Among the following pairs of orbitals which orbital will experie

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 Multiple Choice QuestionsShort Answer Type

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231.

Among the following pairs of orbitals which orbital will experience the large effective nuclear charge? (i) 2s and 3s  (ii) 4d and 4f  (iii) 3d and 3p.


Force of attraction between nucleus and the electron present around it depend upon the distance between the nucleus and the orbital, in which electron present. As the distance increases, the effective nuclear charge also decreases. 

(i) Out of 2s and 3s orbitals: 2s orbital is closer to the nucleus than 3s orbital. Hence 2s orbital will experience larger effective nuclear charge.

(ii) Out of 4d and 4f orbitals:  4d orbital is closer to the nucleus than 4f orbital. Hence 4d orbital will experience larger effective nuclear charge.

(iii) Out of 3d and 3p orbitals: 3p orbital is closer to the nucleus than 3d orbital. Hence 3p orbital will experience large effective nuclear charge.

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232.

The unpaired electrons in Al and Si are present in 3p orbital. Which electrons will experience more effective nuclear charge from the nucleus ?

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 Multiple Choice QuestionsLong Answer Type

233.

Discuss the shapes of p-orbitals.

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 Multiple Choice QuestionsShort Answer Type

234.

How will you differentiate between s- and p-orbitals?

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235.

What is Hund's rule of Maximum Multiplicity?

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236.

When there is a group of empty orbitals with equal energies (2px, 2py, 2pz), why are electrons first alloted singly to different orbitals ?

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237. Write the electronic configurations of the first ten elements in the periodic table.
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 Multiple Choice QuestionsLong Answer Type

238.

Write the electronic configuration of elements from atomic number 11 to atomic number 20. Also name the elements.

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239.

Using the Aufbau principle, write the electronic configuration for the ground state of the following atoms:

(i) Boron (Z = 5)

(ii) Neon (Z = 10)

(iii) Al (Z = 13)

(iv) Chlorine (Z = 17)

(v) Calcium (Z = 20).

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 Multiple Choice QuestionsShort Answer Type

240.

Give the electronic configuration of following ions:
(i) H- (ii) F- (iii) Mg2+ (iv) S2-

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