Osmotic pressure of a solution containing 2 g of a protein (soluble in water) per 300 cm3 of the solution is 20 mm of Hg at 27°C. Calculate the molecular mass of protein. (R = 0.0821 L atm K−1 mol−1) - Chemistry (Theory)

Question

Osmotic pressure of a solution containing 2 g of a protein (soluble in water) per 300 cm³ of the solution is 20 mm of Hg at 27°C. Calculate the molecular mass of protein.

(R = 0.0821 L atm K⁻¹ mol⁻¹)

Numerical

Solution

Given:

Mass of protein (solute) = 2 g

Volume of solution = 300 cm³ = 0.300 L

Osmotic pressure π = 20 mm Hg = 20760 ≈ 0.02632 atm

Temperature T = 27°C = 300 KT

Gas constant R = 0.0821 L atm K⁻¹ mol⁻¹

By using osmotic pressure formula

`pi = n/V RT`

⇒ `n = (pi V)/(RT)`

`n = (0.02632 xx 0.300)/(0.0821 xx 300)`

= `0.007896/24.63`

= 3.206 × 10⁻⁴mol

Molar mass = `"Mass of solute"/"Moles"`

= `2/(3.206 xx 10^-4)`

= 6240 g/mol

∴ The molecular mass of the protein is 6240 g/mol

shaalaa.com

Is there an error in this question or solution?

Q 2.82 Q 2.81 Q 2.83

Chapter 2: Solutions - REVIEW EXERCISES [Page 99]

APPEARS IN

Nootan Chemistry Part 1 and 2 [English] Class 12 ISC

Chapter 2 Solutions
REVIEW EXERCISES | Q 2.82 | Page 99

Osmotic pressure of a solution containing 2 g of a protein (soluble in water) per 300 cm3 of the solution is 20 mm of Hg at 27°C. Calculate the molecular mass of protein. (R = 0.0821 L atm K−1 mol−1) - Chemistry (Theory)

Advertisements

Advertisements

Question

Advertisements

Solution

APPEARS IN

Select a course

Osmotic pressure of a solution containing 2 g of a protein (soluble in water) per 300 cm3 of the solution is 20 mm of Hg at 27°C. Calculate the molecular mass of protein. (R = 0.0821 L atm K−1 mol−1) - Chemistry (Theory)

Advertisements

Advertisements

Question

Advertisements

SolutionShow Solution

APPEARS IN

Select a course

Solution