SELECT * FROM question_mgmt as q WHERE id=201 AND status=1 SELECT id,question_no,question,chapter FROM question_mgmt as q WHERE courseId=2 AND subId=9 AND chapterId=44 and ex_no='1' AND status=1 ORDER BY CAST(question_no AS UNSIGNED)

Question:

Which of the following pairs of elements would have a more negative electron gain enthalpy?
(i) O or F
(ii) F or Cl

Answer:

(i) Oxygen is a p block element present in 16th group and 2nd period while fluorine is also a p block element present in 17th group and 2nd period. An F atom has one proton and one electron more than O and as an electron is being added to the same shell, the atomic size of F is smaller than that of O. As F contains one proton more than O, its nucleus can attract the incoming electron more strongly in comparison to the nucleus of O atom. Also, F needs only one more electron to attain the stable noble gas configuration. Hence, the electron gain enthalpy of F is more negative than that of O.

(ii) Fluorine F and Cl belong to the same 17th group of the periodic table and they are p block elements with fluorine belonging to 2nd period and chlorine to 3rd group of periodic table. The electron gain enthalpy usually becomes less negative on moving down a group. However, in this case, the value of the electron gain enthalpy of Cl is more negative than that of F because of very small size of F atom. As a result there are strong interelectronic repulsions in the relatively small 2p subshell of F, thus the incoming electron does not feel much attraction. Therefore its electron affinity is small. 


SELECT ex_no,question,question_no,id,chapter FROM question_mgmt as q WHERE courseId='2' AND subId='9' AND ex_no!=0 AND status=1 and id!=201 ORDER BY views desc, last_viewed_on desc limit 0,10
SELECT ex_no,question,question_no,id,chapter FROM question_mgmt as q WHERE courseId='2' AND subId='9' AND ex_no!=0 AND status=1 and id!=201 ORDER BY last_viewed_on desc limit 0,10

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  • 4 months ago

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