What volume of dioxygen gas would be generated by complete decomposition of a $10g$ mass of $KClO_3$ , under a pressure of $750mm*Hg$ ?

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What volume of dioxygen gas would be generated by complete decomposition of a $10g$ mass of $KClO_3$ , under a pressure of $750mm*Hg$ ?

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Answer 1 · 2017-09-03T06:36:47

Well, we need a stoichiometric equation......and I get under $2*L$ .

Explanation:

$KClO_3stackrel(MnO_2)rarr3/2O_2(g) + KCl$

Some $Mn(IV)$ salt is usually added to catalyze the reaction.

$"Moles of potassium chlorate"=(10*g)/(122.55*g*mol^-1)$

$=0.0816*mol$

And thus we gets $3/2xx0.0816*mol=0.122*mol$ $"dioxygen gas"$ .

And then we simply solve the Ideal Gas equation.....

$V=(nRT)/P=(0.0816*molxx0.0821*(L*atm)/(K*mol)xx291*K)/((750*mm*Hg)/(760*mm*Hg*atm^-1))$

$=??*L$

Note the pressure measurement. A mercury column is a VERY convenient means to measure gas pressure in that we know that $1*atm$ will support a column of mercury that is $760*mm$ high. These days mercury has all but disappeared from laboratories because of perceived safety concerns. (I keep my manometers under lock and key, away from nosy safety inspectors).

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What volume of dioxygen gas would be generated by complete decomposition of a $10g$ mass of $KClO_3$ , under a pressure of $750mm*Hg$ ?

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Explanation:

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Science

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What volume of dioxygen gas would be generated by complete decomposition of a 10*g10*g mass of KClO_3KClO_3, under a pressure of 750*mm*Hg750*mm*Hg?

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Explanation:

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What volume of dioxygen gas would be generated by complete decomposition of a $10g$ mass of $KClO_3$ , under a pressure of $750mm*Hg$ ?