EL IMPACTO DE LAS TIC INMERSIVAS (REALIDAD AUMENTADA, VIRTUAL Y SIMULADORES) EN LA COMPRENSIÓN DE FENÓMENOS NATURALES EN LA EDUCACIÓN PRIMARIA: UNA REVISIÓN DE LITERATURA (2020-2025)
DOI:
https://doi.org/10.56219/trascendere.v2i8.6330Palabras clave:
Tecnologías de la información y la comunicación (TIC), ciencias naturales, educación primaria, realidad aumentada, realidad virtual, simuladores digitalesResumen
La enseñanza de las ciencias naturales en la educación primaria enfrenta el desafío de acercar a los estudiantes a fenómenos que, por su nivel de abstracción o su escala, resultan difíciles de observar directamente. Tecnologías como la realidad aumentada, la realidad virtual y los simuladores digitales son herramientas digitales que permiten visualizar procesos invisibles y recrear experiencias inmersivas, contribuyendo a la motivación y al aprendizaje significativo. Este artículo presenta una revisión bibliográfica de investigaciones publicadas entre 2020 y 2025, con el propósito de analizar cómo las TIC de visualización e inmersión fortalecen la comprensión de fenómenos naturales como la fotosíntesis, el ciclo del agua y los movimientos astronómicos. Se examinan estudios que consideran factores clave como la formación docente, la infraestructura tecnológica y la adaptación curricular. Los hallazgos indican que, cuando se integran dentro de estrategias pedagógicas sólidas, estas herramientas potencian la comprensión conceptual, estimulan la curiosidad científica y promueven actitudes positivas hacia la ciencia en contextos escolares. Asimismo, se identifican desafíos para su adopción efectiva, entre ellos la brecha digital, la formación docente insuficiente, la desigualdad en infraestructura y la necesidad de una alineación curricular cuidadosa. Se formulan recomendaciones para la implementación en educación básica y para futuras investigaciones orientadas a la retención y transferencia del aprendizaje.
Descargas
Citas
AlNajdi, S. M. (2022). The effectiveness of using augmented reality to enhance student performance: Using quick response codes in student textbooks in the Saudi education system. Educational Technology Research and Development, 70, 1105–1124. https://doi.org/10.1007/s11423-022-10100-4
Antoniadi, G. (2023). Using an augmented reality application for teaching plant parts: A case study in 1st-grade primary school students. Advances in Mobile Learning Educational Research, 3(1), 630–637. https://doi.org/10.25082/ AMLER2023.01.012
Basumatary, D., & Maity, R. (2023). Effects of augmented reality in primary education: A literature review. Human Behavior and Emerging Technologies, 2023, 4695759. https://doi.org/10.1155/2023/4695759
Cai, S., Jiao, X., Li, J., Jin, P., Zhou, H., & Wang, T. (2022). Conceptions of learning science among elementary school students in AR learning environment: A case study of “The Magic Sound”. Sustainability, 14(11), 6783. https://doi.org/ 10.3390/su14116783
Cao, S., Zhou, B., Zhang, Y., & Ding, C. (2024). The effectiveness of virtual reality environment on students’ STEM learning and spatial skills across education levels. Interactive Learning Environments. Advance online publication. https://doi.org/10.1080/10494820.2024.2371565
Chen, C.-H. (2020). Impacts of augmented reality and a digital game on students’ science learning with reflection prompts in multimedia learning. Educational Technology Research and Development, 68(6), 3057–3076. https://doi.org/10.1007/s11423-020-09834-w
Chen, G., Wang, H., Liang, A., Oubibi, M., & Zhou, Y. (2025). From detached observer to immersive participant: An augmented reality-based experiential learning approach to promote academic performance and learning behaviors in science education. Computers in Human Behavior Reports, 12, 100756. https://doi.org/ 10.1016/j.chbr.2025.100756
Chen, S.-Y., Lin, P.-H., Lai, Y.-H., & Liu, C.-J. (2024). Enhancing education on aurora astronomy and climate science awareness through augmented reality technology and mobile learning. Sustainability, 16(13), 5465. https://doi.org/ 10.3390/su16135465
Chen, Y.-C., Su, Y.-N., Wu, T.-T., & Huang, Y.-M. (2022). Creative situated augmented reality learning for astronomy in elementary school. Journal of Educational Technology & Society, 25(2), 148–162. https://doi.org/10.30191/ ETS.202204_25(2).0011
Diab, H., Daher, W., Rayan, B., Issa, N., & Rayan, A. (2024). Transforming science education in elementary schools: The power of PhET simulations in enhancing student learning. Multimodal Technologies and Interaction, 8(11), 105. https://doi.org/10.3390/mti8110105
Fearn, T., Vallejos, M., & Farrer, C. (2023). Small changes yield big results in primary science: Perceptions around the use of augmented reality. Journal of Technology and Science Education, 13(3).
