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How many mL of the titrant HBr is needed to titrate 1.85 mL of 0.044 M NH2Cl, if the molarity of the titrant is 0.072? Enter
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Answer #1

The equation of the reaction is given by: HBr + NH2Cl \rightarrow NH2Br + HCl

From this we see that: moles of HBr = Moles of NH2Cl

Assuming a volume V of titrant is needed, using the above equation:

0.072 * V = 0.044 * 1.85

Solving, V = 1.13 mL

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