I have a recipe that calls for 3.2g of NaH2PO4 (anhydrous). We have NaH2PO4-2H2O (dihydrate) in stock and I have been told I can use that after working out how much to use.
I know that the FW of the anhydrous is 119.98 and of the dihydrate it is 156.01.
BUT, how oh how do I work out how much of the dihydrate to use instead?
Any help or insight would be much appreciated.
Using NaH2PO4-2H2O instead of NaH2PO4. How to calculate?
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Lumo
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GrahamKemp
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Calculate by Ratio: Using NaH2PO4-2H2O instead of NaH2PO4.
N = W/M; molecule amount equals weight divided by molecular mass.
You want identical amounts of sodium dihydrogen phosphate, thus: NH=NA
.: WH = WAMH/MA
= 3.2 g * 156.01/119.98
≈ 4.1(6) g
4.1(6) g sodium dihydrogen phosphate dihydrate will be 3.2(0) g sodium dihydrogen phosphate and 0.9(6) g water of crystalization.
You want identical amounts of sodium dihydrogen phosphate, thus: NH=NA
.: WH = WAMH/MA
= 3.2 g * 156.01/119.98
≈ 4.1(6) g
4.1(6) g sodium dihydrogen phosphate dihydrate will be 3.2(0) g sodium dihydrogen phosphate and 0.9(6) g water of crystalization.