Asked by Jose
                A student reacts 0.506 grams of aluminum with excess KOH and H2O according to reaction one from the lab manual.  
2Al + 2KOH +6H2O ---> 2K[Al(OH)4]+3H2
Enter your answers in numerical format.
How many moles of aluminum was reacted?
How many moles of K[Al(OH)4] will theoretically be produced?
            
        2Al + 2KOH +6H2O ---> 2K[Al(OH)4]+3H2
Enter your answers in numerical format.
How many moles of aluminum was reacted?
How many moles of K[Al(OH)4] will theoretically be produced?
Answers
                    Answered by
            Damon
            
    molar mass of Al is 27 g/mol
we used .506 g/27 g/mol
= .0187 mols of Al
for every mol of Al we get a mol of K[Al(OH)4]
so .0187
    
we used .506 g/27 g/mol
= .0187 mols of Al
for every mol of Al we get a mol of K[Al(OH)4]
so .0187
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