Question
Consider the chemical reaction:$$\mathrm{C}(s)+\mathrm{H}_{2} \mathrm{O}(g) \longrightarrow \mathrm{CO}(g)+\mathrm{H}_{2}(g)$$How many liters of hydrogen gas are formed from the complete reaction of $15.7 \mathrm{~g}$ C? Assume that the hydrogen gas is collected at a pressure of $1.0 \mathrm{~atm}$ and a temperature of $355 \mathrm{~K}$.
Step 1
The molar mass of C is 12.01 g/mol. So, we can find the number of moles of C by dividing the mass of C by its molar mass: $$ \text{moles of C} = \frac{15.7 \text{ g}}{12.01 \text{ g/mol}} = 1.307 \text{ mol} $$ Show more…
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Consider the chemical reaction: C(s) + H2O(g) → CO(g) + H2(g) How many liters of hydrogen gas are formed from the complete reaction of 15.7 g C? Assume that the hydrogen gas is collected at a pressure of 1.0 atm and a temperature of 355 K.
Consider the chemical reaction: $$\mathrm{C}(s)+\mathrm{H}_{2} \mathrm{O}(g) \longrightarrow \mathrm{CO}(g)+\mathrm{H}_{2}(g)$$ How many liters of hydrogen gas are formed from the complete reaction of 15.7 $\mathrm{g} \mathrm{C}^{2}$ Assume that the hydrogen gas is collected at a pressure of 1.0 atm and a temperature of 355 $\mathrm{K}$ .
Consider the chemical reaction: $$ \mathrm{C}(s)+\mathrm{H}_{2} \mathrm{O}(g) \rightarrow \mathrm{CO}(g)+\mathrm{H}_{2}(g) $$ How many liters of hydrogen gas are formed from the complete reaction of $15.7 \mathrm{~g} \mathrm{C}$ ? Assume that the hydrogen gas is collected at a pressure of $1.0 \mathrm{~atm}$ and a temperature of $355 \mathrm{~K}$.
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