The distance between two electrons in vacuum is 5.3 nm. Determine the work needed to reduce the distance to 1/4 of the original distance.

asked Aug 4, 2020 154k views

1 vote

7.1k points

Please log in or register to add a comment.

2 votes

Answer:

Step-by-step explanation:

Given

Distance between two electron is
(r_1)5.3 nm

Charge of electron
=1.6* 10^(-19) C

Final distance
$(r_2)=\farc{r_1}{4}=1.325 nm$

Work done
$=kq_1q_2\left ( (1)/(r_2)-(1)/(r_1)\right )$

$W=(1)/(4\pi \epsilon _)q_1q_2\left ( (1)/(r_2)-(1)/(r_1)\right )$

$W=9* 10^9* (1.6* 10^(-19))^2\left ( (1)/(1.325* 10^(-9))-(1)/(5.3* 10^(-9))\right )$

W=9* 10^9* 2.56* 10^(-38)* 5.66* 10^8 J

W=1.304* 10^(-19) J

Mliebelt answered Aug 8, 2020

7.4k points

Welcome to QAmmunity.org, where you can ask questions and receive answers from other members of our community.

8.8m questions

11.4m answers