Finding molar mass of unknown element

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To find the molar mass of element X in the reaction producing X2O3, the mass of oxygen must be calculated first. Given that 1.0g of X produces 1.1596g of X2O3, the mass of oxygen can be derived from the difference in mass. The reaction indicates that 4 moles of X yield 2 moles of X2O3, allowing for the establishment of a relationship between the moles of X and the moles of oxygen. The next step involves calculating the number of moles of oxygen and using that to find the molar mass of X. The discussion emphasizes that the reaction equation is not necessary to solve the problem.
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Homework Statement


element X reacts with oxygen to produce a pure sample of X2O3 . in an experiment, it is found that 1.0g of X produces 1.1596g of X2O3 . what is the molar mass of X?


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The Attempt at a Solution


well we can write a equation for it 4X + 3O2 ---> 2X2O3
from this we can see that 4 moles of X gives 2 moles of X2O3.
so 4*x(x is molar mass of X)g of X gives 2x+96 g of X2O3
where do we go from here?
 
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You don't need reaction equation to solve the question. Can you calculate number of moles of metal knowing number of moles of oxygen? Can you calculate mass of oxygen from the numbers given?
 
Thread 'Confusion regarding a chemical kinetics problem'
TL;DR Summary: cannot find out error in solution proposed. [![question with rate laws][1]][1] Now the rate law for the reaction (i.e reaction rate) can be written as: $$ R= k[N_2O_5] $$ my main question is, WHAT is this reaction equal to? what I mean here is, whether $$k[N_2O_5]= -d[N_2O_5]/dt$$ or is it $$k[N_2O_5]= -1/2 \frac{d}{dt} [N_2O_5] $$ ? The latter seems to be more apt, as the reaction rate must be -1/2 (disappearance rate of N2O5), which adheres to the stoichiometry of the...

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