Home
Class 12
CHEMISTRY
A 250 mL water solution containing 8.19 ...

A `250 mL` water solution containing `8.19 g` of sodium chloride at `300 K` is separated from pure water by means of a semi-permeable membrane. The pressure that must be applied above this solution in order to just prevent osmosis is "(`R=0.0821 L atm mol^(-1) K^(-1)`)"
a.13.80 atm ,b.27.58 atm ,c.23.34 atm ,d.9.80 atm

Text Solution

Verified by Experts

b.`pi=ixxCxxRxxT` [for NaCl,i=2]
=`2xx(8.19/58.5)xx(1000xx250)xx0.0821xx300=27.58 atm`
Promotional Banner

Topper's Solved these Questions

  • SOLUTIONS

    CENGAGE CHEMISTRY ENGLISH|Exercise Solved Examples|40 Videos
  • SOLUTIONS

    CENGAGE CHEMISTRY ENGLISH|Exercise Exercises (Linked Comprehension)|58 Videos
  • SOLID STATE

    CENGAGE CHEMISTRY ENGLISH|Exercise Ex 1.2 (Objective)|9 Videos
  • SURFACE CHEMISTRY

    CENGAGE CHEMISTRY ENGLISH|Exercise Archives Subjective|2 Videos

Similar Questions

Explore conceptually related problems

We have 200 mL of 6% urea solution at 27^(@)C . Osmotic pressure due to osmosis is ( R=0.0821L "atom mol"^(-1)K^(-1) )

The volume of 2.8g of CO at 27^(@)C and 0.821 atm pressure is (R=0.0821 lit. atm mol^(-1)K^(-1))

The density of O_2 gas at 127^o C and 4.0 atm pressure is (R = 0.082 L atm K^-1 mol^-1 )

The weight of CH_(4) in a 9L cylinder at 27^(@)C temperature and 16 atm pressure is (R = 0.08 L atm K^(-1) mol^(-1) )

The osmotic pressure of a solution containing 40 g of solute ("molecular mass 246") per litre at 27^(@)C is (R=0.0822 atm L mol^(-1))

A solution of sucrose (molar mass = 342 g/mol) is prepared by dissolving 68.4 g of it per litre of solution, what is its osmotic pressure at 273 K? (R = 0.081 L atm K^(-1) mol^(-1))

A 0.15 M aqueous solution of KCl exerts an osmotic pressure of 6.8 atm at 310 K. Calculate the degree of dissociation of KCl. (R = 0.0821 Lit. atm K^(-1)"mol"^(-1) ).

′X′mol of CO and 0.06 mol of C are enclosed in a vessel of capacity 5 L at 1atm and 27^o C .The value of ′ X ′ is (R=0.0821 atm mol^(−1) K^(−1) )

What is the density of N_(2) gas at 227^(@)C and 5.00 atm pressure? (R= 0.0821 atm K^(-1)mol^(-1))

For a 5% solution of urea (Molar mass - 60 g/mol), calculate the osmotic pressure at 300 K. [R = 0.0821 L atm K^(-1) mol^(-1)]