A 31.3-g sample of ammonium carbonate contains ________ mol of ammonium ions.

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asked Sep 1, 2017 67.9k views

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Nebulae · Answer 1 · 2017-09-02T19:49:55+0000

Answer:

n_(NH_4)=0.652molNH_4

Step-by-step explanation:

Hello,

Ammonium carbonate has the following formula:

(NH_4)_2CO_3

In this manner, the moles are computed by knowing its molecular mass:

M_((NH_4)_2CO_3)=14*2+1*8+12*1+16*3=96g/mol

Thus, by applying a mass-mole-ions relationship, one obtains:

$ions_((NH_4)_2CO_3)=31.3g(NH_4)_2CO_3*(1mol(NH_4)_2CO_3)/(96g(NH_4)_2CO_3)*(2molNH_4)/(1mol(NH_4)_2CO_3)\\n_(NH_4)=0.652molNH_4$

Best regards.

Tamicka · Answer 2 · 2017-09-06T04:47:27+0000

We need to calculate the equivalent amount in units of moles of ammonium ions from the mass units. For this we need the molar mass of the substances involved. We calculate as follows:

31.3 g (NH4)2CO3 ( 1 mol (NH4)2CO3 / 96.09 g (NH4)2CO3) ( 2 mol NH4 / 1 mol (NH4)2CO3 ) = 0.65 mol ammonium ions

A 31.3-g sample of ammonium carbonate contains ________ mol of ammonium ions.

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