contestada

3.7 grams of aluminum combine with excess copper(II) sulfate with 10 grams of copper produced. What is the percent yield? The equation is balanced below.

2Al + 3CuSO4 --> Cu + Al2 (SO4)3

Respuesta :

Answer:

77% percent yield

Explanation:

2 Al + 3 CuSO4 → Al2(SO4)3 + 3 Cu

(3.7 g Al) / (26.98154 g Al/mol) x (3 mol Cu / 2 mol Al) x (63.5463 g Cu/mol) = 13.07 g Cu in theory

(10 g) / (13.07) = 0.765 = 77% yield

Otras preguntas