Question

An electron in an atom is revolving around the nucleus in a circular orbit of a radius of 5.3 x 10^-11 m, with a speed of 2 x 10⁶ m/s. Find the resultant orbital magnetic moment and angular momentum of the electron. [e = 1.6 x 10^-19 C, m_e= 9.1 x 10^-31 kg]

Answer 1

1. Data: r = 5.3 × 10^-11 m, v = 2 × 10⁶ m/s,

e = 1.6 × 10^-19 C, m_e = 9.1 × 10^-31 kg

The orbital magnetic moment of the electron is

`"M"_0 = 1/2`evr

`= 1/2(1.6 xx 10^-19)(2xx10^6)(5.3 xx 10^-11)`

= 8.48 × 10^-24 A.m²

The angular momentum of the electron is

L₀ = m_evr

= (9.1 × 10^-31)(2 × 10⁶)(5.3 × 10^-11)

= 96.46 × 10^-36 = 9.646 × 10^-35 kg.m²/s

Answer 2

Given:

r = `5.3 xx 10^-11` m,
v = `2 xx 10^6` ms^-1, 
e = `1.6 xx 10^-19` C,
m_e = `9.1 xx 10^-31` kg

To find:

1. Orbital magnetic moment (m_orb)
2. Angular momentum of electron 

Formulae:

1. m_orb = `"evr"/2`
2. L = mvr 

Calculation: 

From formula (i),

m_orb = `(1.6 xx 10^-19 xx 2 xx 10^6 xx 5.3 xx 10^-11)/2`

= `1.6 xx 5.3 xx 10^-24`

= `8.48 xx 10^-24` Am²

From formula (ii),

L = `9.1 xx 10^-31 xx 2 xx 10^6 xx 5.3 xx 10^-11`

= `96.46 xx 10^-36`

∴ L ≈ `underline(9.646 xx 10^-35)` kgm²/s 

1. Orbital magnetic moment is `8.48 xx 10^-24` Am²_.
2. Angular momentum of electron is `9.646 xx 10^-35` kgm²/s.