Exploring The Effects of a Short-Term S.T.E.A.M. Carnival on Female Secondary School Students' Attitudes and Motivation toward STEM Learning

Authors

  • Siti Nafisah Md Rashid Faculty of Applied Sciences, Universiti Teknologi MARA Cawangan Negeri Sembilan Author
  • Amin Aadenan Faculty of Applied Sciences, Universiti Teknologi MARA Cawangan Negeri Sembilan Author
  • Sheila Fitriana Islamic University of Northern Sumatera, Indonesia Author

DOI:

https://doi.org/10.15294/jpii.v15i2.45661

Keywords:

experiential learning, STEM education, female students, motivation, attitudes

Abstract

Experiential learning is increasingly recognized as a pedagogical approach that bridges theoretical knowledge and practical application in STEM education, contributing to Sustainable Development Goals 4 (Quality Education) and 5 (Gender Equality) by promoting inclusive participation in STEM learning. This study explores female secondary school students' attitudes, motivation, and engagement in STEM learning following participation in hands-on electrical circuit activities conducted during a S.T.E.A.M. Carnival in Malaysia. Grounded in Kolb's Experiential Learning Theory, a mixed-method design involving structured experiential activities and a post-intervention questionnaire was employed. The participants consisted of 15 female secondary school students from diverse academic backgrounds in Malaysia. Descriptive statistics were used to examine students' perceptions of their learning experiences, motivation, and understanding of STEM concepts. The findings suggest that students generally held positive attitudes toward STEM, with personal curiosity and perceived career opportunities identified as the primary motivational factors. A large proportion of students reported a better understanding of physics concepts (93.3%) and greater confidence in scientific problem-solving (86.7%) following participation in the activities. Students also expressed strong preferences for hands-on and collaborative learning approaches, indicating positive perceptions of experiential learning as a means of supporting engagement and self-efficacy. Overall, the findings suggest that short-term experiential STEM interventions are associated with positive self-reported attitudes, motivation, and engagement among participating female students, highlighting the potential of experiential learning to support efforts to reduce gender disparities in STEM engagement. However, the study is limited by its small, female-only sample and reliance on self-reported data, underscoring the need for further research with larger, more diverse populations.

Author Biographies

  • Siti Nafisah Md Rashid, Faculty of Applied Sciences, Universiti Teknologi MARA Cawangan Negeri Sembilan

    Faculty of Applied Sciences, Universiti Teknologi MARA Cawangan Negeri Sembilan, Kampus Kuala Pilah, Malaysia

  • Amin Aadenan, Faculty of Applied Sciences, Universiti Teknologi MARA Cawangan Negeri Sembilan

    Faculty of Applied Sciences, Universiti Teknologi MARA Cawangan Negeri Sembilan, Kampus Kuala Pilah, Malaysia

  • Sheila Fitriana, Islamic University of Northern Sumatera, Indonesia

    Physics Education Study Program, Faculty of Teacher Training and Education, Islamic University of Northern Sumatera, Indonesia

References

Adhelacahya, K., Sukarmin, S., & Sarwanto, S. (2023). The impact of problem-based learning electronics module integrated with STEM on students' critical thinking skills. Jurnal Penelitian Pendidikan IPA, 9(7), 4869–4878.

Afriana, J., Permanasari, A., & Fitriani, A. (2016). Project based learning integrated to stem to enhance elementary school's students scientific literacy. Jurnal Pendidikan IPA Indonesia, 5(2), 261–267.

Agustin, Y., Alizar, Ellizar, & Oktavia, B. (2026). Enhancing Chemistry Instruction through the Integration of STEM-Based Learning and Lesson Study: A Practice-Based Investigation. Indonesian Journal of Science Education and Applied Research, 1(1), 1–9.

Al-Hinai, M., Shahat, M. A., Omara, E., Emam, M. M., Ismail, S. S., Alhabsi, N., ... & Al-Balushi, S. M. (2026). Exploring a STEM-Integrated Instructional Approach and Its Preliminary Contextual Assessments of Problem-Solving and Motivation in Oman. European Journal of STEM Education, 11(1), 3.

AlAli, R. (2024). Enhancing 21st century skills through integrated STEM education using project-oriented problem-based learning. Geo Journal of Tourism and Geosites, 53(2), 421–430.

Almujaddid, S. A., Yuliati, L., & Wisodo, H. (2025). Experiential learning with STEM-computational thinking (STEM-CT) approach to develop students' problem solving skills. Jurnal Penelitian Pendidikan IPA, 11(1), 1026–1032.

Amri, M. F., Prima, E. C., Winarno, N., & Mohamad, M. (2024). STEM learning with a simple hydraulic pump project to improve student communication and collaboration skills. Jurnal Pendidikan IPA Indonesia, 13(3).

Andayani, A., & Gunawan, P. (2025). Implementation of active learning based on problem-based learning to improve critical thinking ability of junior high school students. Transformative Education Studies, 1(2), 38–45.

Anthony, H. M., Ndubuisi, S. A., & Ehigie, D. E. (2021). Integrating Active Learning and inquiry-Based Approaches to Enhance Student Engagement and Achievement in STEM Classrooms. J Adv Educ Philos, 5(12), 429–439.

Aqlan, F., & Zhao, R. (2021). Assessment of collaborative problem solving in engineering students through hands-on simulations. IEEE Transactions on Education, 65(1), 9–17.

Ball, C., Huang, K.-T., Cotten, S. R., Rikard, R. V, & Coleman, L. O. (2016). Invaluable values: an expectancy-value theory analysis of youths' academic motivations and intentions. Information, Communication & Society, 19(5), 618–638.

Braun, V., & Clarke, V. (2006). Using thematic analysis in psychology. Qualitative Research in Psychology, 3(2), 77–101.

Chin, Y. C., & Chang, C. C. (2026). Motivational Mechanisms in CDIO-Based Sustainability Education: Effects of Experiential and AI-Supported Learning on Interest and Satisfaction. Sustainability, 18(6), 2724.

Cohen, S. M., Hazari, Z., Mahadeo, J., Sonnert, G., & Sadler, P. M. (2021). Examining the effect of early STEM experiences as a form of STEM capital and identity capital on STEM identity: A gender study. Science Education, 105(6), 1126–1150.

Cottafava, D., Cavaglià, G., & Corazza, L. (2019). Education of sustainable development goals through students' active engagement: A transformative learning experience. Sustainability Accounting, Management and Policy Journal, 10(3), 521–544.

DeWitt, J., Archer, L., & Mau, A. (2016). Dimensions of science capital: exploring its potential for understanding students' science participation. International Journal of Science Education, 38(16), 2431–2449.

Dianita, B., & Vinta Angela Tiarani. (2023). Problem based learning model with experiential learning to increase creative thinking and critical thinking ability. Jurnal Penelitian Dan Pengembangan Pendidikan, 7(2), 328–335.

Diquito, T. J., Dhaniaputri, R., & Acuña, A. R. (2025). Teaching Strategies in Physics Education: A Systematic Literature Review. Jurnal Penelitian Pendidikan IPA, 11(5), 112–123.

Eccles, J. S., & Wigfield, A. (2020). From expectancy-value theory to situated expectancy-value theory: A developmental, social cognitive, and sociocultural perspective on motivation. Contemporary Educational Psychology, 61, 101859.

Fitriani, E., & Festiyed, F. (2023). The effect of stem integrated physics e-modules to improve critical thinking ability of class XI students of sman 2 lubuk sikaping. Physics Learning and Education, 1(2), 124–129.

Foss, M., & Liu, Y. (2020). Project-based learning (PBL) center to bridge students with technology. In 2020 Intermountain Engineering, Technology and Computing (IETC), 1–5. IEEE.

Gardner, R. C. (2005). Attitude / Motivation Test Battery : International AMTB Research Project. Canada: The University of Western Ontario.

Gossen, D., & Ivey, T. (2023). The impact of in-and out-of-school learning experiences in the development of students' STEM self-efficacies and career intentions. Journal for STEM Education Research, 6(1), 45–74.

Hamilton, E. R., & Margot, K. C. (2023). Using Practice-Based Learning to Extend Undergraduate Teaching and Learning. International Journal for the Scholarship of Teaching and Learning, 17(1), 23.

Hiwatig, B. M. R., Roehrig, G. H., & Rouleau, M. D. (2024). Unpacking the nuances: an exploratory multilevel analysis on the operationalization of integrated STEM education and student attitudinal change. Disciplinary and Interdisciplinary Science Education Research, 6(1), 18.

Idris, R., Bacotang, J., & Govindasamy, P. (2023). Charting the Course : STEM Interest Career Survey among Secondary School Students in Malaysia. International Journal of Academic Research in Business and Social Sciences, 13(9), 1345–1355.

Kairi, N. I., Jamaludin, N., & Mohd Ridzuan, N. D. (2024). Competition-Based Learning in Science Camp to Stimulate Upper Secondary School Students' Motivation in Learning STEM. Sains Humanika, 16(2), 53–63.

Kennedy, T. J., & Cherry, A. R. (2023). Sustainable Development Goals and Science and Technology Education BT - Contemporary Issues in Science and Technology Education. In B. Akpan, B. Cavas, & T. Kennedy (Eds.), In Contemporary issues in science and technology education (pp. 131–149). Cham: Springer Nature Switzerland.

Khaeruddin, Wahyuni, A. S. A., & Kijkuakul, S. (2025). Digitally Integrated Project-Based Contextual Physics Resources to Enhance Students' Critical Thinking Skills to Support SDG-4. Jurnal Pendidikan IPA Indonesia, 14(4).

Khairati, K., Artika, W., Sarong, M. A., Abdullah, A., & Hasanuddin, H. (2021). Implementation of STEM-based experiential learning to improve critical thinking skills on ecosystem materials. Jurnal Penelitian Pendidikan IPA, 7(4), 752–757.

Kim, A. Y., Sinatra, G. M., & Seyranian, V. (2018). Developing a STEM identity among young women: A social identity perspective. Review of Educational Research, 88(4), 589–625.

Kolb, D. A. (2014). Experiential learning: Experience as the source of learning and development. FT Press.

Kong, Y. (2021). The role of experiential learning on students' motivation and classroom engagement. Frontiers in Psychology, 12, 771272.

Kusumoto, Y. (2018). Enhancing critical thinking through active learning. Language Learning in Higher Education, 8(1), 45–63.

Lestari, I. F. (2021). Experiential learning using STEM approach in improving students' problem solving ability. Journal of Physics: Conference Series, 1806(1), 12005.

Master, A. (2021). Gender Stereotypes Influence Children's STEM Motivation. Child Development Perspectives, 15(3), 203–210.

Master, A., Meltzoff, A. N., & Cheryan, S. (2021). Gender stereotypes about interests start early and cause gender disparities in computer science and engineering. Proceedings of the National Academy of Sciences of the United States of America, 118(48).

Ministry of Science, Technology and Innovation. (2025). STI foresight report 2025–2040: Future of STEM talent in Malaysia: A Delphi approach. https://mastic.mosti.gov.my/ms/publication/sti-foresight-2025-2040-future-of-stem-talent-in-malaysia/

Novitasari, A., Isnaini, L. A., & Supriyadi, S. (2024). The STEM-based project-based learning impact on students' critical thinking skills. Inornatus: Biology Education Journal, 4(2), 91–102.

Nugroho, O. F., Juwita, S. R., & Febrianti, N. (2022). STEM education planning based on contextual issues sustainable development goals (SDGs). Pedagonal: Jurnal Ilmiah Pendidikan, 6(2), 159–168.

Oliveira, A. W., Musah, R. A., Zacharia, Z. C., Pavlou, Y., Sgro, C. M., Lathrop, R., ... & Park, J. (2025). The persistent problem of undergraduate student attrition in STEM. International Education Review, 3(1), 85-111.

Parno, Estianinur, & Latifah, E. (2021). The increase of problem solving skills of students through STEM integrated experiental learning with formative assessment. AIP Conference Proceedings, 2331(1), 30021.

Putri, K. A. A. K., & Dewi, N. L. P. E. S. (2025, May). The impact of experiential learning on student engagement and outcomes: A case study in a national school of Bali, Indonesia. In 6th International Conference on Education and Social Sciences (ICESS 2024) (pp. 278-291). Atlantis Press.

Ramadhan, M. F., Mundilarto, M., Ariswan, A., Irwanto, I., & Bahtiar, B. (2023). The Effect of Interface Instrumentation Experiments-Supported Blended Learning on Students' Critical Thinking Skills and Academic Achievement. International Journal of Interactive Mobile Technologies, 17(14), 101–125.

Roberts, T., Jackson, C., Mohr-Schroeder, M. J., Bush, S. B., Maiorca, C., Cavalcanti, M., ... & Cremeans, C. (2018). Students' perceptions of STEM learning after participating in a summer informal learning experience. International journal of STEM education, 5(1), 35.

Rohman, M. H., Marwoto, P., Eko Nugroho, S., & Supriyadi, S. (2024). Effectiveness of Ethnoecological-STEM Project-Based Learning Model to Improve Critical Thinking Skills , Creativity , and Science Concept Mastery. International Journal of Cognitive Research in Science, Engineering and Education, 12, 521–534.

Roig, P. J., Alcaraz, S., Gilly, K., Bernad, C., & Juiz, C. (2026). Combining Active Learning Methodologies in a STEM-Related Course: A Case Study. Education Sciences, 16(5), 740.

Shahbazloo, F., & Mirzaie, R.A. (2023). Investigating the effect of 5E-based STEM education in solar energy context on creativity and academic achievement of female junior high school students. Thinking Skills and Creativity, 49, 101336.

Shi, L., Dong, L., Zhao, W., & Tan, D. (2023). Improving middle school students' geometry problem solving ability through hands-on experience: An fNIRS study. Frontiers in Psychology, 14, 1126047.

Shivaramu, H. T., Aveen, K. P., & Ullal, V. N. (2025). The role of experiential learning in improving academic performance and student satisfaction in engineering education. Discover Education, 4(1), 545.

Simanjuntak, M. P., Hutahaean, J., Marpaung, N., & Ramadhani, D. (2021). Effectiveness of Problem-Based Learning Combined with Computer Simulation on Students' Problem-Solving and Creative Thinking Skills. International Journal of Instruction, 14(3), 519–534.

Stanberry, M. L., & Payne, W. R. (2018). Active learning in undergraduate STEM education: A review of research. Research Highlights in STEM Education, 147.

Steele, A. L. (2023). Experiential learning in engineering education. CRC Press.

Stephenson, T., Fleer, M., & Fragkiadaki, G. (2022). Increasing Girls' STEM Engagement in Early Childhood: Conditions Created by the Conceptual PlayWorld Model. Research in Science Education, 52(4), 1243–1260.

Theobald, E. J., Hill, M. J., Tran, E., Agrawal, S., Arroyo, E. N., Behling, S., ... & Freeman, S. (2020). Active learning narrows achievement gaps for underrepresented students in undergraduate science, technology, engineering, and math. Proceedings of the National Academy of Sciences, 117(12), 6476-6483.

Thibodeaux, T., Jordan, S., & Kemerly, S. (2025). Student perceptions of STEM camp experience and STEM career pathways: a mixed methods study. Discover Education, 4(1), 224.

U-senyang, S. (2024). Experiential Learning in Action : Analyzing Outcomes and Educational Implications. Journal of Education and Learning Reviews, 1(2), 13–28.

Vongkulluksn, V. W., Matewos, A. M., Sinatra, G. M., & Marsh, J. A. (2018). Motivational factors in makerspaces: a mixed methods study of elementary school students' situational interest, self-efficacy, and achievement emotions. International Journal of STEM Education, 5(1), 43.

Wijayati, A. Y., Widodo, W., & Istianah, F. (2025). The Effectiveness of STEM-Based E-Modules in Enhancing Critical Thinking Skills of Elementary School Students. Attadrib: Jurnal Pendidikan Guru Madrasah Ibtidaiyah, 8(3), 679–694.

Xia, X., Bentley, L. R., Fan, X., & Tai, R. H. (2025). STEM outside of school: A meta-analysis of the effects of informal science education on students' interests and attitudes for STEM. International Journal of Science and Mathematics Education, 23(4), 1153-1181.

Zulfawati, Z., Mayasari, T., & Handhika, J. (2022). The Effectiveness of the Problem-Based Learning Model Integrated STEM Approach in Improving the Critical Thinking Skills. Jurnal Penelitian Fisika Dan Aplikasinya (JPFA), 12(1), 76–91.

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Published

2026-06-29

Article ID

45661

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Section

Articles

How to Cite

Md Rashid, S. N. ., Aadenan, A. ., & Fitriana, S. . (2026). Exploring The Effects of a Short-Term S.T.E.A.M. Carnival on Female Secondary School Students’ Attitudes and Motivation toward STEM Learning. Jurnal Pendidikan IPA Indonesia, 15(2). https://doi.org/10.15294/jpii.v15i2.45661