Immersive Sciences: Engaging Young Minds in Natural Sciences through Virtual and Augmented Reality
Abstract
This study investigated the impact of virtual environments (VEs), such as Virtual Reality (VR) and Augmented Reality (AR), on learning processes within Natural Sciences course of second-grade primary education. To address this objective, an experimental study was designed using a sample of 24 students aged 7 to 8 years from Spain. The subjects used VR and AR to teach about the human body. Knowledge gains were evaluated with pre-tests, post-tests, and delayed tests. Results showed significant improvements in student understanding of the human body. All students improved their results after the experience using VEs, and 14 students achieved post-test scores 80% higher than their pre-test results. The gains obtained through the experience were sustained over time, even after 52 days. While VEs were generally well-received and sparked interest among students in continuing their use, some expressed a preference for traditional learning methods. This research highlights the potential of using VR and AR to overcome challenges in learning abstract or inscrutable concepts in Natural Sciences, such as understanding the internal elements of the human body. By offering immersive experiences, these tools provide a more realistic and tangible view of the subject matter. However, they should be used to complement, not replace, other methodologies, ensuring they align with the student' interests and needs.
https://doi.org/10.26803/ijlter.23.9.4
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Abdullah, N., Baskaran, V. L., Mustafa, Z., Ali, S. R., & Zaini, S. H. (2022). Augmented reality: The effect in students’ achievement, satisfaction and interest in science education. International Journal of Learning, Teaching and Educational Research, 21(5), 326–350. https://doi.org/10.26803/ijlter.21.5.17
Akçay?r, M., & Akçay?r, G. (2017). Advantages and challenges associated with augmented reality for education: A systematic review of the literature. Educational Research Review, 20, 1–11. https://doi.org/10.1016/j.edurev.2016.11.002
Al-Amri, A., Osman, M., & Al Musawi, A. (2020). The effectiveness of a 3D – virtual reality learning environment (3D – VRLE) on the Omani Eighth Grade students’ achievement and motivation towards physics learning. International Journal of Emerging Technologies in Learning, 15(5), 12–13. https://doi.org/10.3991/ijet.v15i05.11890
Al-Gindy, A., Feliz, C., Ahmed, A., Matoug, A., & Alkhidir, M. (2020). Virtual reality: Development of an integrated learning environment for education. International Journal of Information and Education Technology, 10(3), 171–175. https://doi.org/10.18178/ijiet.2020.10.3.1358
Bailenson, J. N., Yee, N., Blascovich, J., Beall, A. C., Lundblad, N., & Jin, M. (2008). The use of immersive virtual reality in the learning sciences: Digital transformations of teachers, students, and social context. Journal of the Learning Sciences, 17(1), 102?141. https://doi.org/10.1080/10508400701793141
Berlanga, V., & Rubio, M. J. (2012) Clasificación de pruebas no paramétricas: Cómo aplicarlas en SPSS [Classification of non-parametric tests: How to apply them in SPSS]. REIRE, Revista d’Innovació i Recerca en Educació, 5(2), 101–113. http://dx.doi.org/10.1344/reire2012.5.2528
Billinghurst, M., Clark, A., & Lee, G. (2015). A survey of augmented reality. Foundations and Trends in Human–Computer Interaction, 8(2–3), 73–272. http://dx.doi.org/10.1561/1100000049
