The Impact of Mobile Learning on Physics Education: A Systematic Literature Review

Authors

  • Dwi Ambar Cahyaningtias Siswanto Department Magister of Physics Education, Faculty of Mathematics and Natural Sciences, Universitas Negeri Jakarta, Jl. Rawamangun Muka, Jakarta 13220, Indonesia
  • Bambang Heru Iswanto Department Magister of Physics Education, Faculty of Mathematics and Natural Sciences, Universitas Negeri Jakarta, Jl. Rawamangun Muka, Jakarta 13220, Indonesia
  • Yuli Rahmawati Department Magister of Chemistry Education, Faculty of Mathematics and Natural Sciences, Universitas Negeri Jakarta, Jl. Rawamangun Muka, Jakarta, 13220, Indonesia

DOI:

https://doi.org/10.21009/1.11102

Keywords:

Mobile Learning, Physics Learning, Systematic Literature Review (SLR)

Abstract

Mobile learning has become a significant medium in the educational landscape, especially with the increased usage of smartphones among students and educators. This Systematic Literature Review (SLR) aims to explore the impact of mobile learning on the transformation of physics education. This study obtained 50 out of 200 articles selected based on their relevance to the theme of mobile learning in physics education, citation metrics, and publication date between 2019 and 2024. The review highlights a significant increase in mobile learning research, with the rise occurring in 2020 due to the COVID-19 pandemic, which emphasized the growing potential of mobile learning for remote education. Mobile learning enhances the accessibility, engagement, and effectiveness of physics education by making the learning process more interactive, fostering student independence, and improving learning outcomes. The review also identifies improvements in students' critical thinking and problem-solving skills as key benefits of mobile learning in physics. However, it also highlights the necessity of regulations to prevent misuse and safeguard academic integrity. Practical recommendations for educators include integrating mobile learning with project-based approaches to improve conceptual understanding and student engagement in physics. This study suggests that mobile learning has a transformative role in physics education, opening up new avenues for innovation and further research.

References

Aji, S. H., Jumadi, J., Saputra, A. T., & Tuada, R. N. (2020). Development of physics mobile learning media in optical instruments for senior high school student using android studio. J. Phys.: Conf. Ser., 1440, p.012032. doi: https://10.1088/1742-6596/1440/1/012032

Asmiliyah, A., Khaerudin, K., & Solihatin, E. (2021). Mobile learning with STEM approach in physics learning. Journal of Education Research and Evaluation, 5(4), pp. 606-613.

Astuti, I. A. D., Dasmo, D., Nurullaeli, N., & Rangka, I. B. (2018). The impact of pocket mobile learning to improve critical thinking skills in physics learning. J. Phys.: Conf. Ser., 1114, p.012030. doi: https://10.1088/1742-6596/1114/1/012030

Astuti, I. A. D., Sumarni, R. A., & Saraswati, D. L. (2017). Pengembangan Media Pembelajaran Fisika Mobile Learning berbasis Android. Jurnal Penelitian & Pengembangan Pendidikan Fisika, 3(1), pp. 57–62. doi: https://doi.org/10.21009/1.03108

Bano, M. Z. (2018). Mobile learning for science and mathematics school education: A systematic review of empirical evidence. Computers & Education, 121, pp. 30-58.

Christensen, R., & Knezek, G. (2017). Readiness for integrating mobile learning in the classroom: Challenges, preferences and possibilities. Computers in human Behavior, 76, pp. 112-121.

Crompton, H., & Burke, D. (2018). The use of mobile learning in higher education: A systematic review. Computers and Education, 123(25), pp. 53–64. doi: https://doi.org/10.1016/j.compedu.2018.04.007

Daineko, Y. A., Tsoy, D., Seitnur, A., & Ipalakova, M. T. (2022). Development of a Mobile e-Learning Platform on Physics Using Augmented Reality Technology. Int. J. Interact. Mob. Technol., 16(5), pp. 4-18.