Guaña-Narváez, C. L., Barahona-Ibarra, A. E., Pozo-Zapata, R. F., & Oña-Guilcaso, N. J. (2024). El uso de realidad aumentada en la didáctica de las ciencias naturales. Revista Multidisciplinaria Perspectivas Investigativas, 4(Especial Educación), 32–38. https://doi.org/10.62574/rmpi.v4iespecial.238
Hidayat, R., Datsula, M., & Nuraida, I. (2021). The application of augmented reality in elementary school science teaching: A literature review. Research, Society and Development, 10(14).
Huang, H.-M., Tai, W.-S., Huang, T.-C., & Lo, C.-Y. (2025). Optimizing inquiry-based science education: Verifying the learning effectiveness of augmented reality and concept mapping in elementary school. Universal Access in the Information Society, 24, 681–694. https://doi.org/10.1007/s10209-024-01037-6
Kersting, M., Lübcke, P., Risch, B., & Klein, P. (2024). Virtual reality in astronomy education: Reflecting on design considerations. Education Sciences, 14(2), 157–176.
Ladykova, T. I., Bigozhin, B., & Dolgopolova, V. I. (2024). Augmented reality technologies in environmental education: Systematic review. Eurasia Journal of Mathematics, Science and Technology Education, 20(8), em2488.
Laine, J., Korhonen, T., & Hakkarainen, K. (2023). Primary school students’ experiences of immersive virtual reality use in the classroom. Cogent Education, 10(1), 2196896. https://doi.org/10.1080/2331186X.2023.2196896 tandfonline.com
Lampropoulos, G. (2024). Teaching and learning natural sciences using augmented reality in preschool and primary education: A literature review. Advances in Mobile Learning Educational Research, 4(1), 1019–1037. https://doi.org/10.25082/ AMLER.2024.01.013
Lara-Álvarez, C. A., Parra-González, E. F., Ortiz-Esparza, M. A., & Cardona-Reyes, H. (2023). Effectiveness of virtual reality in elementary school: A meta-analysis of controlled studies. Contemporary Educational Technology, 15(4), ep459. https://doi.org/10.30935/cedtech/13569
Lo, J.-H., Lai, Y.-F., & Hsu, T.-L. (2021). The study of AR-based learning for natural science inquiry activities in Taiwan’s elementary school from the perspective of sustainable development. Sustainability, 13(11), 6283. https://doi.org/ 10.3390/su13116283
Mansour, N., Aras, C., Kleine Staarman, J., & Alotaibi, S. B. M. (2025). Embodied learning of science concepts through augmented reality technology. Education and Information Technologies, 30, 8245–8275. https://doi.org/10.1007/s10639-024-13120-0
Maričić, M., & Sliško, J. (2024). Using instructive simulations to teach young students simple science concepts: Evidence from electricity content. Journal of Research on Technology in Education, 56(6).
Marín, V. I., Vidal, E., Peirats, J., & Mínguez, A. (2022). Primary education and augmented reality: Another way to teach and learn. Cogent Education, 9(1). https://doi.org/10.1080/2331186X.2022.2082082
Maryani, I., Utari, S., Suhendar, Y., & Astuti, R. (2024). A scientometric analysis of virtual reality in elementary education. Electronic Journal of e-Learning, 22(1).
Poveda-Mora, M., & Lara, F. F. (2024). Engaging young minds in natural sciences through virtual environments. International Journal of Learning, Teaching and Educational Research, 23(8).