Checa, D., & Bustillo, A. (2019). Advantages and limits of virtual reality in learning processes: Briviesca in the fifteenth century. Virtual Reality, 24(1), 151–161. https://doi.org/10.1007/s10055-019-00389-7
Chen, P., Liu, X., Cheng, W., & Huang, R. (2017). A review of using augmented reality in education from 2011 to 2016. Innovations in Smart Learning, 109, 13–18. https://doi.org/10.1007/978-981-10-2419-1_2
Cook, M., Lischer-Katz, Z., Hall, N., & Hardesty, J. (2019). Challenges and strategies for educational virtual reality. Information Technology and Libraries, 38(4), 25–48. https://doi.org/10.6017/ital.v38i4.11075
Córcoles-Charcos, M., Tirado-Olivares, S., González-Calero, J., & Cózar-Gutiérrez, R. (2023). Use of virtual reality environments for the teaching of history in primary education. Education in the Knowledge Society, 24, e28382. https://doi.org/10.14201/eks.28382
Dalgarno, B., & Lee, M. J. W. (2010). What are the learning affordances of 3-D virtual environments? British Journal of Educational Technology, 40(6), 10–32. https://doi.org/10.1111/j.1467-8535.2009.01038.x
Dede, C. (2009). Immersive interfaces for engagement and learning. Science, 323(5910), 66?69. https://doi.org/10.1126/science.1167311
Fransson, G., Holmberg, J., & Westelius, C. (2020). The challenges of using head mounted virtual reality in K-12 schools from a teacher perspective. Education and Information Technologies 25, 3383–3404. https://doi.org/10.1007/s10639-020-10119-1
Gardner, H. (2006). Multiple intelligences: New horizons in theory and practice. Basic Books.
Garzón, J., & Acevedo, J. (2019). Meta-analysis of the impact of augmented reality on students’ learning gains. Educational Research Review, 27, 244–260. https://doi.org/10.1016/j.edurev.2019.04.001
George, D., & Mallery, P. (2003). SPSS for Windows step by step: A simple guide and reference. 11.0 update (4th ed.). Allyn & Bacon.
Golzar, J., Noor, S., & Tajik, O. (2022). Convenience sampling. International Journal of Education & Language Studies, 1(2), 72–77. https://doi.org/10.22034/ijels.2022.162981
Gómez-Carrasco, C. J., Rodríguez-Medina, J., Chaparro, A., & Alonso, S. (2022). Recursos digitales y enfoques de enseñanza en la formación del profesorado de historia [Digital resources and teaching approaches in history teacher education]. Educación XXI, 25(1), 143–170. https://doi.org/10.5944/educXX1.30483
Hattie, J. (2009). Visible learning: A synthesis of over 800 meta-analyses relating to achievement. Routledge.
Hui, J., Zhou, Y., Oubibi, M., Di, W., Zhang, L., & Zhang, S. (2022). Research on art teaching practice supported by virtual reality (VR) technology in the primary schools. Sustainability, 14, Article 1246. https://doi.org/10.3390/su14031246
Hyde, J. S. (2014). Gender similarities and differences. Annual Review of Psychology, 65, 373?398. https://doi.org/10.1146/annurev-psych-010213-115057
Innocenti, D. E., Geronazzo, M., Vescovi, D., Nordahl, R., Serafin, S., Ludovico, L. A., & Avanzini, F. (2019). Mobile virtual reality for musical genre learning in primary education. Computers & Education, 139, 102–117. https://www.learntechlib.org/p/209947/
Jacobs, P., & Viechtbauer, W. (2017). Estimation of the biserial correlation and its sampling variance for use in meta-analysis. Research Synthesis Methods, 8(2), 161–180. https://doi.org/10.1002/jrsm.1218
Kipper, G., & Rampolla, J. (2012). Augmented reality: An emerging technologies guide to AR. Elsevier.
