Q.From E0 values given in Table 5.1, predict whether Sn can reduce I2 or Ni2+.
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Electrochemical Series
The Intuition: A "Tug-of-War" for Electrons
Imagine a chemical reaction where two substances are fighting over electrons. One substance wants to give away electrons (get oxidised), the other wants to take electrons (get reduced). Who wins? That depends on how strongly each substance holds onto its electrons.
Some metals, like sodium, are extremely generous — they practically throw their electrons at anyone. Others, like gold, are miserly — they cling to their electrons and rarely let go.
The Electrochemical Series is simply a ranking of substances based on how badly they want to keep their electrons (or how eagerly they want to give them up). It's a leaderboard of electron greed.
The Precise Statement
The Electrochemical Series (also called the Activity Series or Reactivity Series) is a list of elements — mostly metals — arranged in order of their standard electrode potentials (E⊖). These potentials are measured in volts, relative to the Standard Hydrogen Electrode (SHE), which is arbitrarily assigned a value of 0.00 V.
ESHE⊖=0.00 V
A more negative E⊖ means the element is a stronger reducing agent — it readily loses electrons and gets oxidised. A more positive E⊖ means the element is a stronger oxidising agent — it readily gains electrons and gets reduced.
Here is the series for some common metals and hydrogen:
| Element | Half-Reaction (Reduction) | E⊖ (V) |
|---|---|---|
| Lithium | Li++e−→Li | −3.04 |
| Potassium | K++e−→K | −2.93 |
| Calcium | Ca2++2e−→Ca | −2.87 |
| Sodium | Na++e−→Na | −2.71 |
| Magnesium | Mg2++2e−→Mg | −2.37 |
| Aluminium | Al3++3e−→Al | −1.66 |
| Zinc | Zn2++2e−→Zn | −0.76 |
| Iron | Fe2++2e−→Fe | −0.44 |
| Tin | Sn2++2e−→Sn | −0.14 |
| Lead | Pb2++2e−→Pb | −0.13 |
| Hydrogen | 2H++2e−→H2 | 0.00 |
| Copper | Cu2++2e−→Cu | +0.34 |
| Silver | Ag++e−→Ag | +0.80 |
| Gold | Au3++3e−→Au | +1.50 |
The half-reactions are written as reductions (gaining electrons). A more negative E⊖ means the reverse reaction — oxidation (losing electrons) — is more favourable. So lithium, with −3.04 V, is the best at giving away electrons, not keeping them.
What the Series Tells You
1. Predicting Reactivity
The lower (more negative) a metal is in the series, the more reactive it is. Lithium, potassium, and sodium react violently with water. Gold and platinum sit at the bottom and do almost nothing.
2. Displacement Reactions
A metal higher in the series (more negative E⊖) can displace a metal lower in the series from its salt solution. For example, zinc can displace copper from copper sulphate:
Zn(s)+CuSO4(aq)→ZnSO4(aq)+Cu(s)
Why? Zinc loses electrons more readily than copper. The zinc atoms donate electrons to the Cu2+ ions, turning them into copper metal.
To check if a displacement happens: the metal doing the displacing must have a more negative E⊖ than the metal being displaced. If both are on the same side of hydrogen, the one with the more negative value wins.
3. Direction of Redox Reactions …
Sn can reduce I2 (its couple lies above Sn's in the table) but cannot reduce Ni2+ (its couple lies below Sn's). …
Step 1. Rule: a reducing agent can reduce any oxidising agent that lies ABOVE it in the electrochemical series (higher E0).
Step 2. Sn's couple, Sn2+/Sn, has E0=-0.136V. I2's couple, I2/I-, has E0=+0.535V, which lies ABOVE Sn's couple in Table 5.1.
Step 3. So Sn CAN reduce I2: Ecell0=E0(I2/I−)−E0(Sn2+/Sn)=0.535−(−0.136)=0.671V>0, spontaneous.
Step 4. Ni2+'s couple, Ni2+/Ni, has E0=-0.257V, which lies BELOW Sn's couple in Table 5.1. …
Locate Sn's couple in Table 5.1 and check whether I2's and Ni2+'s couples lie above (reducible …
- Comparing E0 magnitudes without regard to sign/position in the table -- the rule is strictly about relative POSITION (above/be …
- CBSE 2026Set A1 markMCQQ.The standard reduction potentials of metals A, B, C and D are -3.05, -1.66, -0.40 and +0.80 volt respectively. Which metal of the following would have the highest reducing power ?(a) A(b) B(c) C(d) D
›Reveal solutionSolution
The more negative the standard reduction potential, the stronger the tendency to be oxidised, i.e. the greater the reducing power. A has -3.05 V, the most negative.