Premthaisong, S., & Srisawasdi, N. (2024). An effect of technology-infused active inquiry learning in primary school science on students’ conceptions of learning science. Eurasia Journal of Mathematics, Science and Technology Education, 20(6), em2463. https://doi.org/10.29333/ejmste/14662
Putra, M. A., Madlazim, & Hariyono, E. (2024). Exploring augmented reality-based learning media implementation in solar system materials. International Journal of Recent Educational Research, 5(1), 56–65. https://doi.org/10.46245/ ijorer. v5i1.440
Rayan, B., Daher, W., Diab, H., & Issa, N. (2023). Integrating PhET simulations into elementary science education: A qualitative analysis. Education Sciences, 13(9), 884. https://doi.org/10.3390/educsci13090884
Rayan, B., Daher, W., Issa, N., Diab, H., & Rayan, A. (2023). Integrating PhET simulations into elementary science education: A qualitative analysis. Education Sciences, 13(9), 884. https://doi.org/10.3390/educsci13090884
Rodríguez Caldera, B. (2021). Realidad aumentada en educación primaria: Revisión sistemática. Edutec. Revista Electrónica de Tecnología Educativa, (77), 169–185. https://doi.org/10.21556/edutec.2021.77.1703
Salgado Reveles, M. A. (2023). Los efectos de la realidad virtual y la realidad aumentada en las actitudes hacia la ciencia en alumnos mexicanos de nivel primaria. PAAKAT: Revista de Tecnología y Sociedad, 13(25), e804. https://doi.org/ 10.32870/pk.a13n25.804
Schnyder, S., Corrigan, E., Pozzebon, M., & Roshier, A. (2025). Are primary schools ready for immersive virtual reality. Humanities and Social Sciences Communications, 12.
Tarng, W., Hsu, Y.-S., & Ou, K.-L. (2024). Development of a VR360 ecological system for learning indigenous cultures and environmental conservation in elementary schools. Applied Sciences, 14(22), 10582. https://doi.org/10.3390/app142210582
Urhan, O., & Akpinar, E. (2024). The views of students regarding the use of virtual reality applications in elementary science classes. Science Insights Education Frontiers, 21(1), 3329–3348. https://doi.org/10.15354/sief.24.or550
Villena-Taranilla, R., Tirado-Olivares, S., Cózar-Gutiérrez, R., & González-Calero, J. A. (2022). Effects of virtual reality on learning outcomes in K-6 education: A meta-analysis. Educational Research Review, 35, 100434. https://doi.org/10.1016/j.edurev.2022.100434
Volioti, C., Keramopoulos, E., Sapounidis, T., Melisidis, K., Zafeiropoulou, M., Sotiriou, C., & Spiridis, V. (2022). Using augmented reality in K-12 education: An indicative platform for teaching physics. Information, 13(7), 336. https://doi.org/10.3390/info13070336
Wen, Y., Looi, C.-K., Song, Y., Koh, E.-C., & Tan, K.-H. K. (2023). Integrating augmented reality into inquiry-based learning in formal science learning contexts: A literature review. Educational Technology Research and Development, 71, 4877–4910. https://doi.org/10.1007/s11423-023-10258-0
Yang, C., Zhang, J., Hu, Y., Yang, X., Chen, M., Shan, M., & Li, L. (2024). The impact of virtual reality on practical skills for students in science and engineering education: A meta-analysis. International Journal of STEM Education, 11(1), 28. https://doi.org/10.1186/s40594-024-00487-2
Zafeiropoulou, M., Volioti, C., Keramopoulos, E., & Sapounidis, T. (2021). Developing physics experiments using augmented reality game-based learning approach: A pilot study in primary school. Computers, 10(10), 126. https://doi.org/10.3390/computers10100126
Zhang, S., & Yao, Z. (2025). The challenge of the application of augmented reality in science education in China: A systematic review. Disciplinary and Interdisciplinary Science Education Research, 7(1), 4. https://doi.org/10.1186/s43031-025-00123-1
Önal, N., & Önal, H. (2021). The effect of augmented reality on gifted students’ astronomy achievement in a 5E learning model. Education and Information Technologies, 26(4), 4573–4599.
Özer, F., & Şimşek, İ. (2025). The Science Coaster: A virtual reality journey in science education. International Electronic Journal of Elementary Education, 17(4), 611–627. https://iejee.com/index.php/IEJEE/article/view/2537
Descargas
Publicado
Cómo citar
Número
Sección
Licencia

Esta obra está bajo una licencia internacional Creative Commons Atribución-NoComercial-CompartirIgual 4.0.
La revista TRASCENDERE conserva los derechos patrimoniales (copyright) de las obras publicadas, que favorece y permite la reutilización de los mismos bajo la licencia Creative Commons Atribución-NoComercial-CompartirIgual 4.0 , por lo cual se pueden copiar, usar, difundir, transmitir y exponer públicamente, siempre que se cite la autoría y fuente original de su publicación (revista, editorial, URL y DOI de la obra), no se usen para fines comerciales u onerosos y se mencione la existencia y especificaciones de esta licencia de uso. Si remezcla, transforma o crea a partir del material, debe distribuir su contribución bajo la misma licencia del original.


