Pengaruh Pembelajaran dengan Menggunakan Modul Berbantuan Simulasi terhadap Peningkatan Penguasaan Konsep Mahasiswa Calon Guru Fisika pada Materi Gelombang Mekanik

Widya Rohmawati, Sutopo Sutopo, Ahmad Taufiq, Zuerdiana Binti Manaf

Abstract


This study aims to determine the effectiveness of simulation-assisted teaching materials in increasing conceptual understanding of prospective physics teacher students about mechanical waves. Research method is a one-group pretest-posttest design with subjects consisted of 25 physics education undergraduate students at Universitas Negeri Malang. Research instrument is a conceptual understanding test item of mechanical waves. The results showed that the acquisition of an increase in learning outcomes through the calculation of the normalized average gain is 0.77 was included in the "high" category so that the use of simulation-assisted teaching materials effective in improving students' conceptual understanding. Similar learning can be applied to other physics materials, especially for abstract material characteristics.


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Alatas, F., & Oktaviani, M. (2020). Problem Based Learning Model using Exe-Learning for Mechanical Waves. https://doi.org/10.4108/eai.2-10-2018.2295282

Anita, T., Hasanah, N., Huda, C., & Kurniawati, M. (2017). Pengembangan Modul Pembelajaran Fisika Berbasis Problem Based Learning (PBL) pada Materi Gelombang Bunyi untuk Siswa SMA KELAS XII. Scienti. 1(1), 56–65.

Arafah, K., Ruslan, R., Nurhayati, N., Hakim, A., & Pongkessu, A. (2022). Higher-Order Thinking Skills in Prospective Physics Teacher. Jurnal Penelitian Pendidikan IPA, 8(2), 805–910. https://doi.org/10.29303/jppipa.v8i2.1480

Astalini, A., Darmaji, D., Kurniawan, W., Anwar, K., & Kurniawan, D. (2019). Effectivenes of Using E-Module and E-Assessment.

Azizah, I. A., & Sucahyo, I. (2022). Flipbook-Based Digital E-book Learning Media on Mechanical Wave Materials to Practice Critical Thinking Skills. Prisma Sains : Jurnal Pengkajian Ilmu Dan Pembelajaran Matematika Dan IPA IKIP Mataram, 10(3), 712. https://doi.org/10.33394/J-PS.V10I3.5474

Baybars, M. G., & Huseyin K. (2018). The Effect of 7E Learning Model on Conceptual Understandings of Prospective Science Teachers on "de Broglie Matter Waves" Subject. European Journal of Educational Research Volume 7, Issue 2, 387-395.

Brewe, E., & Sawtelle, V. (2018). Modelling instruction for university physics: examining the theory in practice. European Journal of Physics, 39(5), 054001. https://doi.org/10.1088/1361-6404/AAC236

Cepni, S., Tas, E., & Kose, S. (2006). The effects of computer-assisted material on students’ cognitive levels, misconceptions and attitudes towards science. Computers & Education, 46(2), 192–205. https://doi.org/10.1016/j.compedu.2004.07.008

Choy, S. C., Goh, P. S. C., & Sedhu, D. S. (2016). How and Why Students Learn: Development and Validation of the Learner Awareness Levels Questionnaire for Higher Education Students. International Journal of Teaching and Learning in Higher Education, 28(1), 94–101.

Coletta, V. P., & Steinert, J. J. (2020). Why normalized gain should continue to be used in analyzing preinstruction and postinstruction scores on concept inventories. Physical Review Physics Education Research, 16(1), 010108. https://doi.org/10.1103/PhysRevPhysEducRes.16.010108

Creswell, J.W., & Clark, V.L.P. (2007). Designing and Conducting Mixed Methods Research. London: Sage-Publications.

Cutri, R., Luiz R. M., Jose R. C (2019). Using project-based learning to teach electromagnetic and wave concepts. International Journal of Electrical Engineering & Education, 0(0) 1–13.

Cigdem, Harun. (2015). E-Assessment Adaptation at a Military Vocational College: Student Perceptions. EURASIA Journal of Mathematics, Science & Technology Education, 11(5). https://doi.org/10.12973/eurasia.2015.1368a

Docktor, J. L., Strand, N. E., Mestre, J. P., & Ross, B. H. (2015). Conceptual problem solving in high school physics. Physical Review Special Topics - Physics Education Research, 11(2), 020106. https://doi.org/10.1103/PhysRevSTPER.11.020106

Doyan, A., Rahman, M. M., & Sutrio, S. (2021). Development of Student Worksheets Based on a Multi-Representation Approach to Improve Students’ Mastery of Sound Wave Concepts. Jurnal Penelitian Pendidikan IPA, 7(SpecialIssue), 175–179. https://doi.org/10.29303/jppipa.v7ispecialissue.1201

Duit, R., & Treagust, D. F. (2003). Conceptual change: A powerful framework for improving science teaching and learning. International Journal of Science Education, 25(6), 671–688. https://doi.org/10.1080/09500690305016

Goodhew, L., Paula H., Amy D. R., Rachel E. S. (2019). Student conceptual resources for understanding mechanical wave propagation. Physics Education Research Conference, 15, 020127. https://doi.org/10.1103/PhysRevPhysEducRes.15.02012

Goodhew, L., Paula H., Amy D. R., Rachel E. S. (2020). Students' context-sensitive use of two kinds of conceptual resources for mechanical wave reflection. Physics Education Research Conference. https://doi.org/10.1119/perc.2019.pr.Goodhew

Guest, D., Cranmer, K., & Whiteson, D. (2018). Deep learning and its application to LHC physics. Annual Review of Nuclear and Particle Science, 68, 161–181. https://doi.org/10.1146/ANNUREV-NUCL-101917-021019

Hejnová, E., Eisenmann, P., Cihlář, J., & Přibyl, J. (2018). Relations between scientific reasoning, culture of problem solving and pupil´s school performance. Journal on Efficiency and Responsibility in Education and Science, 11(2). https://doi.org/10.7160/eriesj.2018.110203

Kustusch, M. B. (2016). Assessing the impact of representational and contextual problem features on student use of right-hand rules. Physical Review Physics Education Research, 12(1), 010102. https://doi.org/10.1103/PhysRevPhysEducRes.12.010102

Latifah, S., Susilowati, N. E., Khoiriyah, K., & Rahayu, R. (n.d.). Self-Efficacy: Its Correlation to the Scientific-Literacy of Prospective Physics Teacher. https://doi.org/10.1088/1742-6596/1155/1/012015

Leech, N. L., Barrett, K. C., & Morgan, G. A. (2005). SPSS for intermediate statistics: Use and interpretation (2nd ed). Lawrence Erlbaum.

Levy, Y., & J. Ellis, T. (2011). A Guide for Novice Researchers on Experimental and Quasi-Experimental Studies in Information Systems Research.

Morgan, G. A., Leech, N. L., Gloeckner, G. W., & Barrett, K. C. (2011). IBM SPSS for Introductory Statistics: Use and Interpretation, Fourth Edition. Taylor and Francis.

Nehru. Cicyn R., Dian P. R., Wawan K., Iskandar. (2020). “Knowledge in pieces”: conceptual understanding analysis of pre-service physics teachers on direct current resistive electrical circuits. Journal for the Educational of Gifted Young Scientist, 8 (2): 723-730.

Pathoni, H., Kurniawan, W., Agus Kurniawan, D., & Perdana, R. (2019). Motivation and Attitude of Students on Physics Subject in the Middle School in Indonesia. International Education Studies, 12(9). https://doi.org/10.5539/ies.v12n9p15

Rahmawati, I., Sutopo., Zulaikah S. (2017). Analysis of Students’ Difficulties About Rotational Dynamics Based on Resource Theory. Jurnal Pendidikan IPA Indonesia, JPII, 6(1): 95-102.

Raissi, M., Perdikaris, P., & Karniadakis, G. E. (2019). Physics-informed neural networks: A deep learning framework for solving forward and inverse problems involving nonlinear partial differential equations. Journal of Computational Physics, 378, 686–707. https://doi.org/10.1016/J.JCP.2018.10.045

Ratiwi, R., & Wiyatmo, Y. (2021). the Development of Physics Module Based on Learning Cycle ( Learning. 9(1), 382–391. https://doi.org/10.26618/jpf.v9i3.5948

Semenikhina, O., Yurchenko, A., Udovychenko, O., Petruk, V., Borozenets, N., & Nekyslykh, K. (2021). Formation Of Skills To Visualize Of Future Physics Teacher: Results Of The Pedagogical Experiment. Revista Romaneasca Pentru Educatie Multidimensionala, 13(2), 476–497. https://doi.org/10.18662/RREM/13.2/432

Suastra, I. W., Ristiati, N. P., Adnyana, P. P. B., & Kanca, N. (2019). The effectiveness of Problem Based Learning - Physics module with authentic assessment for enhancing senior high school students’ physics problem solving ability and critical thinking ability. Journal of Physics: Conference Series, 1171(1). https://doi.org/10.1088/1742-6596/1171/1/012027

Susilawati, Doyan, A., Harjono, A., & Jana, M. (2021). Effect of learning media tank ripple wave with the implementation of guided inquiry model on concept mastery of high school students. Journal of Physics: Conference Series, 1816(1), 0–6. https://doi.org/10.1088/1742-6596/1816/1/012017

Sutopo. (2016). Pemahaman Mahasiswa Tentang Konsep-Konsep Dasar Gelombang Mekanik. Jurnal Pendidikan Fisika Indonesia, 12 (1): 41-53.

Rivaldo, L., Taqwa R. A. T., Tutris T. (2018). Resources Siswa SMA tentang Konsep Gaya Archimedes. Jurnal Pendidikan Fisika Universitas Muhammadiyah Makassar.

Zhang, D., Bobis, J., Wu, X., & Cui, Y. (2020). The Effects of an Autonomy-Supportive Teaching Intervention on Chinese Physics Students and their Teacher. Research in Science Education, 50(2), 645–671. https://doi.org/10.1007/S11165-018-9706-Y/FIGURES/5




DOI: http://dx.doi.org/10.17977/jptpp.v8i7.24951

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Journal of Education: Theory, Research, and Development

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