90 g non-volatile, non-dissociative solute is added to 1746 g water to form a dilute, ideal solution. The vapour pressure of water has decreased from 300 mm of Hg to 291 mm of Hg . The molecular weight of solute is.

Question

90 g non-volatile, non-dissociative solute is added to 1746 g water to form a dilute, ideal solution. The vapour pressure of water has decreased from 300 mm of Hg to 291 mm of Hg . The molecular weight of solute is. (A) 90 (B) 60 (C) 30 (D) 15

Tardigrade Admin · Accepted Answer

( textP - ( textP) texts/ textP) = ( textX) textsolute × i (i = 1 ∴ textsolute is non-ioinsable) (300 - 291/300)=(90 / M/(90)M + (1746)18 (9/300)=((90/M)/(90)M + 97) (3 × 90/M × 100)+(97 × 3/100)=(90/M) (18/10 M)+(97 × 3/100)=(90/M) (90/M)-(18/10 M)-(97 × 3/100) (900 - 18/10 M)=(97 × 3/10) M=(882 × 10/97 × 3)=30.3≅30

Q. 90g non-volatile, non-dissociative solute is added to 1746g water to form a dilute, ideal solution. The vapour pressure of water has decreased from 300mm of Hgto291mmofHg . The molecular weight of solute is.

90

60

30

15

PP−(P)s​​=(X)solute​×i(i=1∴solute is non-ioinsable) 300300−291​=M90​+181746​90/M​ 3009​=M90​+97M90​​ M×1003×90​+10097×3​=M90​ 10M18​+10097×3​=M90​ M90​−10M18​−10097×3​ 10M900−18​=1097×3​ M=97×3882×10​=30.3≅30

Q. $90 g$ non-volatile, non-dissociative solute is added to $1746 g$ water to form a dilute, ideal solution. The vapour pressure of water has decreased from $300 mm$ of $H g t o 291 mm o f H g$ . The molecular weight of solute is.