Exploring the Synergy of Cognitive Dissonance and Computational Chemistry─A Task Design for Supporting Learning in Organic Chemistry

IF 2.5 3区 教育学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Leonie S. Lieber*, Nicole Graulich, Giulia Licini and Laura Orian*, 
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引用次数: 0

Abstract

Organic and computational chemistry are increasingly interconnected, with computational methods now being essential for understanding complex reaction mechanisms. Thus, integrating computational chemistry into organic chemistry is crucial for supporting students in arguing with evidence and gaining a deeper understanding of chemical concepts that traditional experimental approaches have struggled to elucidate. This integration of computational methods is now essential in modern organic chemistry and should be introduced to the classrooms of students. An authentic learning experience that uses data from computational chemistry calculations and allows students to make a claim about structure–property relationships can bridge the gap between theoretical and experimental approaches, fostering students’ understanding of chemical concepts and enhancing their problem-solving skills. This study investigates how integrating organic chemical problems into a computational chemistry course can be achieved by a task design that aims to induce cognitive dissonance. In this task design, eight students first build written arguments for the most stable conformation of simple disubstituted ethanes, i.e., 1,2-difluoroethane and 1,2-dichloroethane, followed by computational calculations to verify or revise their arguments. The study examined how cognitive dissonance affects students’ perceived confidence, their written argumentation, and their overall task evaluation. The results indicated that the task design successfully induced cognitive dissonance, leading to a drop in confidence after computational results contradicted students’ arguments. The evaluation revealed that students rated the task design to be cognitively demanding but also to be engaging and beneficial for understanding chemical concepts. The study’s implications emphasize the potential for integrating computational data into organic chemistry as a means to critically evaluate one’s arguments and gain a deeper understanding of chemical phenomena.

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来源期刊
Journal of Chemical Education
Journal of Chemical Education 化学-化学综合
CiteScore
5.60
自引率
50.00%
发文量
465
审稿时长
6.5 months
期刊介绍: The Journal of Chemical Education is the official journal of the Division of Chemical Education of the American Chemical Society, co-published with the American Chemical Society Publications Division. Launched in 1924, the Journal of Chemical Education is the world’s premier chemical education journal. The Journal publishes peer-reviewed articles and related information as a resource to those in the field of chemical education and to those institutions that serve them. JCE typically addresses chemical content, activities, laboratory experiments, instructional methods, and pedagogies. The Journal serves as a means of communication among people across the world who are interested in the teaching and learning of chemistry. This includes instructors of chemistry from middle school through graduate school, professional staff who support these teaching activities, as well as some scientists in commerce, industry, and government.
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