Question 1

Calculate the electrical double layer length for pure water at pH 7. Assume temperature is 300K, and give your answer in units of nm.

Question 2

Answer:

$\lambda_D =964 \ nm$

Step-by-step explanation:

We know, the double layer length of pure water is given by :

$\lambda _(D)= \left((\epsilon k_B T)/(2e^2z^2N_AC_i)\right)^(1/2)$

$\lambda _(D)= \left(((78.3)*(8.85 * 10^(-21))* (1.38 * 10^(-23))* 300)/(2 *(1.6 * 10^(19))^2 * 1^2 * (6.023 * 10^(23))* (10^(-7)) * 1000 )\right)^(1/2)$

Since, pH = -log
$H^+$

$[H^+]=10^(-7)$

$\lambda_D = \left(93.05 * 10^_(-14)\right)^(1/2)$

$\lambda_D = √(93.05) * 10^(-7)$

$\lambda_D =9.64 * 10^(-7)$

$\lambda_D =964 * 10^(-9) \ m$

$\lambda_D =964 \ nm$

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