Exploratory Research On Primary School Student’s Conception of Mass and Heat

Authors

  • Saripah Salbiah Syed Abdul Azziz Department of Chemisty, Faculty of Science and Mathematics, Universiti Pendidikan Sultan Idris, 35900 Tanjung Malim, Perak, Malaysia
  • Khairul Bariyah Abdul Kadir Department of Chemisty, Faculty of Science and Mathematics, Universiti Pendidikan Sultan Idris, 35900 Tanjung Malim, Perak, Malaysia
  • Hafsah Taha Department of Chemisty, Faculty of Science and Mathematics, Universiti Pendidikan Sultan Idris, 35900 Tanjung Malim, Perak, Malaysia
  • Nurul Aini Bakar Department of Chemisty, Faculty of Science and Mathematics, Universiti Pendidikan Sultan Idris, 35900 Tanjung Malim, Perak, Malaysia
  • Lee Tien Tien Department of Chemisty, Faculty of Science and Mathematics, Universiti Pendidikan Sultan Idris, 35900 Tanjung Malim, Perak, Malaysia
  • Nur Aila Farihah Mohd Nazri Department of Chemisty, Faculty of Science and Mathematics, Universiti Pendidikan Sultan Idris, 35900 Tanjung Malim, Perak, Malaysia
  • Othman Talib Department of Science and Technical Education, Faculty of Educational Studies, Universiti Putra Malaysia, 43400 Serdang, Selangor, Malaysia
  • Tengku Putri Norishah Tengku Shariman Faculty of Creative Multimedia, Multimedia University 35900 Cyberjaya, Malaysia
  • Abu-Baker M. Abdel-Aal Department of Pharmaceutical Organic Chemistry, Faculty of Pharmacy, Assiut University, Assiut 71526, Egypt

DOI:

https://doi.org/10.37134/jpsmm.vol15.2.2.2025

Keywords:

primary school science, misconception, matter, heat

Abstract

This study employed an exploratory quantitative descriptive design to identify the level of misconception among Malaysian primary school students on science topics, specifically related to matter and heat. A total of 289 students participated in the study, comprising 136 Year 3 students from the state of Perak and 153 Year 5 students from the state of Selangor. Two sets of open-ended test instruments were developed based on the national science syllabus and validated by expert science educators. Each set consisted of six subjective questions designed to elicit students' understanding of the targeted topics. The data collected were descriptively analysed to determine the patterns of misconception. Findings revealed that Year 3 students demonstrated a high level of misconception in both matter and heat, while Year 5 students exhibited a high level of misconception in matter but a relatively lower level in heat. Most students experienced difficulties in describing the properties of matter and explaining its transformation processes. In addition, many students struggled to define and conceptualize heat scientifically, often confusing it with temperature and relying on everyday experiences or non-scientific terms. These results highlight the prevalence of misconceptions in early science learning and the importance of addressing them through more conceptually grounded instruction.

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References

Agung, L., & Ardianti, S. D. (2020). Identifying students’ misconceptions in science through open-ended questions: A constructivist assessment approach. Journal of Physics: Conference Series, 1567(3), 032036. https://doi.org/10.1088/1742-6596/1567/3/032036

Ali, N., & Ismail, Z. (2021). Exploring primary students’ misconceptions in science: A qualitative approach to conceptual understanding. International Journal of Science Education, 43(5), 678–695. https://doi.org/10.1080/09500693.2021.1875829

Cohen, J. (1988). Statistical power analysis for the behavioral sciences (2nd ed.). Lawrence Erlbaum Associates, Hillsdale, New Jersey, USA

Kadir, N. A., Aziz, M. A., & Latip, A. (2023). A constructivist approach to diagnosing misconceptions in primary science classrooms. Malaysian Online Journal of Educational Sciences, 11(2), 45–57

Lemmer, M., Kriek, J., & Erasmus, B. (2020). Analysis of students’ conceptions of basic magnetism from a complex systems perspective. Research in Science Education, 50(2), 375–392.

Ministry of Education Malaysia, (2016). TIMSS 2015 Report- Trends in International Mathematics and Science Study. Putrajaya: Education Policy Planning and Research Division. Retrieved from https://www.moe.gov.my/storage/files/shares/Dasar/PPPM/MEB%20Annual%20Report%202016.pdf

Ministry of Education Malaysia. (2020). TIMSS 2019 National Report: Malaysia.

