Visualization Technology in High School Chemistry: A Systematic Review on Representations and Pedagogical Strategies
Abstract
Keywords
Full Text:
PDFReferences
Berg, A., Orraryd, D., Pettersson, A. J., & Hultén, M. (2019). Representational challenges in animated chemistry: Self-generated animations as a means to encourage students' reflections on sub-micro processes in laboratory exercises. Chemistry Education Research and Practice, 20(4), 710–737. https://doi.org/10.1039/C8RP00288F
Chiu, M.-H., Chou, C.-C., Chen, Y.-H., Hung, T., Tang, W.-T., Hsu, J.-W., Liaw, H. L., & Tsai, M.-K. (2019). Model-based learning about structures and properties of chemical elements and compounds via the use of augmented realities. Chemistry Teacher International, 1(1), 20180002. https://doi.org/10.1515/cti-2018-0002
Chongo, S., Osman, K., & Nayan, N. A. (2021). Impact of the plugged-in and unplugged chemistry computational thinking modules on achievement in chemistry. Eurasia Journal of Mathematics, Science and Technology Education, 17(4), em1953. https://doi.org/10.29333/ejmste/10789
Fernández, A. A., López-Torres, M., Fernández, J. J., & Vázquez-García, D. (2023). Student-generated videos to promote understanding of chemical reactions. Journal of Chemical Education, 100(2), 1039–1046. https://doi.org/10.1021/acs.jchemed.2c00813
Gkitzia, V., Salta, K., & Tzougraki, C. (2020). Students' competence in translating between different types of chemical representations. Chemistry Education Research and Practice, 21(1), 307–318. https://doi.org/10.1039/C8RP00301G
Holmelin, F. L., Nyström, P., Fauville, G., & Eriksson, L. A. (2025). Design of computer simulation exercises on polarity and intermolecular attractive forces. Journal of Chemical Education, 102(5), 1765–1775. https://doi.org/10.1021/acs.jchemed.4c01348
Hunegnaw, T., Hailegebreal, T. D., Getahun, D. A., & Atlabachew, M. (2025). Effect of virtual experiments compared to physical experiments on students' conceptual understanding of chemical kinetics concepts. European Journal of STEM Education, 10(1), 03. https://doi.org/10.20897/ejsteme/16261
Irwanto, I., Lintangnicita, T., Cahyana, U., & Cha, J. (2025). Examining the effect of immersive virtual reality on 11th-grade students' creative thinking disposition and academic achievement. Discover Education, 4(1), 438. https://doi.org/10.1007/s44217-025-00880-1
Jere, S., & Mpeta, M. (2024). Enhancing learners' conceptual understanding of reaction kinetics using computer simulations: A case study approach. Research in Science Education, 54(6), 999–1023. https://doi.org/10.1007/s11165-024-10182-5
Johnstone, A. H. (1993). The development of chemistry teaching. Journal of Chemical Education, 70(9), 701–705. https://doi.org/10.1021/ed070p701
Kekeba, S. K. (2025). Effects of jigsaw learning strategy integrated with computer simulations on gender differences in students' achievement and attitude in learning chemistry. Cogent Education, 12(1), 2346041. https://doi.org/10.1080/2331186X.2024.2346041
Kotsalidis, P. E., Kranc, S. N., Berryman, M., Radhakrishnan, M. L., & Elmore, D. E. (2024). EMMAs: Implementation and assessment of a suite of cross-disciplinary, case-based high school activities to explore three-dimensional molecular structure, noncovalent interactions, and molecular dynamics. Journal of Chemical Education, 101(6), 2436–2447. https://doi.org/10.1021/acs.jchemed.4c00036
Lin, C.-Y., & Wu, H.-K. (2021). Effects of different ways of using visualizations on high school students' electrochemistry conceptual understanding and motivation towards chemistry learning. Chemistry Education Research and Practice, 22(3), 786–801. https://doi.org/10.1039/D0RP00308E
Lossjew, J., & Bernholt, S. (2024). Pressure's on: Exploring the course of chemical reactions with Arduino and GeoGebra in a hands-on science approach. Journal of Chemical Education, 101(7), 2912–2919. https://doi.org/10.1021/acs.jchemed.4c00178
Magnone, K. Q., & Yezierski, E. J. (2024). Generating an evidence-based guide to scaffolding sodium chloride dissolution using the VisChem approach. Journal of Chemical Education, 101(4), 1416–1424. https://doi.org/10.1021/acs.jchemed.3c00989
Martinez, B. L., Sweeder, R. D., VandenPlas, J. R., & Herrington, D. G. (2021). Improving conceptual understanding of gas behavior through the use of screencasts and simulations. International Journal of STEM Education, 8(1), 5. https://doi.org/10.1186/s40594-020-00261-0
Mubarak, S., Khatmunnubuwah, M. T. N., & Raehanah, R. (2025). Questing through acid–base chemistry: An RPG-based educational game for high school learning. Online Learning in Educational Research (OLER), 5(2), 411–424. https://doi.org/10.58524/oler.v5i2.842
Muljana, P. S., & Selco, J. I. (2023). Evaluating the design and development of the 'Making Molecules' simulation: Students' perceptions and recommendations. Journal of Interactive Media in Education, 2023(1), 1. https://doi.org/10.5334/jime.772
Peperkorn, Y., Buschmann, J.-K., & Schwedler, S. (2024). Comparing drawing tasks and elaborate single-choice questions in simulation-based learning: How do they facilitate students' conceptual understanding on chemical equilibria? Chemistry Education Research and Practice, 25(4), 1030–1051. https://doi.org/10.1039/D3RP00113J
Praisri, A., & Faikhamta, C. (2020). Enhancing students' mental models of chemical equilibrium through argumentation within model-based learning. International Journal of Learning, Teaching and Educational Research, 19(7), 121–142. https://doi.org/10.26803/ijlter.19.7.7
R. Zohar, A., & Levy, S. T. (2019). Attraction vs. repulsion – learning about forces and energy in chemical bonding with the ELI-Chem simulation. Chemistry Education Research and Practice, 20(4), 667–684. https://doi.org/10.1039/C9RP00007K
Rahmawati, Y., Zulhipri, Z., Hartanto, O., Falani, I., & Iriyadi, D. (2022). Students' conceptual understanding in chemistry learning using PhET interactive simulations. Journal of Technology and Science Education, 12(2), 303. https://doi.org/10.3926/jotse.1597
Saidin, N. F., Abd Halim, N. D., Yahya, N., & Zulkifli, N. N. (2024). Enhancing students' critical thinking and visualisation skills through mobile augmented reality. Knowledge Management & E-Learning: An International Journal, 1–41. https://doi.org/10.34105/j.kmel.2024.16.001
Saputra, A., Tania, L., & Rosilawati, I. (2023). Using Molecular Workbench in a collaborative discovery learning environment to improve students' activities and critical thinking abilities in chemical equilibrium. International Journal of Information and Education Technology, 13(10), 1556–1562. https://doi.org/10.18178/ijiet.2023.13.10.1962
Sunyono, S., & Meristin, A. (2018). The effect of multiple representation-based learning (MRL) to increase students' understanding of chemical bonding concepts. Jurnal Pendidikan IPA Indonesia, 7(4). https://doi.org/10.15294/jpii.v7i4.16219
Wuttisela, K., Jarujamrus, P., Chairam, S., & Supasorn, S. (2024). Small-scale and smartphone-based colorimetric experiments to enhance Grade-11 students' conceptual understanding of chemical equilibrium. Jurnal Pendidikan IPA Indonesia, 13(4). https://doi.org/10.15294/vdxeak53
Yamtinah, S., Susanti Vh, E., Saputro, S., Ariani, S. R. D., Shidiq, A. S., Sari, D. R., & Ilyasa, D. G. (2023). Augmented reality learning media based on tetrahedral chemical representation: How effective in learning process? Eurasia Journal of Mathematics, Science and Technology Education, 19(8), em2313. https://doi.org/10.29333/ejmste/13436
Yaseen, Z. (2018). Using student-generated animations: The challenge of dynamic chemical models in states of matter and the invisibility of the particles. Chemistry Education Research and Practice, 19(4), 1166–1185. https://doi.org/10.1039/C8RP00136G
DOI: https://doi.org/10.37905/jjec.v8i2.39223
Refbacks
- There are currently no refbacks.
Editorial Office
|
Department of Chemistry, Universitas Negeri Gorontalo |
|
E-mail: [email protected] |
|
Jambura Journal of Educational Chemistry (p-ISSN: 2655-7606 | e-ISSN: 2656-6427) by Department of Chemistry Universitas Negeri Gorontalo. This work is licensed under a Creative Commons Attribution 4.0 International License. Powered by Public Knowledge Project OJS |







