Answer : The heat required is, 1350 J
Solution :
Formula used :
![Q=m* c* \Delta T=m* c* (T_(final)-T_(initial))](https://img.qammunity.org/2019/formulas/chemistry/high-school/c52fybruwk7yisqdsyp305b5gwq8xmovqk.png)
where,
Q = heat required = ?
m = mass of aluminum = 30 g
c = specific heat of aluminum =
= final temperature =
![75^oC](https://img.qammunity.org/2019/formulas/chemistry/high-school/fxryhejfeu4e0bbabzpnwds8mescf65zig.png)
= initial temperature =
![25^oC](https://img.qammunity.org/2019/formulas/chemistry/high-school/bejddn9wkotmcbckegjyse3y4vfia7jyd9.png)
Now put all the given values in the above formula, we get the heat required.
![Q=30g* 0.900J/g^oC* (75-25)^oC](https://img.qammunity.org/2019/formulas/chemistry/high-school/mjdendq4ghhtn970d047xqnlu2v0l2wlc4.png)
![Q=1350J](https://img.qammunity.org/2019/formulas/chemistry/high-school/qka5yuf9ew3x96xcer0y1ozenmh2rreluq.png)
Therefore, the heat required is, 1350 J