Final answer:
To heat 50.0 grams of ethanol from -20°C to 68°C, 10.752 kJ of energy are required, calculated using the specific heat of ethanol and the temperature change.
Step-by-step explanation:
To find the energy required to heat 50.0 grams of ethanol from -20 °C to 68 °C, you would use the formula:
q = mcΔT, where:
- q is the heat energy in joules (J),
- m is the mass in grams (g),
- c is the specific heat in J/g°C, and
- ΔT is the change in temperature in °C (ΔT = final temperature - initial temperature).
Here, m = 50.0 g, c = 2.44 J/g°C, and ΔT = (68 - (-20)) °C = 88 °C. Plugging these values into the formula gives:
q = (50.0 g) × (2.44 J/g°C) × (88 °C) = 10,752 J
To convert joules to kilojoules (kJ), we divide by 1,000:
q = 10,752 J ÷ 1,000 = 10.752 kJ
Therefore, 10.752 kJ of energy is required to heat 50.0 grams of ethanol from -20 °C to 68 °C.