The edge length of fee cell is 508 pm. If radius of cation is 110pm,then the radius of the anion would be ___. a) 120pm b) 110pm c) 144pm d) 130pm

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asked Jul 9, 2024 139k views

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Foumpie · Answer 1 · 2024-07-14T06:18:05+0000

Answer :

c) 144pm ✓

Step-by-step explanation :

We know that,

For any ionic substance in F.C.C arrangement,

$2(r {}^( + ) + r {}^( - ) ) = edge \: length$

Where,

r+ = radius of the cation
r- = radius of the anion

Plugging in the values,

$2(110pm+ r {}^( - ) ) = 508pm \\ 220pm \: + 2r {}^( - ) = 508pm \\ 2r {}^( - ) = 508pm - 220pm \\ 2r {}^( - ) = 288pm \\ r {}^( - ) = 288pm / 2 \\ r {}^( - ) = 144pm$

Thus, the radius of the anion would be equal to 144pm.

The edge length of fee cell is 508 pm. If radius of cation is 110pm,then the radius of the anion would be ___. a) 120pm b) 110pm c) 144pm d) 130pm

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The edge length of fee cell is 508 pm. If radius of cation is 110pm,then the radius of the anion would be ___. a) 120pm b) 110pm c) 144pm d) 130pm​

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The edge length of fee cell is 508 pm. If radius of cation is 110pm,then the radius of the anion would be ___. a) 120pm b) 110pm c) 144pm d) 130pm