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February 19, 2026Chemistry Teacher International0 citationsOpen Access

Using context-based and AI-enhanced approaches to improve student engagement and achievement in secondary chemistry education

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NANodira AbdikayumovaGMGaliya Madybekova

Key Points

  • This study aims to assess the integration of context-based 7E instructional strategies and AI tools in enhancing student engagement and achievement in chemistry.
  • Mixed-methods, quasi-experimental design with 93 Grade 10 students.
  • Three instructional groups: context-based 7E with AI, 7E without AI, and conventional teaching.
  • Quantitative data collected through pre- and post-tests and engagement scales.
  • Qualitative data gathered from observation checklists, reflection forms, and AI usage logs.
  • Experimental group showed significantly higher post-test scores compared to control groups.
  • Engagement analysis revealed highest levels of interest and participation in the experimental group.
  • Findings suggest that combining context-based instruction and AI tools produces greater educational gains.

Abstract

Abstract Grounded in the need to modernize science education and promote learner-centred approaches, this study examined the effectiveness of integrating context-based 7E instructional strategies, rooted in constructivist learning theory, with AI-supported tools such as PhET Interactive Simulations and ChatGPT tutoring to improve secondary students’ achievement and engagement in chemistry. A mixed-methods, quasi-experimental design was employed with 93 Grade 10 students assigned to three instructional groups: (a) context-based 7E with integrated AI tools, (b) the 7E model without contextual or AI components, and (c) conventional teaching. Over 12 weeks, the experimental group engaged with digital simulations and AI tutoring embedded within the 7E phases. Quantitative data were collected through pre- and post-tests and engagement scales, while qualitative evidence was gathered from observation checklists, reflection forms, and AI usage logs. ANCOVA results showed that students in the experimental group achieved significantly higher post-test scores than those in the comparison and control groups, with a large effect size. Engagement analysis also indicated that the experimental group reported the highest levels of interest and participation. These findings align with prior research showing benefits of context-based instruction and AI tools independently, but extend the evidence by demonstrating that their integration within a structured inquiry cycle produces even greater gains. Despite these promising outcomes, the study has limitations, including its single-site setting, small sample size, and reliance on self-reported engagement measures. Future research should test the approach with broader samples, examine long-term effects, and address ethical considerations of AI integration. Overall, the results provide evidence that combining contextual activities, inquiry-based learning, and adaptive technologies can foster more meaningful and effective chemistry learning experiences.

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Cite This Study

Abdikayumova et al. (2026) studied this question.

synapsesocial.com/papers/6996a77aecb39a600b3ed1a4https://doi.org/10.1515/cti-2025-0068
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