What is the density of carbon monoxide gas \[CO\] at STP?
Answer
549.6k+ views
Hint: Density is the mass of a unit volume of a material substance. The recipe for thickness is $d = \dfrac{M}{V}$ , where d is density, V is volume, and M is mass. Thickness is regularly communicated in units of grams per cubic centimeter.
Complete step by step answer:
We have to know that carbon monoxide \[\left( {CO} \right)\] is at STP (standard temperature and pressing factor) discloses to us that one mole of the gas possesses \[22.4litres\]. We have the volume! We likewise have the mass, however in a roundabout way. One mole of anything is its nuclear mass, which we can get from adding the individual molar masses of the components in the compound from the qualities off the occasional table.
We can see that,
The molar mass of carbon = \[12.01g/mol\] .
The molar mass of oxygen = \[16.00g/mol\] .
Then, we have to calculate the mass of one mole of \[CO\] by adding the molar mass of carbon \[\left( {12.01g/mol} \right)\] and the molar mass of oxygen \[\left( {16.00g/mol} \right)\] . Therefore, the molar mass of \[CO\] is \[28.01g/mol\] . Hence, one moles of \[CO\] is \[28.01g\].
Already we have to know that the volume is \[22.4liters\] .
Then, I also know the mass is \[28.01g\] . Applying, all the values in the density formula,
$d = \dfrac{M}{V} = \dfrac{{28.01g}}{{22.4L}} = 1.25g/L$
That may appear to be a huge thickness for a gas, however it is per liter. We can change this worth over grams-per-milliliter, which makes the thickness of \[CO\] at STP $0.00125g/mL$.
Note: We also know that the carbon monoxide is a drab, unscented, and dull combustible gas that is somewhat less thick than air. It is poisonous to creatures that utilize hemoglobin as an oxygen transporter when experienced in focus above around \[35ppm\] causing carbon monoxide harming. Some carbon monoxide is additionally, delivered in ordinary creature digestion in low amounts and thought to have some typical organic capacities. In the air, it is spatially factor and fleeting, having a part in the development of ground level ozone.
Complete step by step answer:
We have to know that carbon monoxide \[\left( {CO} \right)\] is at STP (standard temperature and pressing factor) discloses to us that one mole of the gas possesses \[22.4litres\]. We have the volume! We likewise have the mass, however in a roundabout way. One mole of anything is its nuclear mass, which we can get from adding the individual molar masses of the components in the compound from the qualities off the occasional table.
We can see that,
The molar mass of carbon = \[12.01g/mol\] .
The molar mass of oxygen = \[16.00g/mol\] .
Then, we have to calculate the mass of one mole of \[CO\] by adding the molar mass of carbon \[\left( {12.01g/mol} \right)\] and the molar mass of oxygen \[\left( {16.00g/mol} \right)\] . Therefore, the molar mass of \[CO\] is \[28.01g/mol\] . Hence, one moles of \[CO\] is \[28.01g\].
Already we have to know that the volume is \[22.4liters\] .
Then, I also know the mass is \[28.01g\] . Applying, all the values in the density formula,
$d = \dfrac{M}{V} = \dfrac{{28.01g}}{{22.4L}} = 1.25g/L$
That may appear to be a huge thickness for a gas, however it is per liter. We can change this worth over grams-per-milliliter, which makes the thickness of \[CO\] at STP $0.00125g/mL$.
Note: We also know that the carbon monoxide is a drab, unscented, and dull combustible gas that is somewhat less thick than air. It is poisonous to creatures that utilize hemoglobin as an oxygen transporter when experienced in focus above around \[35ppm\] causing carbon monoxide harming. Some carbon monoxide is additionally, delivered in ordinary creature digestion in low amounts and thought to have some typical organic capacities. In the air, it is spatially factor and fleeting, having a part in the development of ground level ozone.
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