The Influence of Augmented Reality on Learner-generated Explanations During Chemical Hands-on Experiments

Abstract Augmented Reality (AR) enables the presentation of models at the submicroscopic level during chemical hands-on experiments and may thus support learners in connecting macroscopic observations, submicroscopic processes, and symbolic representations. Such connections are essential for understanding chemical phenomena, yet many students struggle to establish them, leading to fragmented or purely descriptive explanations. However, little is known about how AR influences the structure and quality of learner-generated explanations during experimentation. In this quasi-experimental pre-post study, three conditions were compared in grade 11 chemistry classes: AR, animation, and filmstrip. Students ( N = 104) worked in pairs on two acid-base experiments and created explanatory screencasts, which were analyzed in two complementary ways: network analysis was used to examine transitions between representational levels, while a separate holistic coding scheme was applied to assess overall explanatory quality. Across both experiments, students in the AR group integrated submicroscopic entities into their explanations more frequently than students in the other groups. However, this increased integration was not consistently associated with higher explanatory quality. The findings suggest that AR can foster representational integration, but that explicit scaffolding might be necessary to translate this into high-quality causal explanations.

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Publication Details

Journal
Journal of Science Education and Technology
Published
2026-09-29
DOI
https://doi.org/10.1007/s10956-026-10354-0
Primary Topic
Science Education and Pedagogy
Type
article
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The Influence of Augmented Reality on Learner-generated Explanations During Chemical Hands-on Experiments

Sebastian Habig, Sabine Fechner, Hendrik Peeters
Journal of Science Education and Technology
Science Education and Pedagogy
article

The Influence of Augmented Reality on Learner-generated Explanations During Chemical Hands-on Experiments

Sebastian Habig, Sabine Fechner, Hendrik Peeters
article en

Abstract

Abstract Augmented Reality (AR) enables the presentation of models at the submicroscopic level during chemical hands-on experiments and may thus support learners in connecting macroscopic observations, submicroscopic processes, and symbolic representations. Such connections are essential for understanding chemical phenomena, yet many students struggle to establish them, leading to fragmented or purely descriptive explanations. However, little is known about how AR influences the structure and quality of learner-generated explanations during experimentation. In this quasi-experimental pre-post study, three conditions were compared in grade 11 chemistry classes: AR, animation, and filmstrip. Students ( N = 104) worked in pairs on two acid-base experiments and created explanatory screencasts, which were analyzed in two complementary ways: network analysis was used to examine transitions between representational levels, while a separate holistic coding scheme was applied to assess overall explanatory quality. Across both experiments, students in the AR group integrated submicroscopic entities into their explanations more frequently than students in the other groups. However, this increased integration was not consistently associated with higher explanatory quality. The findings suggest that AR can foster representational integration, but that explicit scaffolding might be necessary to translate this into high-quality causal explanations.

Journal of Science Education and Technology
Friedrich-Alexander-Universität Erlangen-Nürnberg (DE), Paderborn University (DE)
Quality Education
Openalex Percentile: Top 3%
Science Education and Pedagogy
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The Influence of Augmented Reality on Learner-generated Explanations During Chemical Hands-on Experiments — Sebastian Habig, Sabine Fechner, et al. · Journal of Science Education and Technology (2026) | TGRS Research Map | TGRS