IP values and EA values of elements A, B, C, and D are given in a tabular form. Identify the respective strongest oxidizing agent and reducing agent among them.
IP Values EA Values (A) 450 140 (B) 225 700 (C) 300 400 (D) 700 1035
Options-
(A) B, D
(B) B, A
(C) D, A
(D) D, B
| IP Values | EA Values | |
| (A) | 450 | 140 |
| (B) | 225 | 700 |
| (C) | 300 | 400 |
| (D) | 700 | 1035 |
Answer
580.5k+ views
Hint Here, IP signifies ionisation potential and EA signifies electron affinity. They are the interrelated concepts with oxidising and the reducing agents; sometimes directly or indirectly proportional.
Complete step by step solution:
Let us define the terms given and discuss the relationship between them;
Electron affinity-
It is the amount of energy released when an electron is added to a neutral atom or a molecule in the gaseous state to result in the formation of a negative ion.
Ionisation potential-
It is the amount of energy required to remove an electron from an isolated atom or a molecule.
Oxidising agent- An atom or a molecule which gains electrons and gets reduced to oxidise another species of atoms or molecules.
Reducing agent- An atom or a molecule which loses electrons and gets oxidised to reduce another species of atoms or molecules.
The relationships- $EA\propto \operatorname{Re}duction$ and $IP\propto \dfrac{1}{Oxidation}$
Thus,
D – IP: 700 and EA: 1035 (strongest oxidising agent)
B – IP: 225 and EA: 700 (strongest reducing agent)
Hence, option (D) is correct.
Note: In general, More the electron affinity, stronger will be the oxidising agent. Less the ionisation potential, stronger will be the reducing agent.
Complete step by step solution:
Let us define the terms given and discuss the relationship between them;
Electron affinity-
It is the amount of energy released when an electron is added to a neutral atom or a molecule in the gaseous state to result in the formation of a negative ion.
Ionisation potential-
It is the amount of energy required to remove an electron from an isolated atom or a molecule.
Oxidising agent- An atom or a molecule which gains electrons and gets reduced to oxidise another species of atoms or molecules.
Reducing agent- An atom or a molecule which loses electrons and gets oxidised to reduce another species of atoms or molecules.
The relationships- $EA\propto \operatorname{Re}duction$ and $IP\propto \dfrac{1}{Oxidation}$
Thus,
D – IP: 700 and EA: 1035 (strongest oxidising agent)
B – IP: 225 and EA: 700 (strongest reducing agent)
Hence, option (D) is correct.
Note: In general, More the electron affinity, stronger will be the oxidising agent. Less the ionisation potential, stronger will be the reducing agent.
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