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Atomic structure & Periodic Table

Total questions: 15

Worksheet time: 8mins

Name
Class
Date
1.

Bohr’s model successfully explain

a)

Stability of the atom

b)

Atomic Spectra

c)

Wave nature of electron

d)

Both stability of the atom and atomic spectra

2.

Quantum number value for 2p orbitals are

a)

a) n=2, l=1

b)

a) n=1, l=2

c)

a) n=1, l=0

d)

n=2, l=0

3.

Which orbital has the higher screening effect?

a)

s

b)

p

c)

d

d)

f

4.

Principal Quantum Number denotes

a)

Orbit

b)

Orbital

c)

Sub shell

d)

Spin

5.

The modern periodic table is arranged based upon atomic

a)

Mass

b)

Number

c)

Radius

d)

Density

6.

Which subshell has the highest 'n+l' value?

a)

2s

b)

2p

c)

3d

d)

4s

7.

Splitting of spectral lines in presence of Magnetic field known as

a)

de-Broglie effect

b)

Bohr effect

c)

Stark Effect

d)

Zeeman effect

8.

Atomic Spectra is

a)

Continuous

b)

Line

c)

Both continuous and line

d)

None of these

9.

Across the period atomic size decreases due to

a)

Shielding effects

b)

Increase in nuclear force

c)

Decrease in nuclear force

d)

Photoelectric effect

10.

Which of the following has the highest 2nd ionization potential?

a)

N

b)

F

c)

O

d)

C

11.

Bohr's model is unable to explain

a)

Wave nature of electron

b)

3D model of atom

c)

Existence of orbital

d)

All of these

12.

Heisenberg's uncertainty principle is related to

a)

Wave nature of electron

b)

Existence of subshell

c)

Existence of orbit

d)

Atomic spectra

13.

The consequence of Electronegativity

a)

Anion formation

b)

Generation of Dipole moment

c)

Bond formation

d)

All of these

14.

Ionization potential depends on

a)

Nuclear charge

b)

Size of the atom

c)

Screening effect

d)

All of these

15.

Polarization is favorable when

a)

Small anion & small cation

b)

Large anion & Large cation

c)

Small anion & Large cation

d)

None of these