Practice and Reflection on Inquiry-Based Chemistry Experimental Teaching in High Schools Oriented Toward Applied Education
DOI:
https://doi.org/10.70088/9xdn0y41Keywords:
inquiry-based learning, chemistry education, applied educationAbstract
This study investigates the implementation and pedagogical impact of inquiry-based chemistry experimental teaching in high schools, with explicit orientation toward applied education goals. Drawing on classroom-based action research across diverse urban and suburban school settings, the work documents how structured inquiry frameworks---centered on real-world problem contexts, student-driven question formulation, iterative experimental design, and evidence-based reasoning---reshape both learning engagement and conceptual mastery. Teachers co-developed context-anchored laboratory modules aligned with local industrial, environmental, and health-related phenomena, enabling students to bridge abstract chemical principles with tangible societal applications. Qualitative analysis of student discourse, reflective journals, and performance assessments revealed significant shifts in epistemic agency, procedural adaptability, and interdisciplinary awareness. Concurrently, teacher interviews highlighted evolving roles---from knowledge deliverer to facilitator of scientific sense-making---and identified systemic enablers and constraints in curriculum time, resource allocation, and professional development support. The findings affirm that when inquiry is deliberately scaffolded around authentic application, it cultivates not only deeper chemical understanding but also transferable competencies essential for scientifically literate citizenship.References
G. Orosz, V. Németh, L. Kovács, Z. Somogyi, and E. Korom, "Guided inquiry-based learning in secondary-school chemistry classes: A case study," Chem. Educ. Res. Pract., vol. 24, no. 1, pp. 50–70, 2023.
S. Abels, "Scaffolding inquiry-based science and chemistry education in inclusive classrooms," in New Developments in Science Education Research, 2015, pp. 77–96.
D. M. Ferreira, F. C. Sentanin, K. N. Parra, V. M. Negrao Bonini, M. de Castro, and A. C. Kasseboehmer, "Implementation of inquiry-based science in the classroom and its repercussion on the motivation to learn chemistry," J. Chem. Educ., vol. 99, no. 2, pp. 578–591, 2021.
B. Aidoo, C. Anthony-Krueger, A. O. G. Gyampoh, J. Tsyawo, and F. Quansah, "A mixed-method approach to investigate the effect of flipped inquiry-based learning on chemistry students' learning," Eur. J. Sci. Math. Educ., vol. 10, no. 4, pp. 507–518, 2022.
M. Vilela, C. Morais, and J. C. Paiva, "Inquiry-based science education in high chemistry: Enhancing oral and written communication skills through authentic and problem-based learning activities," Educ. Sci., vol. 15, no. 3, p. 334, 2025.
F. Mumba, A. Banda, and V. M. Chabalengula, "Chemistry teachers' perceived benefits and challenges of inquiry-based instruction in inclusive chemistry classrooms," Sci. Educ. Int., vol. 26, no. 1, pp. 180–194, 2015.
D. Cheung, "Facilitating chemistry teachers to implement inquiry-based laboratory work," Int. J. Sci. Math. Educ., vol. 6, no. 1, pp. 107–130, 2008.
P. U. B. Xayrullo o'g and T. M. Umurzokovich, "Inquiry-based learning in chemistry education: Exploring its effectiveness and implementation strategies," Fan va ta'lim integratsiyasi, vol. 2, no. 1, pp. 74–79, 2024.
T. Gupta, K. A. Burke, A. Mehta, and T. J. Greenbowe, "Impact of guided-inquiry-based instruction with a writing and reflection emphasis on chemistry students' critical thinking abilities," J. Chem. Educ., vol. 92, no. 1, pp. 32–38, 2015.
M. Juntunen and M. Aksela, "Life-cycle analysis and inquiry-based learning in chemistry teaching," Sci. Educ. Int., vol. 24, no. 2, pp. 150–166, 2013.
J. A. Luft and G. H. Roehrig, "Inquiry teaching in high school chemistry classrooms: The role of knowledge and beliefs," J. Chem. Educ., vol. 81, no. 10, p. 1510, 2004.
J. de Dieu Kwitonda, A. Sibomana, E. Gakuba, and C. Karegeya, "Inquiry-based experimental design for enhancement of teaching and learning of chemistry concepts," Afr. J. Educ. Stud. Math. Sci., vol. 17, no. 2, pp. 13–25, 2021.
Downloads
Published
Issue
Section
License
Copyright (c) 2026 Xinyue Luo, Ruiyang Gong, Yuling Zhao (Author)

This work is licensed under a Creative Commons Attribution 4.0 International License.









