Answer:
c = 0.29 J/g.°C
Step-by-step explanation:
Given data:
Mass of sample = 22.5 g
Initial temperature = 25°C
Final temperature = 90°C
Heat absorbed = 431 J
Specific heat of material = ?
Solution:
Specific heat capacity:
It is the amount of heat required to raise the temperature of one gram of substance by one degree.
Formula:
Q = m.c. ΔT
Q = amount of heat absorbed or released
m = mass of given substance
c = specific heat capacity of substance
ΔT = change in temperature
ΔT = 90°C - 25°C
ΔT = 65°C
431 J = 22.5 g × c × 65°C
431 J = 1462.5 g.°C × c
c = 431 J/1462.5 g.°C
c = 0.29 J/g.°C