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If only 1-(3-nitrophenyl)ethanol forms, what would the theoretical yield be for the reaction? Enter your answer to the nearest milligram (mg).

Options:
a) 105mg
b) 210mg
c) 315mg
d) 420mg

User Yeyeyerman
by
8.3k points

1 Answer

4 votes

Final answer:

An accurate theoretical yield for the formation of 1-(3-nitrophenyl)ethanol cannot be determined without the balanced chemical equation and the details of reactant quantities.

Step-by-step explanation:

A theoretical yield is the amount of product that will be generated in a chemical reaction based on the stoichiometry of the limiting reactant. To calculate the theoretical yield, you need the balanced chemical equation for the reaction and the molarity and number of moles of the reactants. However, without these details, including the balanced chemical equation of the reaction involving 1-(3-nitrophenyl)ethanol, it is impossible to accurately provide a theoretical yield. It's important to have all necessary reaction details, including the amounts of reactants used, to perform the calculation for theoretical yield. Hence, unfortunately, with the current information provided, an accurate theoretical yield for the formation of 1-(3-nitrophenyl)ethanol cannot be determined.