Darmaji, D., Kurniawan, D., Astalini, A., Lumbantoruan, A., & Samosir, S. (2019). Mobile learning in higher education for the industrial revolution 4.0: Perception and response of physics practicum. International Journal of Interactive Mobile Technologies (iJIM), 13(09), pp. 4–20. doi: https://doi.org/10.3991/ijim.v13i09.10948

Dasilva, B. E., Ardiyati, T. K., Suparno, S., Sukardiyono, S., Eveline, E., Utami, T., & Ferty, Z. N. (2019). Development of android-based interactive physics mobile learning media (IPMLM) with scaffolding learning approach to improve HOTS of high school students in Indonesia. Journal for the Education of Gifted Young Scientists, 7(3), pp. 659-681.

Demir, K., & Akpınar, E. (2018). The effect of mobile learning applications on students’ academic achievement and attitudes toward mobile learning. Malaysian Online Journal of Educational Technology, 6(2), pp. 48–59. doi: https://doi.org/10.17220/mojet.2018.02.004

Edeh, M. O. (2023). Impact of Mobile Technology and Use of Big Data in Physics Education During Coronavirus Lockdown. Big data mining and analytics. doi: https://10.26599/bdma.2022.9020013

El-Sofany, H. F., & El-Haggar, N. (2020). The Effectiveness of Using Mobile Learning Techniques to Improve Learning Outcomes in Higher Education. International Journal of Interactive Mobile Technologies (iJIM), 14(08), pp. 4–18. doi: https://doi.org/10.3991/ijim.v14i08.13125

Eveline, E., Suparno, S., Ardiyati, T. K., & Dasilva, B. E. (2019). Development of interactive physics mobile learning media for enhancing students’ HOTS in impulse and momentum with scaffolding learning approach. Jurnal Penelitian & Pengembangan Pendidikan Fisika, 5(2), pp. 123-132.

Fu, Q. K., & Hwang, G. J. (2018). Trends in mobile technology-supported collaborative learning: A systematic review of journal publications from 2007 to 2016. Computers & Education, 119, pp. 129-143.

Gebze, D. A., & Perwati, S. (2020). Improving problem-solving ability in physics through android-based mobile learning application. J. Phys.: Conf. Ser., 1440, p.012022.

Huseyin, U. (2023). Mobile learning as a new technology in education. Global Journal of Information Technology. Global Journal of Information Technology Emerging Technologies, 13(1), pp. 7-16 doi: https://10.18844/gjit.v13i1.8459

Kemp, S. (2023). Digital 2023: Indonesia. Retrieved from https:// https://datareportal.com/reports/digital-2023-indonesia

Khaokhajorn, W., Thongsri, P., Panjaburee, P., & Srisawasdi, N. (2020). Mobile learning technology in STEM education: A systematic review from 2010 to 2019. International Conference on Computers in Education, pp. 432–437.

Momox, E., & Ortega De Maio, C. (2020). Computer-based learning in an undergraduate physics course: Interfacing a mobile phone and matlab to study oscillatory motion. American Journal of Physics, 88(7), pp. 535-541.

Muliyati, D., Permana, H., Rahma, K. A., Sumardani, D., & Ambarwulan, D. (2024). Gamifying thermodynamics topic in physics subject using classcraft: A joyful learning approach. AIP Conf. Proc., 3116, p.040013. doi: https://doi.org/10.1063/5.0210206

Mutambara, D., & Bayaga, A. (2021). Determinants of mobile learning acceptance for STEM education in rural areas. Computers & Education, 160, p.104010.

Ninghardjanti, P., Indrawati, C. D. S., Dirgatama, C. H. A., & Wirawan, A. W. (2021). An Analysis on the Need for Mobile Learning-Based Interactive Learning Media in Vocational High School. J. Phys.: Conf. Ser., 1737, p.012017. doi: https://10.1088/1742-6596/1737/1/012017

Saputra, A. T., Wilujeng, I., Sobiatin, E., Aji, S. H., & Tuada, T. N. (2020). Implementation of physics mobile learning media to improve student physics perseverance. J. Phys.: Conf. Ser., 1440, p.012035. doi: https://10.1088/1742-6596/1440/1/012035

Sholina, W., Muliyati, D., & Purwahida, R. (2023). Development of Special Relativity Material Learning Videos on Social Media Tiktok. Current STEAM and Education Research, 1(1), pp. 7-12. doi: https://doi.org/10.58797/cser.010102

Simanjuntak, B. R., Desnita, D., & Budi, E. (2018). The Development of Web-based Instructional Media for Teaching Wave Physics on Android Mobile. Jurnal Penelitian & Pengembangan Pendidikan Fisika, 4(1), pp. 1–10. https://doi.org/10.21009/1.04101

Smith, T. J., Hong, Z. R., Hsu, W. Y., & Lu, Y. Y. (2022). The relationship of sense of school belonging to physics attitude among high school students in advanced physics courses. Science Education, 106(4), pp. 830-851.

Sunaryo, S., Nasbey, H., & Amelia, H. (2021). Learning Media Development using Transformative Learning Strategy Android Application as a Distance Learning Support on Static Fluid. Jurnal Penelitian & Pengembangan Pendidikan Fisika, 7(1), pp. 61–72. https://doi.org/10.21009/1.07107

Tuada, R. N., Kuswanto, H., Saputra, A. T., & Aji, S. H. (2020). Physics mobile learning with scaffolding approach in simple harmonic motion to improve student learning independence. J. Phys.: Conf. Ser., 1440, p.012043. doi: https://10.1088/1742-6596/1440/1/012043

Wang, J. J. (2023). The influence of mobile-learning flipped classrooms on the emotional learning and cognitive flexibility of students of different levels of learning achievement. Interactive Learning Environments, 31(3), pp. 1309- 1321.

Wijaya, R. E., Mustaji, M., & Sugiharto, H. (2021). Development of mobile learning in learning media to improve digital literacy and student learning outcomes in physics subjects: systematic literature review. Budapest International Research and Critics Institute (BIRCI-Journal): Humanities and Social Sciences, 4(2), pp. 3087-3098.

Wingkvist, A., & Ericsson, M. (2011). A Survey of Research Methods and Purposes in Mobile Learning. International Journal of Mobile and Blended Learning, 3(1), pp. 1-17. doi: https://doi.org/10.4018/jmbl.2011010101

Zhai, X., & Shi, L. (2020). Understanding how the perceived usefulness of mobile technology impacts physics learning achievement: A pedagogical perspective. Journal of Science Education and Technology, 29(6), pp. 743-757.

Zhai, X., Zhang, M., Li, M., & Zhang, X. (2019). Understanding the relationship between levels of mobile technology use in high school physics classrooms and the learning outcome. British journal of educational technology, 50(2), pp. 750-766.

Zhalgasbekova, Z. K., Shakhanova, G. A., Karymsakova, A. E., Tutkyshbayeva, S. S., Kutpanova, Z. A., Abdualiyeva, R. E., & Shyndaliyev, N. (2018). Creating and Using Mobile Physics and Mathematics Applications in the Learning Process as One of the Teaching Methods to Increase the Quality of Student’s Knowledge. Eurasia Journal of Mathematics, Science and Technology Education, 14(12), p. em1646. doi: https://doi.org/10.29333/ejmste/97837

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Published

2025-02-28

How to Cite

Siswanto, D. A. C., Iswanto, B. H., & Rahmawati, Y. (2025). The Impact of Mobile Learning on Physics Education: A Systematic Literature Review. Jurnal Penelitian & Pengembangan Pendidikan Fisika, 11(1), 13–26. https://doi.org/10.21009/1.11102

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