Ionisation energy in group 1A varies in the decreasing order as | Classification of Elements and Periodicity in Properties

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 Multiple Choice QuestionsMultiple Choice Questions

181.

The one electron species having ionisation energy of 54.4 eV is

  • He+

  • H

  • Be2+

  • Be3+


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182.

Ionisation energy in group 1A varies in the decreasing order as

  • Li > Na > K > Cs

  • Na > Li > K > Cs

  • Li > Cs > K  Na

  • K > Cs > Na > Li


A.

Li > Na > K > Cs

Atoric size increases as we move from top to down in a group, therefore, the amount of energy required for ejection of an electron from atom decreases, i.e. ionsaton energy decreases. Hence, the correct order of IE1 is Li > Na > K > Cs.


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183.

An example of a non-stoichiometric compound is

  • PbO

  • NiO2

  • Al2O3

  • Fe3O4


184.

The equation used to represents the electron gain enthalpy is

  • X(g) + e- → X-(g)

  • X(s) + e- → X-(g)

  • X(g) → X+(g) + e-

  • X(s) → X+(g) + e-


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185.

An element in +2 oxidation state has 24 electrons. The atomic number of the element and the number of unpaired electrons in it respectively are

  • 24 and 4

  • 26 and 4

  • 24 and 2

  • 26 and 5


186.

Among the following, the isoelectronic specie (s) is/are

(i)  O2-, F-, Na+, Mg2+

(ii) Na+, Mg+, Al3+, F-

(iii) N3-,  O2-, F-, Ne

  • (i) and (ii)

  • (i), (ii) and (iii)

  • (ii) and (iii)

  • (i) and (iii)


187.

What is the atomic number of the element with symbol Uus?

  • 117

  • 116

  • 115

  • 114


188.

The increasing order of the first ionisation enthalpies of the elements B, P, S and F is 

  • B < S < P < F

  • F < S < P < B

  • P < S < B < F

  • B < P < S < F


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189.

The electronic configuration of 59Pr ( praseodimium) is

  • [54Xe] 4f25d16s2

  • [54Xe] 4f15d16s2

  • [54Xe] 4f36s2

  • [54Xe] 4f35d2


190.

The size of the iso-electronic species Cl-, Ar and Ca2+ is affected by:

  • nuclear charge

  • Prinicpal quantum number of valence shell

  • azimuthal quantum number of valence shell

  • electron-electron interaction in the outer orbitals


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