Question

20% surface sites have adsorbed n2. On heating n2 gas evolved from sites and were collected at 0.001 atm and 298 k in a container or volume is 2.46 cm3. Density of surface sites is 6.023 Ã 1014/cm2 and surface area is 1000 cm2, find out the no. Of surface sites occupied per molecule of n2.

Answer 1

Answer:

Explanation:

Partial pressure of N2 = 0.001 atm,

T = 298 K,V = 2.46 dm3.

From ideal gas law : pV = nRT

n= pV/RT

(N ) 0.001 *2.462/ 0.082 *298 = 10-7

No. of molecules of N2 = 6.023 ´ 10^23 ´* 10-7

= 6.023 ´ *1016

Now, total surface sites available

= 6.023 ´* 10^14 *´ 1000

= 6.023 * 1017

Surface sites used in adsorption = 20/100*6.023 ´* 10^17

= 2 ´ *6.023 ´ 10^16

Sites occupied per molecules = Number of sites/Number of molecules

= 2* 6.023* 10^16/6.023 10^16 = 2