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83.20 grams of manganese to moles
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83.20 grams of manganese to moles

User Brandon Turpy
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To find the moles present in 83.20 grams of manganese we must use the molar mass of manganese. This mass is equal to 54.94g/mol. So the moles of manganese (Mn) will be:


molMn=givengMn*(1molMn)/(MolarMass,gMn)
molMn=83.20gMn*(1molMn)/(54.94gMn)=1.51molMn

Answer: 83.20 grams of manganese are equivalent to 1.51 moles

User Vitaliy Terziev
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