What is the density of CHCL3 vapor at 1.00atm and 298K?

Question

asked Aug 14, 2021 135k views

1 Answer

Sunysen · Answer 1 · 2021-08-18T03:41:29+0000

Answer:

4.8 g/mL is the density of chloroform vapor at 1.00 atm and 298 K.

Step-by-step explanation:

By ideal gas equation:

PV=nRT

Number of moles (n)

can be written as:
n=(m)/(M)

where, m = given mass

M = molar mass

$PV=(m)/(M)RT\\\\PM=(m)/(V)RT$

where,

(m)/(V)=d which is known as density of the gas

The relation becomes:

PM=dRT .....(1)

We are given:

M = molar mass of chloroform= 119.5 g/mol

R = Gas constant =
$0.0821\text{ L atm }mol^(-1)K^(-1)$

T = temperature of the gas =
298K

P = pressure of the gas = 1.00 atm

Putting values in equation 1, we get:

$1.00atm* 119.5g/mol=d* 0.0821\text{ L atm }mol^(-1)K^(-1)* 298K\\\\d=4.88g/L$

4.8 g/mL is the density of chloroform vapor at 1.00 atm and 298 K.