Kong, Y. (2021). The role of experiential learning on students’ motivation and classroom engagement. Frontiers in Psychology, 12, Article 771272. https://doi.org/10.3389/fpsyg.2021.771272
Kwon, C. (2019). Verification of the possibility and effectiveness of experiential learning using HMD-based immersive VR technologies. Virtual Reality, 23(1), 101–118. https://doi.org/10.1007/s10055-018-0364-1
Laine, J., Korhonen, T., & Hakkarainen, K. (2023) Primary school students’ experiences of immersive virtual reality use in the classroom. Cogent Education, 10(1), Article 2196896. https://doi.org/10.1080/2331186X.2023.2196896
Leiva, J. P., Ugalde, L., & Llorente, C. (2018). The TPACK model in initial teacher training: Model University of Playa Ancha (UPLA), Chile. Pixel-bit-Revista de Medios y Educación, 53, 165–177. http://dx.doi.org/10.12795/pixelbit.201.i53.11
Ley Orgánica 3/2020, de 29 de diciembre, por la que se modifica la Ley Orgánica 2/2006, de 3 de mayo, de Educación. [Organic Law 3/2020, of December 29, amending Organic Law 2/2006, of May 3, on Education]
Liu, R., Wang, L. Koszalka, T. A., & Wan, K. (2022). Effects of immersive virtual reality classrooms on students’ academic achievement, motivation and cognitive load in science lessons. Journal of Computer Assisted Learning, 38(5), 1199–1506. https://doi.org/10.1111/jcal.12688
Makransky, G., & Lilleholt, L. (2018). A structural equation modeling investigation of the emotional value of immersive virtual reality in education. Educational Technology Research and Development, 66(5), 1141–1164. https://doi.org/10.1007/s11423-018-9581-2
Martarelli, C., Dubach, J., Schelleis, N., Cacchione, T., & Tempelmann, S. (2023). Virtual reality in primary science education: Improving knowledge of the water cycle [preprint]. PsyArXiv Preprints. https://doi.org/10.31234/osf.io/qj2a5
Meccawy, M. (2023). Teachers’ prospective attitudes towards the adoption of extended reality technologies in the classroom: Interests and concerns. Smart Learning Environments, 10(1), Article 36. https://doi.org/10.1186/s40561-023-00256-8
Oubibi, M., & Hryshayeva, K. (2024). Effects of virtual reality technology on primary school students’ creativity performance, learning engagement and mental flow. Education and Information Technologies, 1–20. https://doi.org/10.1007/s10639-024-12766-0
Parong, J., & Mayer, R. E. (2018). Learning science in immersive virtual reality. Journal of Educational Psychology, 110(6), 785–797. https://doi.org/10.1037/edu0000241
Plass, J. L., & Kaplan, U. (2016). Emotional design in digital media for learning. In S. Y. Tettegah, & M. Gartmeier (Eds.), Emotions, technology, design, and learning (pp. 131–161). Elsevier Academic Press. https://doi.org/10.1016/B978-0-12-801856-9.00007-4
Radu, I. (2014). Augmented reality in education: A meta-review and cross-media analysis. Personal and Ubiquitous Computing, 18(6), 1533–1543. https://doi.org/10.1007/s00779-013-0747-y
Rohrer, D., & Taylor, K. (2006). The effects of overlearning and distributed practice on the retention of mathematics knowledge. Applied Cognitive Psychology, 20(9), 1209?1224. https://doi.org/10.1002/acp.1266
Su, Y. S., Cheng, H. W., & Lai, C. F. (2022). Study of virtual reality immersive technology enhanced mathematics geometry learning. Frontiers in Psychology, 13, Article 760418. https://doi.org/10.3389/fpsyg.2022.760418
Sulisworo, D., Erviana, V. Y., Robiin, B., Sepriansyah, Y., & Soleh, A. (2022). The feasibility of enhancing environmental awareness using virtual reality 3D in the primary education. Education Research International, Article 811544. https://doi.org/10.1155/2022/4811544
Sun, R., Wu, Y. J., & Cai, Q. (2019). The effect of a virtual reality learning environment on learners’ spatial ability. Virtual Reality, 23, 385–398. https://doi.org/10.1007/s10055-018-0355-2
Virtanen, S., Räikkönen, E., & Ikonen, P. (2015). Gender-based motivational differences in technology education. International Journal of Technology and Design Education, 25, 197-211. https://doi.org/10.1007/s10798-014-9278-8
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