Integrating Hands-on and Virtual Learning for Environmental Sustainability: Eco Enzyme Soap Making at Stella Matutina

Honorata Ratnawati Dwi Putranti, Danang Danang, Teodora Maria Fernandes Brito Da Silva, Agnes Agnesita B Pujiati

Abstract


This Community Service Program aimed to implement and evaluate an Experimental Hybrid Learning Model at SMP Stela Martutina, Salatiga, Central Java. The program focused on enhancing students' conceptual understanding and practical skills by integrating concrete and virtual experiences in eco enzyme soap making. The program led to a significant increase in students' knowledge of environmental issues and their practical abilities in eco enzyme production. Moreover, students showed improved engagement in both physical and virtual learning environments. This hybrid learning approach proved effective in achieving educational goals and holds potential for broader implementation in other educational contexts.

Keywords


concrete experience; eco-enzyme soap; experimental; hybrid learning, virtual experience

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References


Donnelly, R. (2009). Transformative Potential of Constructivist Blended Problem-Based Learning in Higher Education. In Information Technology and Constructivism in Higher Education (pp. 182–202). IGI Global. https://doi.org/10.4018/978-1-60566-654-9.ch012

Emilio Duran, Lena Ballone, Jodi Haney, S. B. (2009). The Impact of a Professional Development Program Integrating Informal Science Education on Early Childhood Teachers’ Self-Efficacy and Beliefs About Inquiry-Based Science Teaching. Journal of Elementary Science Education, 4(2), 13–22. https://doi.org/10.1007/BF03173580

Essa, S. G., Celik, T., & Human-Hendricks, N. E. (2023). Personalized Adaptive Learning Technologies Based on Machine Learning Techniques to Identify Learning Styles: A Systematic Literature Review. IEEE Access, 11(April), 48392–48409. https://doi.org/10.1109/ACCESS.2023.3276439

Green, P., Kolb, A., Kolb, D., & Kuh, G. (2024). Defining Experiential Education: The field’s seminal thinkers take stock and look ahead. Experiential Learning and Teaching in Higher Education, 7(1). https://doi.org/10.46787/elthe.v7i1.4010

Peng, H., Ma, S., & Spector, J. M. (2019). Personalized adaptive learning: an emerging pedagogical approach enabled by a smart learning environment. Smart Learning Environments, 6(1). https://doi.org/10.1186/s40561-019-0089-y

Ufuoma Chima Apoki, G. C. C. (2018). A Modular and Semantic Approach to Personalised Adaptive Learning: WASPEC 2.0. Early Writings on India, 124–134. https://doi.org/10.4324/9781315232140-14

U.S. Department of Education. 2014. Learning Technology Effectiveness.

Warger, T., Serve, E. Dan Dobbin, G. 2009. Learning Environments: Where Space, technology, and Culture Converge. https://net.educause.edu/ir/library/pdf/ELI3021.pdf. Diunduh tgl. 28 Juli 2016.

Wedman, J. Dan Diggs, L. 2001. Identifying Barriers to Technology-Enhanced Learning Environment in Teacher Education. Computers in Human Behavior. Hal.421-430.




DOI: https://doi.org/10.26760/rekaelkomika.v6i1.88-97

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