(2)O_(8)^(2-)(aq)+2e^(-)rarr 2SO_(4)^(2-)(aq)" "E^(C-)=2.01V Which of the following statement is ( are ) correct ?

Redox reactions play a pivotal role in chemistry and biology. The values standard redox potential (E^(c-)) of two half cell reactions decided which way the reaction is expected to preceed. A simple example is a Daniell cell in which zinc goes into solution and copper sets deposited. Given below are a set of half cell reactions ( acidic medium ) along with their E^(c-)(V with respect to normal hydrogen electrode ) values. Using this data, obtain correct explanations for Question. I_(2)+2e^(-) rarr 2I^(c-)," "E^(c-)=0.54 Cl_(2)+2e^(-) rarr 2Cl^(c-), " "E^(c-)=1.36 Mn^(3+)+e^(-) rarr Mn^(2+), " "E^(c-)=1.50 Fe^(3+)+e^(-) rarr Fe^(2+)," "E^(c-)=0.77 O_(2)+4H^(o+)+4e^(-) rarr 2H_(2)O, " "E^(c-)=1.23 Among the following, identify the correct statement. (a)Chloride ion is oxidized by O_(2) . (b) Fe^(2+) is oxidized by iodine. (c)Iodide ion is oxidized by chlorine (d) Mn^(2+) is oxidized by chlorine.

Redox reactions play a pivotal role in chemistry and biology. The values standard redox potential (E^(c-)) of two half cell reactions decided which way the reaction is expected to preceed. A simple example is a Daniell cell in which zinc goes into solution and copper sets deposited. Given below are a set of half cell reactions ( acidic medium ) along with their E^(c-)(V with respect to normal hydrogen electrode ) values. Using this data, obtain correct explanations for Question. I_(2)+2e^(-) rarr 2I^(c-)," "E^(c-)=0.54 Cl_(2)+2e^(-) rarr 2Cl^(c-), " "E^(c-)=1.36 Mn^(3+)+e^(-) rarr Mn^(2+), " "E^(c-)=1.50 Fe^(3+)+e^(-) rarr Fe^(2+)," "E^(c-)=0.77 O_(2)+4H^(o+)+4e^(-) rarr 2H_(2)O, " "E^(c-)=1.23 While Fe^(3+) is stable, Mn^(3+) is not stable in acid solution because

Redox reactions play a pivotal role in chemistry and biology. The values standard redox potential (E^(o)) of two half cell reactions decided which way the reaction is expected to preceed. A simple example is a Daniell cell in which zinc goes into solution and copper sets deposited. Given below are a set of half cell reactions ( acidic medium ) along with their E^(c-)(V with respect to normal hydrogen electrode ) values. Using this data, obtain correct explanations for Question. I_(2)+2e^(-) rarr 2I^(c-)," "E^(c-)=0.54 Cl_(2)+2e^(-) rarr 2Cl^(c-), " "E^(c-)=1.36 Mn^(3+)+e^(-) rarr Mn^(2+), " "E^(c-)=1.50 Fe^(3+)+e^(-) rarr Fe^(2+)," "E^(c-)=0.77 O_(2)+4H^(o+)+4e^(-) rarr 2H_(2)O, " "E^(c-)=1.23 Sodium fusion extract obtained from aniline on treatment with iron (II) sulphate and H_(2)SO_(4) in the presence of air gives a Prussion blue precipitate. The blue colour is due to the formation of

Given : Fe^(2+)(aq)+2e^(-) rarr Fe(s), " "E^(c-)=-0.44V Al^(3)+3e^(-) rarr Al(s)," "E^(c-)=-1.66V Br^(2+)+2e^(-)rarr 2Br^(c-)(aq)" "E^(c-)=-1.08V The decreasing order of reducing power is ……………………………….. .

Given electrode potentials: Fe^(3+) + e^(-) rarr Fe^(2+) : E^(o) =0.771 V and I_(2) 2e^(-) rarr 2I^(-), E^(o) = 0.556 V then E^(o) for the cell reaction 2 Fe^(3+) 2I ^(-) rarr 2 Fe^(2+) + l_(2) will be: