Effect of the 5E Learning Cycle Method of Instruction on the Achievement and Motivation Level of Pre-Service Science Teachers Toward Mechanics
DOI:
https://doi.org/10.67167/vertex.658Keywords:
5E learning cycle method, constructivist approach, achievement, motivation, mechanicsAbstract
Physics is often perceived as a difficult subject for tertiary students, necessitating effective instructional strategies to improve achievement and motivation. This mixed-methods study investigated the impact of the 5E Learning Cycle Method on the achievement, motivation levels, and learning experiences of 37 pre- service teachers at Bulacan State University, Bustos Campus. A quasi-experimental pre-test/post-test design was employed. Quantitative insights were gathered using the Force Concept Inventory (FCI) for mechanics achievement and the Motivation Scale towards Learning Physics (MSLP). Qualitative insights were collected through focus group discussions to substantiate the numerical results. Descriptive and inferential statistics, including t-tests and the Wilcoxon signed-rank test, were used for data analysis, while thematic analysis was applied to the qualitative interviews. Results showed significant improvements across metrics. The mean FCI score rose from 14.14 to 21.16 (t=-8.833, p=0.000), indicating a statistically significant gain in academic achievement. Similarly, the MSLP mean score increased from 2.37 to 3.65 (ω=0.00), confirming a significant boost in student motivation. Qualitative findings revealed that the 5E Learning Cycle Method enhanced the learning experience by fostering a low- pressure environment, encouraging collaboration, and increasing student confidence. The study concludes that the 5E Learning Cycle Method effectively improves pre-service teachers’ understanding of mechanics and their drive to learn. Consequently, it is recommended that the physics instructor integrate the 5E Learning Cycle Method into their curricula to better address student needs and enhance classroom outcomes.
Downloads
References
Boakye, S., & Nabie, M. J. (2022, June 29). The effect of using the 5E instructional model on students’ performance in and motivation to learn sine rule and its applications. International Journal of Curriculum and Educational Studies. https://ijces.net/index.php/ijces/article/view/12
Bybee, R. W. (2009). The BSCS 5E instructional model and 21st-century skills. Biological Sciences Curriculum Study. https://bscs.org/resources/reports/the-bscs-5e-instructional-model-and-21st-century-
Bybee, R. W. (2015). The BSCS 5E instructional model: Creating teachable moments. NSTA Press.
https://my.nsta.org/resource/101638/the-bscs-5e-instructional-model-creating-teachable-moments
Bybee, R. W., Taylor, J. A., Gardner, A., Van Scotter, P., Powell, J. C., Westbrook, A., & Landes, N. M. (2006). The BSCS 5E instructional model: Origins and effectiveness. Biological Sciences Curriculum Study. https://bscs.org/resources/reports/the-bscs-5e-instructional-model-origins-and-effectiveness
Glynn, S. M., Bryan, R. R., Brickman, P., & Armstrong, N. (2015). Intrinsic motivation, self-efficacy, and interest in science. In R. K. Sawyer (Ed.), The Cambridge handbook of the learning sciences (2nd ed.). Cambridge University Press. https://doi.org/10.3102/978-0-935302-42-4_11
Gottfried, A. E., & Gottfried, A. W. (2004). Toward the development of a motivational theory of giftedness. In S. M. Reis (Ed.), Essential readings in gifted education: Programs and services for gifted learners (pp. 121–136). Corwin Press. https://doi.org/10.4135/9781483328680.n9
Jack, G. U. (2017). The effect of learning cycle constructivist-based approach on students’ academic achievement and attitude towards chemistry in secondary schools in north-eastern part of Nigeria. Educational Research and Reviews, 12(7), 456–466. https://doi.org/10.5897/ERR2016.3095
Karthikeyan, S., & Densia, S. P. (2021). The effect of 5E learning cycle model in teaching physics on students’ academic achievement and the permanence of their knowledge. Elementary Education Online, 20(5), 6324–6330. https://doi.org/10.17051/ilkonline.2021.05.713
Manuel, R. (2018). Attitude and motivation towards learning physics. arXiv. https://doi.org/10.48550/arXiv.1805.02293
Nisa, K., Ramadhan, S., & Thahar, H. E. (2022). 5E learning cycle model on students’ learning outcomes. Al-Ishlah: Jurnal Pendidikan, 14(3), 3361–3374. https://doi.org/10.35445/alishlah.v14i3.1868
Paguirigan, E. M., & Paguirigan, M. J. R. (2024). Development of a mathematics module using the 5E learning model. International Journal of Learning, Teaching and Educational Research,23(11), 504–519. https://doi.org/10.26803/ijlter.23.11.26
Piaget, J. (1970). Science of education and the psychology of the child. Orion Press.
Putra, F., Kholifah, I. Y. N., Subali, B., & Rusilowati, A. (2018). 5E-learning cycle strategy: Increasing conceptual understanding and learning motivation. Jurnal Ilmiah Pendidikan Fisika Al-Biruni, 7(2), 171–181. https://doi.org/10.24042/jipfalbiruni.v7i2.2898
Uswatun. (2020). The 5E learning cycle model, in an effort to foster students’ mathematical communication skills viewed from an academic level. Journal of Physics: Conference Series, 1657(1), Article 012091. https://doi.org/10.1088/1742-6596/1657/1/012091
Vygotsky, L. S. (1978). Mind in society: The development of higher psychological processes. Harvard University Press.
Yonyubon, S., Khamsong, J., & Worapun, W. (2022, August 24). The effects of 5E inquiry-based learning management on grade 7 students’ science learning achievement. Journal of Educational Issues, 8(2). https://doi.org/10.5296/jei.v8i2.20082
Downloads
Published
Issue
Section
License
Copyright (c) 2026 The International Review of Multidisciplinary Research

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