How to properly use significant figures in this case? Ccal = (-ΔHrxn x nLR)/ΔT Ccal = (-55.85 kJ/mol x 0.00100 mol)/5.3°C Ccal = ?????? It would help if you can clarify the rules for multiplication and division.

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How to properly use significant figures in this case?

Ccal = (-ΔHrxn x nLR)/ΔT
Ccal = (-55.85 kJ/mol x 0.00100 mol)/5.3°C
Ccal = ??????

It would help if you can clarify the rules for multiplication and division. Thanks!

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