Calculate AH for the reaction 2 Al (s) + 3 Cl2 (g) →2 AICI3 (s), from the following data. 2 Al (s) +6 HCl (aq) → 2 AlCl3 (aq) + 3 H2 (g) ΔΗ - 1049. kJ / mol HCl (g) → HC1 (aq) AH – 74. 8 kJ / mol H2 (g) + Cl2 (g) → 2 HCl (g) /mol ΔΗ 1845. kJ AlCl3 (g) → AlCl3 (aq) AH -323. kJ / mol
Thermochemistry
Thermochemistry can be considered as a branch of thermodynamics that deals with the connections between warmth, work, and various types of energy, formed because of different synthetic and actual cycles. Thermochemistry describes the energy changes that occur as a result of reactions or chemical changes in a substance.
Exergonic Reaction
The term exergonic is derived from the Greek word in which ‘ergon’ means work and exergonic means ‘work outside’. Exergonic reactions releases work energy. Exergonic reactions are different from exothermic reactions, the one that releases only heat energy during the course of the reaction. So, exothermic reaction is one type of exergonic reaction. Exergonic reaction releases work energy in different forms like heat, light or sound. For example, a glow stick releases light making that an exergonic reaction and not an exothermic reaction since no heat is released. Even endothermic reactions at very high temperature are exergonic.
data:image/s3,"s3://crabby-images/056d4/056d449a394b6f8759cf66f39146f1431d5e838c" alt="The image contains a list of options in a multiple-choice format, likely related to a question about energy or enthalpy values. Each option is accompanied by a radio button.
The choices are as follows:
- -5886 kJ
- -6387 kJ
- -5938 kJ
- -3292 kJ
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![**Title: Calculating ΔH for a Chemical Reaction**
**Objective:**
Calculate the change in enthalpy (ΔH) for the reaction using given data.
**Reaction:**
\[ 2 \text{Al (s)} + 3 \text{Cl}_2 \text{(g)} \rightarrow 2 \text{AlCl}_3 \text{(s)} \]
**Given Data:**
1. \[ 2 \text{Al (s)} + 6 \text{HCl (aq)} \rightarrow 2 \text{AlCl}_3 \text{(aq)} + 3 \text{H}_2 \text{(g)} \]
- ΔH = -1049 kJ/mol
2. \[ \text{HCl (g)} \rightarrow \text{HCl (aq)} \]
- ΔH = -74.8 kJ/mol
3. \[ \text{H}_2 \text{(g)} + \text{Cl}_2 \text{(g)} \rightarrow 2 \text{HCl (g)} \]
- ΔH = -1845 kJ/mol
4. \[ \text{AlCl}_3 \text{(g)} \rightarrow \text{AlCl}_3 \text{(aq)} \]
- ΔH = -323 kJ/mol
**Instructions:**
Utilize these given reactions and their enthalpy changes to determine the ΔH for the target reaction.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F7f7d658b-0bac-4f55-9528-936034acb7b3%2F17bc8057-d98a-43aa-b204-a1d6d2e5d1f3%2F8srivgr_processed.jpeg&w=3840&q=75)
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