Largest in size out of Na+, Ne and F- is:

1. Na+

2. Ne

3. F-

4. All are equal

Subtopic:  Atomic Size |
 77%
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Incorrect order of radius is:

1. Sr2+<Rb+<Br-<Se2-

2. Nb5+<Zr4+<Y3+

3. Co>Co2+>Co3+>Co4+

4. Ba2+<Cs+<Se2-<As3-

Subtopic:  Atomic Size |
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The electronic configuration of four elements are :
(I)   [Kr]5s1
(II)  [Rn]5f146d17s2
(III) [Ar]3d104s24p5
(IV) [Ar]3d64s2

Consider the following statements :
(i) I Shows variable oxidation state
(ii) II is a d-block element
(iii) The compound formed between I and III is covalent
(iv) IV shows single oxidation state

Which statement is True (T) or False (F)?

1. FTFF
2. FTFT
3. FFTF
4. FFFF

Subtopic:  Nature of Compound | Electronic Configuration |
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If the ionic radii of Kand F- are nearly the same (i.e., 1.34 Å), what are the atomic radii of K and F respectively?

1. 1.34 Ao, 1.34 Ao 2. 0.72 Ao, 1.96 Ao
3. 1.96 Ao, 0.72 Ao 4. 1.96 Ao, 1.34 Ao
Subtopic:  Atomic Size |
 73%
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X(g)→ X+(g) + e- , ∆H = +720 KJ mol-1

Calculate the amount of energy required to convert 110 mg of ‘X’ atom in gaseous state into X+ion. (Atomic wt. for X = 7 g/mol)

1. 10.4 kJ
2. 12.3 kJ
3. 11.3 kJ
4. 14.5 kJ
Subtopic:  Ionization Energy (IE) |
 68%
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Which is the correct order of ionization energies?

1. F-> F >Cl->Cl

2. F >Cl>Cl-> F-

3. F->Cl->Cl> F

4. F->Cl-> F >Cl

Subtopic:  Ionization Energy (IE) |
 51%
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The atomic radii of the elements across the second period of the periodic table

1. Decrease due to increase in atomic number

2. Decrease due to increase in effective nuclear charge 

3. Decrease due to increase in atomic wights 

4. increase due to increase in the effective nulear charge

Subtopic:  Atomic Size |
 85%
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The radii of the first bohr orbit of H(rH), He+ (rHe+) and Li2+(rLi2+) are in the order:

1.  rH = rHe= rLi+2

2.  rH < rHe+ < rLi2+

3.  rH > rHe+ > rLi2+

4.  rHe+ < rH < rLi2+

Subtopic:  Bohr's Theory |
 81%
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The first ionization enthalpies for three elements are 1314, 1680, and 2080 kJ mol-1 respectively. These elements are:

1. O, F and Ne

2. F, O and Ne

3. Ne, F and O

4. F, Ne and O

Subtopic:  Ionization Energy (IE) |
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The electronic configuration of an element with the largest difference between the 1st and 2nd ionization energies is

1.  1s2 2s2 2p6

2.  1s2 2s2 2p6 3s1

3.  1s2 2s2 2p63s2

4.  1s2 2s2 2p1

Subtopic:  Ionization Energy (IE) |
 75%
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