I was given four molecular equations to balance. the next question states, "based on your balanced equation in #1, if 0.150g of copper was used to begin the experiment, calculate the mass of zinc required to reduce the CuSO4 obtained.(assume 100% completion of all intermediate steps and that no Zn(s) is lost in competing reactions.) show all work."
the balanced equations are
#1. Cu(s)+4HNO3(aq)=Cu(NO3)2(aq)+2NO2(g)+2H2O(l)
#2. Cu(NO3)2(aq)+2NaOH(aq)=Cu(OH)2(s)+2NaNO3(aq)
#3. CuO(s)+H2SO4(aq)=CuSO4(aq)+H2O(l)
#4. CuSO4(aq)+Zn(s)=Cu(s)+ZnSO4(aq)
Idont even know how to start this problem can someone help.