7:["$","div",null,{"children":[["$","div",null,{"className":"select-question-page-con","children":[["$","h1",null,{"style":{"margin":"10px","textAlign":"center","fontSize":"19px"},"children":"JAMB - Chemistry (2011 - No. 9)"}],["$","div",null,{"className":"question-page-q-con thickBG","children":[["$","div",null,{"children":[null,["$","div",null,{"className":"post-math-jax-item question-page-q-txt","style":{},"dangerouslySetInnerHTML":{"__html":"

From the diagram above, find the amount of solute deposited when 200 cm\$^3\$ of the solution is cooled from 55°C to 40°C.

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From the diagram,

\n\n

55°C = 7 moles; 40°C = 6 moles.

\n\n

Amount of solute deposited = 7 - 6 = 1 mole.

\n\n

1000 cm\$^3\$ = 1 mole

\n\n

200 cm\$^3\$ = x

\n\n

x = \$\\frac{200 \\times 1}{1000}\$

\n\n

= 0.20 mole.

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JAMB - Chemistry (2011 - No. 9)

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