Answer:
[tex]Q_{lost}[/tex] per mole of pentane = 3157.53 kJ/mol
Explanation:
Given:
Mass of pentane, m = 0.468 gram
Molar mass of pentane, M = 72.15
Now, mol of pentane, n = mass/M = 0.468/72.15 = 0.00648 mol of C5H12
Now,
ΔT = 23.65 - 20.45 = 3.2°C
Heat capacity of the calorimeter, C = 2.21 kJ/°C
Specific heat capacity of the water, Cp = 4.184 J/g.°C
Now,
the heat gained = the heat lost
[tex]Q_{gained} = -Q_{lost}[/tex]
also,
[tex]Q_{gained} = Q_{water} + Q_{calorimeter}[/tex]
[tex]Q_{water} = m\times C\times(T_f-T_i)[/tex]
or
[tex]Q_{water} = 1000\times4.184\times(23.65-20.45) = 13388.8\ J [/tex]
and
[tex]Q_{calorimeter} = C\times\Delta T = 2.21\times1000\times3.2 = 7072\ J[/tex]
Now,
[tex]Q_{total} = 13388.8 +7072 = 20460.8\ J[/tex]
we have,
[tex]Q_{lost} = -Q_{gain} = - 20460.8\ J[/tex] (Here negative sign depicts the release of the heat)
[tex]Q_{lost}[/tex] per mole of pentane =-20460.8/(0.00648 ) = 3157.53 kJ/mol