Misbah, N., Gul, R. B., & Saeed, M. (2021). Students’ alternative conceptions about science: A diagnostic analysis. Journal of Educational Research, 24(2), 100–111. https://doi.org/10.1108/JER-06-2021-0024

Mullis, I. V. S., Martin, M. O., Foy, P., Kelly, D. L., & Fishbein, B. (2020). TIMSS 2019 International Results in Science and Mathematics. TIMSS & PIRLS International Study Center.

Nishaal, B., Kriek, J., and Lemmer, M. (2023). Insights from coherence in students’ scientific reasoning skills. Heliyon, 9 (7) e17349. Retrieved from https://doi.org/10.1016/j.heliyon.2023.e17349.

Noto, M. S., & Handayani, D. (2022). Validity and reliability of open-ended science test instruments for primary students. International Journal of Educational Methodology, 8(3), 453–460. https://doi.org/10.12973/ijem.8.3.453

Nurlaelah, E., Nugraha, A., & Hasanah, L. (2021). The use of essay tests to identify conceptual understanding in science education. Jurnal Pendidikan IPA Indonesia, 10(4), 563–570. https://doi.org/10.15294/jpii.v10i4.32456

Piaget, J. (1967). Six psychological studies. Random House, New York, USA.

Puteh, M., Hamzah, M. I., & Rahmat, N. H. (2021). Students’ prior knowledge and learning environments: A constructivist perspective in science education. Asian Journal of University Education, 17(4), 24–33. https://doi.org/10.24191/ajue.v17i4.16090

Raflee, N. A., & Halim, L. (2021). The effectiveness of critical thinking in improving skills in KBAT problem solving. Jurnal Pendidikan Sains dan Matematik Malaysia, 11(1), 56–70. https://doi.org/10.37134/jpsmm.vol11.1.5.2021

Rahman, F. A., & Mohamad, M. (2022). Developing valid science test instruments using constructivist design principles. International Journal of Academic Research in Progressive Education and Development, 11(1), 112–125. https://doi.org/10.6007/IJARPED/v11-i1/12022

Sari, R. M., Fauzi, A., & Suwarma, I. R. (2021). Diagnostic analysis of students' misconceptions in science using a three-tier test. Journal of Science Learning, 4(2), 89–95. https://doi.org/10.17509/jsl.v4i2.30492

Sari, R. M., Fauzi, A., & Suwarma, I. R. (2023). Developing diagnostic tools to identify students’ misconceptions in science. Journal of Science Learning, 6(1), 23–31. https://doi.org/10.17509/jsl.v6i1.51270

Shaban, A. M., (2022). A comparison study between objective test and subjective test [Review of a comparison study between objective test and subjective test]. Retrieved from https://www.researchgate.net/publication/359052241

Shtulman, A., & Legare, C. H. (2019). Competing explanations of competing explanations: accounting for conflict between scientific and folk explanations. Topics in Cognitive Science. Retrieved from https://doi.org/10.1111/tops.12483.

Subramaniam, R., & Sapri, M. (2022). A guided discovery learning model to improve conceptual understanding in physics. Jurnal Pendidikan Sains dan Matematik Malaysia, 12(1), 74–89. https://doi.org/10.37134/jpsmm.vol12.1.7.2022

Tekkaya, C., Yilmaz-Tuzun, O., & Oztekin, C. (2020). Science misconceptions and conceptual change. In Science Education in Context (pp. 145–166). Springer. https://doi.org/10.1007/978-3-030-49594-1_9

Wijaya, A. P., Nusantara, T., Sudirman., & Hidayanto, E. (2023). How are students' prior knowledge differentiating analytical thinking process in identifying the convergence of real number sequences? International Journal of Instruction, 16(1), 205-218.

Wijaya, A. F., & Hidayanto, E. (2023). Diagnosing everyday-based misconceptions in primary science education. International Journal of Instruction, 16(1), 141–158. https://doi.org/10.29333/iji.2023.1619a

Vygotsky, L. (1994, January). Academic concepts in school-aged children. Blackwell, Oxford, UK.

Zhou, W., & Wei, B. (2020). Students’ understanding of matter and its transformations in primary science education. International Journal of Science Education, 42(2), 211–231. https://doi.org/10.1080/09500693.2019.1710734

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Published

2025-08-25

How to Cite

Syed Abdul Azziz, S. S., Abdul Kadir, K. B., Taha, H., Bakar, N. A., Lee, T. T., Mohd Nazri, N. A. F., Talib, O., Tengku Shariman, T. P. N., & M. Abdel-Aal, A.-B. (2025). Exploratory Research On Primary School Student’s Conception of Mass and Heat. Jurnal Pendidikan Sains Dan Matematik Malaysia, 15(2), 13-30. https://doi.org/10.37134/jpsmm.vol15.2.2.2025

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