Ionic radii vary with respect to the following factors:
a. Inversely proportional to the effective nuclear charge.
b. Directly proportional to the effective nuclear charge.
c. Directly proportional to the screening effect.
d. Inversely proportional to the screening effect.
Which of the following pairs of statements is/are correct?
1. a and c
2. c and d
3. a and b
4. b and d
Which of the following statements accurately describes the relationship of the ionic radius?
| 1. | It is inversely proportional to the effective nuclear charge. |
| 2. | It is inversely proportional to the square of the effective nuclear charge. |
| 3. | It is directly proportional to the screening effect. |
| 4. | It is directly proportional to the square of the screening effect. |
| 1. | Cations are smaller than their atoms, and anions are larger. |
| 2. | Cations and anions are both smaller than their atoms. |
| 3. | Cations and anions are both larger than their atoms. |
| 4. | Cations are larger than their atoms, and anions are smaller. |
The ionic radii (in Å) of the isoelectronic species \(\mathrm{N^{3-}}, \mathrm{O^{2-}}, and~ \mathrm{F^-}\) are respectively:
1. 1.36, 1.40 and 1.71
2. 1.36, 1.71 and 1.40
3. 1.71, 1.40 and 1.36
4. 1.71, 1.36 and 1.40
Which of the following is smallest in size?
1. Na+
2. F–
3. O2–
4. N3–
The increasing order of the ionic radii of the given isoelectronic species is :
1.
2.
3.
4.
Find the correct increasing order of ionic radii for the following isoelectronic species:
N³⁻, O²⁻, F⁻, Na⁺, Mg²⁺ and Al³⁺
1. Al³⁺ < Na⁺ < Mg²⁺ < O²⁻ < F⁻ < N³⁻