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Calculate the total heat (J) needed to convert 0.383 mol (g) ethanol at 300*C, 1atm to liquid ethanol at 25*C and 1atm. bp 1atm: 78.5*C ∆Hvap: 40.5 KJ/mol c(gas): 1.43 J/g*C c(liquid):2.45 J/g*C Using the q=mc∆t and q=∆H(n) formulas My final answer was qtotal= (-12226)-(33.94x1000)+(-5059) but the answer is wrong, just wondering where I strayed
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