Scientific Creativity in Materials Science Education among High School Students through Inquiry-Based Learning and Metacognitive Strategies
), Bovornpot Choompunuch(2), Bovornpot Choompunuch(3), Hisako Matsuo(4),
(1) Mahasarakham University
(2) Mahasarakham University
(3) Mahasarakham University
(4) Saint Louis University
Corresponding Author
Abstract
Keywords
References
Gogotsi, Y., Burnside, H., Choi, M. Y., and Ferroni, J. (2005). Materials science in secondary education: Non-MRSEC initiatives. Nature Materials, 4, 357.
Stamopoulos, D. (2024). Electrostatics in materials revisited: The case of free charges combined with linear, homogeneous, and isotropic dielectrics. Materials, 17(20), 5046.
McDermott, L. C., and Shaffer, P. S. (1992). Research as a guide for curriculum development: An example from introductory electricity. Part I: Investigation of student understanding. American Journal of Physics, 60(11), 994-1003.
Hestenes, D. (1987). Toward a modeling theory of physics instruction. American Journal of Physics, 55(5), 440-454.
Hasanah, R., Hidayat, A., Sutopo, and Fawaiz, S. (2025). Electrostatics conceptual test as an assessment instrument for undergraduate student's conceptual mastery on static electricity. Jurnal Pendidikan Sains, 13(1), 8-19.
Urdanivia Alarcon, D. A., Talavera-Mendoza, F., Rucano Paucar, F. H., Cayani Caceres, K. S., and Machaca Viza, R. (2023). Science and inquiry-based teaching and learning: A systematic review. Frontiers in Education, 8, 1170487.
Melgarejo, T., Atanacio, L., Leandro, A., Faustino, L., Rivarola, M., López, J., and Chavez, J. (2024). The 5E instructional model in the meaningful learning of science and technology. Frontiers in Education, 9, 1435530.
Antonio, R. P., and Prudente, M. S. (2024). Effects of inquiry-based approaches on students' higher-order thinking skills in science: A meta-analysis. International Journal of Education in Mathematics, Science and Technology, 12(1), 251-281.
Flavell, J. H. (1979). Metacognition and cognitive monitoring: A new area of cognitive-developmental inquiry. American Psychologist, 34(10), 906-911.
Schraw, G., and Moshman, D. (1995). Metacognitive theories. Educational Psychology Review, 7(4), 351-371.
Hu, W., and Adey, P. (2002). A scientific creativity test for secondary school students. International Journal of Science Education, 24(4), 389-403.
Kind, P., and Kind, V. (2007). Creativity in science education: Perspectives and challenges for developing school science. Studies in Science Education, 43(1), 1-37.
Jia, X., Li, W., and Cao, L. (2019). The role of metacognitive components in creative thinking. Frontiers in Psychology, 10, 2404.
Hargrove, R. A., and Nietfeld, J. L. (2014). The impact of metacognitive instruction on creative problem solving. The Journal of Experimental Education, 83(3), 291-318.
Duit, R., and Treagust, D. F. (2003). Conceptual change: A powerful framework for improving science teaching and learning. International Journal of Science Education, 25(6), 671-688.
Damopolii, I., Nunaki, J. H., Nusantari, E., and Kandowangko, N. Y. (2020). The effectiveness of inquiry-based learning to train students' thinking skill based on SOLO taxonomy. Journal of Physics: Conference Series, 1567(4), 042025.
Hamzah, H., Hamzah, M. I., and Zulkifli, H. (2022). Systematic literature review on the elements of metacognition-based higher order thinking skills teaching and learning modules. Sustainability, 14(2), 813.
Urban, M., and Urban, K. (2025). Do we need metacognition for creativity? A necessary condition analysis of creative metacognition. Psychology of Aesthetics, Creativity, and the Arts, 19(6), 1467.
Article Metrics
Abstract View
: 0 times
Download : 0 times
Refbacks
- There are currently no refbacks.
Copyright (c) 2026 Bumi Publikasi Nusantara

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








