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24 December, 13:03

If 0.683 grams of silver chloride is produced how much (mass) silver nitrate would need to be reacted

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  1. 24 December, 13:30
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    The (mass) silver nitrate would needed to be reacted is calculated as follow

    by assuming that AgNo3 reacted with Bacl

    that is 2AgNo3 + BaCl2 - - - > 2Agcl + Ba (No3) 2

    find the moles AgNo3 = 0.683g/169.87 g/mol = 4.02 x10^-3 moles

    by use of mole ratio between Agcl and Agno3 which is 2:2 this implies that the moles of AgNO3 also 4.02 x10^-3

    mass = moles x molar mass

    = (4.02 x10^-3) x 143.37 = 0.576 grams
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