A species with a very negative reduction potential is easily oxidised (gives up electrons readily), so it is a strong reducing agent. …
- CBSE 2026Set ANNUAL1 markMCQQ.Copper sulphate cannot be stored in zinc vessel. This is because(a) EMF of the reaction is negative(b) EMF of the reaction is positive(c) reduction potential value of Zn is more than Cu(d) reduction potential value of Cu is negative
›Reveal solutionSolution
Zinc's much lower (more negative) standard reduction potential than copper's makes the displacement reaction's EMF positive, i.e. spontaneous — which is exactly why Zn metal corrodes when it touches CuSO4 solution.
Standard reduction potentials: E∘(Cu2+/Cu)=+0.34 V; E∘(Zn2+/Zn)=−0.76 V. Since Zn2+/Zn has the far more negative (lower) reduction potential, Zn metal is the stronger reducing agent and is oxidised preferentially:
Zn(s)+Cu2+(aq)→Zn2+(aq)+Cu(s)
Ecell∘=Ecathode∘−Eanode∘=0.34−(−0.76)=+1.10 V
Since ΔG∘=−nFEcell∘, a positive Ecell∘ gives a negative ΔG∘ — the reaction is thermodynamically spontaneous. So CuSO4 solution spontaneously reacts with a zinc container, dissolving the zinc (corroding it) and depositing copper metal on it.
Why the other options are wrong: …
- CBSE 2023Set F1 markMCQQ.The standard electrode potentials of A, B, C and D metals are -3.05 V, -1.66 V, -0.40 V and +0.8 V respectively. Which of the following would have the highest reducing power?(a) A(b) B(c) C(d) D
›Reveal solutionSolution
The more negative the standard reduction potential, the stronger the reducing agent — so A (-3.05 V) has the highest reducing power.
Reducing power measures the tendency of a metal to lose electrons (get oxidised). A more negative standard electrode (reduction) potential means the metal is more easily oxidised and is therefore a stronger reducing agent.
…
- CBSE 2021Set A1 markMCQQ.The standard reduction potential values of elements A, B and C are + 0.68 V, -2.50 V and -0.50 V respectively. The order of their reducing power is(a) A > B > C(b) A > C > B(c) C > B > A(d) B > C > A
›Reveal solutionSolution
Lower (more negative) standard reduction potential means a stronger tendency to be oxidised, i.e. a stronger reducing agent.
Reducing power measures how readily a species gives up electrons (undergoes oxidation). The more negative the standard reduction potential (E°), the greater the tendency to lose electrons, so the stronger the reducing agent.
Given:
- A: E° = +0.68 V (least negative → weakest reducing agent) …
- CBSE 2020Set WA1 markMCQQ.The standard electrode potentials of four metals A, B, C and D are +1.5V, −2.0V, +0.34V and −0.76V respectively. The order of decreasing activity (reactivity) of these metals is:(a) A>C>D>B(b) B>D>C>A(c) A>B>D>C(d) D>A>B>C
›Reveal solutionSolution
Lower (more negative) E∘ ⇒ stronger reducing agent ⇒ more reactive metal; so B>D>C>A.
Concept: A metal's chemical activity (its tendency to lose electrons and get oxidised) increases as its standard reduction potential becomes more negative. Metals high in the activity series (like the alkali/alkaline-earth metals) have strongly negative E∘.
…
- CBSE 2019Set ANNUAL1 markMCQQ.The reduction potential of the couples A+/A and B+/B are −1.66V and 0.80V respectively. Which of the following reactions will occur when the two systems are combined?(a) A++B+⟶A+B(b) A++B⟶A+B+(c) A+B+⟶A++B(d) A+B⟶A++B+
›Reveal solutionSolution
A has the more negative (lower) reduction potential, so it is the better reducing agent and is oxidised, while B+ (higher reduction potential) is reduced.
…
- CBSE 2018Set ANNUAL1 markMCQQ.The standard reduction potential of four alkali metals A, B, C and D are -3.06, -1.63, -0.40 and -0.80 volt respectively. Strongest reducing agent amongst them is(a) A(b) B(c) C(d) D
›Reveal solutionSolution
Most negative reduction potential = strongest tendency to be oxidised = strongest reducing agent, i.e. A (-3.06 V).
A reducing agent works by giving up electrons (being oxidised). The more negative the standard reduction potential, the greater the tendency of that species to undergo oxidation rather than reduction, and hence the stronger it is as a reducing agent.
…
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