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Question #5cff2

1 Answer

Jun 4, 2017

$1.153 x 10^{- 3} g r a m N a_{2} C O_{3}$ $1.153x10^-3gram Na_2CO_3$

Explanation:

$5L(0.004M Ca^+2) + ? max grams(Na_2CO_3) => no .pptn.$

$CaCO_3 rightleftharpoons Ca^(+2) + CO_2^-2$
$K_(sp)=[Ca^(+2)][CO_3^(-2)] = 8.7x10^(-9)$
$[Ca^(+2)]=0.004M$

=> $(0.004M)[CO_3^(-2)] = 8.7X10^(-9)$

=> $[CO_3^(-2)]= (8.7x10^(-9)"/0.004")M = 2.175x10^(-6)M$

=> $Na_2CO_3 => 2Na^+ + CO_3^(-2)$
$>$ $f.wt.(Na_2CO_3)= "106g"/"mole"$
$Na_2CO_3(g/L)= 2.175x10^(-6)"mole"/L*106g/"mole" = 2.31x10^(-4)g/L$

=>
$"max.""mass"Na_2CO_3 ".for" .5L(0.004M Ca^(+2)) = 5L(2.31x10^(-4)g/L) = 1.153x10^(-3)grams Na_2CO_3$

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