मराठी

Which of the following statements are correct? (i) Helium has the highest first ionisation enthalpy in the periodic table. (ii) Chlorine has less negative electron gain enthalpy than fluorine - Chemistry

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प्रश्न

Which of the following statements are correct?

(i) Helium has the highest first ionisation enthalpy in the periodic table.

(ii) Chlorine has less negative electron gain enthalpy than fluorine.

(iii) Mercury and bromine are liquids at room temperature.

(iv) In any period, atomic radius of alkali metal is the highest.

टीपा लिहा

उत्तर

(i) Helium has the highest first ionisation enthalpy in the periodic table.

(iii) Mercury and bromine are liquids at room temperature.

(iv) In any period, atomic radius of alkali metal is the highest.

Explanation:

He with 1s2 electronic configuration has the highest electron gain enthalpy in the periodic table.

In any period the alkali metals have lowest effective nuclear charge in that particular period for which its atomic radius is highest in that period.

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पाठ 3: Classification of Elements and Periodicity in Properties - Multiple Choice Questions (Type - I) [पृष्ठ ३१]

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एनसीईआरटी एक्झांप्लर Chemistry [English] Class 11
पाठ 3 Classification of Elements and Periodicity in Properties
Multiple Choice Questions (Type - I) | Q 18 | पृष्ठ ३१

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Would you expect the second electron gain enthalpy of O as positive, more negative or less negative than the first? Justify your answer.


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Describe the theory associated with the radius of an atom as it loses an electron.


Which of the following pair of elements would have a more negative electron gain enthalpy?

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Among halogens, the correct order of amount of energy released in electron gain (electron gain enthalpy) is ______.


The formation of the oxide ion, \[\ce{O2- (g)}\], from oxygen atom requires first an exothermic and then an endothermic step as shown below:

\[\ce{O (g) + e- -> O- (g) ; ∆H^Θ = - 14 kJ mol^{-1}}\]

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Thus process of formation of \[\ce{O^{2-}}\] in gas phase is unfavourable even though \[\ce{O^{2-}}\] is isoelectronic with neon. It is due to the fact that,


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Elements   ∆H1 ∆H2 egH
(i) Most reactive non-metal A. 419 3051 – 48
(ii) Most reactive metal B. 1681 3374 – 328
(iii) Least reactive element e C. 738 1451 – 40
(iv) Metal forming binary halide D. 2372 5251 + 48

Electronic configuration of some elements is given in Column I and their electron gain enthalpies are given in Column II. Match the electronic configuration with electron gain enthalpy.

Column (I) Column (II)
Electronic configuration Electron gain enthalpy/kJ mol–1
(i) 1s2 2s2 sp6 (A) – 53
(ii) 1s2 2s2 2p6 3s1 (B) – 328
(iii) 1s2 2s2 2p5 (C) – 141
(iv) 1s2 2s2 2p4 (D) + 48

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Reason: Fluorine has the highest negative electron gain enthalpy.


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