After constructing a van't Hoff plot from the experimental data, a student determines the equation of the trendline to be: y = 1701x + -16.4 %3D Calculate AH" for this reaction in kJ/mol. Your Answer:

Chemistry for Engineering Students
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Author:Lawrence S. Brown, Tom Holme
Publisher:Lawrence S. Brown, Tom Holme
Chapter10: Entropy And The Second Law Of Thermodynamics
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After constructing a van't Hoff plot from the experimental data, a student
determines the equation of the trendline to be:
y = 1701x + -16.4
Calculate AH" for this reaction in kJ/mol.
Your Answer:
Transcribed Image Text:After constructing a van't Hoff plot from the experimental data, a student determines the equation of the trendline to be: y = 1701x + -16.4 Calculate AH" for this reaction in kJ/mol. Your Answer:
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