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Question #d2535

1 Answer

Aug 17, 2017

$1 mol L^-1$

Explanation:

Firstly recall that;

$1000ml = 1L$

$(Na = 23, color(white)(x) O = 16, color(white)(x) S = 32)$

$Molarity = "Moles of solute"/"Volume of Solvent or Solution"$

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

$"Volume of solvent" = 1000ml = 1L$

$"Solute" = Na_2SO_4$

$"Mass of solute" = 142g$

$"Molar mass of solute" = (23 xx 2) + 32 + (16 xx 4) gmol^-1$

$color (white) (XXXXXXXXXX) = 46 + 32 + 64 gmol^-1$

$color (white) (XXXXXXXXXX) = 142 gmol^-1$

$rArr "Moles of solute" = (142cancelg)/(142 cancelgmol^-1)$

$rArr "Moles of solute" = 1mol$

$rArr Molarity = "Moles of solute"/"Volume of Solvent or Solution"$

$rArr Molarity = (1 mol)/(1 L)$

$rArr Molarity = 1 mol L^-1$

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