The radius of a nucleus is given by r0A1/3, where r0 = 1.3 × 10-15 m and A is the mass number of the nucleus. The lead nucleus has A =206. The electrostatic force between two protons in this nucleus is approximately

Question

The radius of a nucleus is given by r0A1/3, where r0 = 1.3 × 10-15 m and A is the mass number of the nucleus. The lead nucleus has A =206. The electrostatic force between two protons in this nucleus is approximately (A) 102 N (B) 107 N (C) 1012 N (D) 1017 N

Tardigrade Admin · Accepted Answer

Taking protons at dimetrically opposite points of nucleus,

Force of electrostatic repulsion,

F = \frac{k ( e ) ( e )}{r ^{2}} = \frac{k e ^{2}}{( r _{0} A ^{1/3} ) ^{2}} = \frac{k \cdot e ^{2}}{r _{0}^{2} \cdot A ^{2/3}}

Substituting values in above equation, we get

F = \frac{9 \times 1 0 ^{9} \times ( 1.6 \times 1 0 ^{- 19} ) ^{2}}{( 13 \times 1 0 ^{- 15} ) ^{2} ( 206 ) ^{2/3}}

= 0.039 \times 1 0^{2}

N

Q. The radius of a nucleus is given by $r_{0} A^{1/3}$ , where $r_{0} = 1.3 \times 1 0^{- 15} m$ and $A$ is the mass number of the nucleus. The lead nucleus has $A = 206$ . The electrostatic force between two protons in this nucleus is approximately

$1 0^{2}$ N

$1 0^{7}$ N

$1 0^{12}$ N

$1 0^{17}$ N

Q. The radius of a nucleus is given by r0​A1/3, where r0​=1.3×10−15m and A is the mass number of the nucleus. The lead nucleus has A=206. The electrostatic force between two protons in this nucleus is approximately

102 N

107 N

1012 N

1017 N

Taking protons at dimetrically opposite points of nucleus, Force of electrostatic repulsion, F=r2k(e)(e)​=(r0​A1/3)2ke2​=r02​⋅A2/3k⋅e2​ Substituting values in above equation, we get F=(13×10−15)2(206)2/39×109×(1.6×10−19)2​ =0.039×102N

Q. The radius of a nucleus is given by $r_{0} A^{1/3}$ , where $r_{0} = 1.3 \times 1 0^{- 15} m$ and $A$ is the mass number of the nucleus. The lead nucleus has $A = 206$ . The electrostatic force between two protons in this nucleus is approximately

$1 0^{2}$ N

$1 0^{7}$ N

$1 0^{12}$ N

$1 0^{17}$ N