The electronic configuration of Palladium is:
1. [Kr] 5f3 6d1 7s2
2. [Kr] 5f5 6d1 7s2
3. [Kr] 5f2 6d1 7s2
4. None of the above.
The formation of the oxide ion O2– (g), from the oxygen atom requires first an exothermic and then an endothermic step as shown below,
Thus, the process of formation of O2– in the gas phase is unfavorable even though O2– is isoelectronic with neon. It is due to the fact that:
1. | Electron repulsion outweighs the stability gained by achieving noble gas configuration. |
2. | O– ion has a comparatively smaller size than the oxygen atom. |
3. | Oxygen is more electronegative. |
4. | Addition of electrons in oxygen results in a large size of the ion. |
1. Cr > Mn > V > Ti
2. V > Mn > Cr > Ti
3. Mn > Cr > Ti > V
4. Ti > V > Cr > Mn
Identify the correct order of the size of the following:
1.
2.
3.
4.
For the second-period elements, the correct increasing order of first ionisation enthalpy is:
1. | Li < Be < B < C < O < N < F < Ne |
2. | Li < Be < B < C < N < O < F < Ne |
3. | Li < B < Be < C < O < N < F < Ne |
4. | Li < B < Be < C < N < O < F < Ne |
The incorrect order of electronegativity is :
1. | Cl > S > P > Si | 2. | Si > Al > Mg > Na |
3. | F > Cl > Br > I | 4. | None of the above. |
The element having electronic configuration [Kr]4d104f14, 5s25p6, 6s2 belongs to:
1. s-block
2. p-block
3. d-block
4. f-block
The electronegativity of the following elements increases in the order:
1. C, N, Si, P
2. N, Si, C, P
3. Si, P, C, N
4. P, Si, N, C
The order of screening effect of electrons of s, p, d and f orbitals of a given shell of an atom on electrons in its outer shell is :
1. s > p > d > f
2. f > d > p > s
3. p < d < f < s
4. f > p > s > d
The elements in which electrons are progressively filled in 4f-orbitals are called:
1. | Actinoids | 2. | Transition elements |
3. | Lanthanoids | 4. | Halogens |