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Virtual labs in chemistry education: A novel approach for increasing student’s laboratory educational consciousness and skills

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Abstract

The integration of Virtual Laboratories (VLs) into blended learning environments in science education offers a multifaceted educational experience that bridges the gap between theoretical knowledge and practical application. This approach provides dynamic, interactive learning opportunities that can be customized to meet various educational needs and contexts. In this research, we propose the incorporation of VLs as a novel strategy in chemistry laboratory education. Our goal is to enhance students’ laboratory educational consciousness by improving engagement, learning outcomes, and enhancing their skills. Our investigation addresses four key research questions, which we approach through the lenses of various theoretical frameworks, including self-determination theory, self-efficacy theory, and the Unified Theory of Acceptance and Use of Technology-2. These questions involve aligning laboratory experiments with curriculum objectives through VL utilization, effectively integrating VLs into in-class demonstrations, understanding the complementary role of physical laboratories (PLs), and identifying the challenges associated with implementing a flipped classroom approach using VLs. Our study’s findings indicate that the proposed laboratory design effectively reduces alternative concepts held by both male and female students. Survey results also reveal that instructors generally perceive the new classroom design as effectively simulating the hands-on experience of a traditional laboratory setting, with 60% of respondents either agreeing or strongly agreeing with this notion. Moreover, the study underscores the importance of offering professional development opportunities for educators and emphasizes the necessity of using pedagogically sound virtual laboratories in the context of chemistry education.

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The data that support the findings of this study are available from the corresponding author upon reasonable request.

References

  • Achuthan, K., Nedungadi, P., Kolil, V., Diwakar, S., & Raman, R. (2020). Innovation adoption and diffusion of virtual laboratories. International Journal of Online and Biomedical Engineering, 16(09), 4–5. https://doi.org/10.3991/ijoe.v16i09.11685

  • Achuthan, K., Kolil, V. K., & Diwakar, S. (2018). Using virtual laboratories in chemistry classrooms as interactive tools towards modifying alternate conceptions in molecular symmetry. Education and Information Technologies, 23(6), 2499–2515.

    Article  Google Scholar 

  • Agustian, H. Y., & Seery, M. K. (2017). Reasserting the role of pre-laboratory activities in chemistry education: a proposed framework for their design. Chemistry Education Research and Practice, 18(4), 518–532.

    Article  Google Scholar 

  • Ahluwalia, V., & Dhingra, S. (2004). Comprehensive Practical Organic Chemistry: Qualitative Analysis. Universities Press

  • Akash, M. S. H., & Rehman, K. (2020). Column Chromatography (pp. 167–174). Springer Nature Singapore, Singapore. https://doi.org/10.1007/978-981-15-1547-7_13

  • Akçayır, G., & Akçayır, M. (2018). The flipped classroom: A review of its advantages and challenges. Computers & Education,126, 334–345. https://doi.org/10.1016/j.compedu.2018.07.021. https://www.sciencedirect.com/science/article/pii/S0360131518302045

  • Albright, M. A., Den Braven, K. R., & Parshall, E. R. (2015). An integrated, blended online engineering program of college-level courses for high school students offered by a state-wide public stem magnet school. In 2015 ASEE Annual Conference & Exposition (pp. 26–196)

  • Alhih, M., Ossiannilsson, E., & Berigel, M. (2017). Levels of interaction provided by online distance education models. Eurasia Journal of Mathematics, Science and Technology Education, 13(6), 2733–2748.

    Article  Google Scholar 

  • Ali, N., Ullah, S., & Khan, D. (2022). Interactive laboratories for science education: A subjective study and systematic literature review. Multimodal Technologies and Interaction,6(10),. https://doi.org/10.3390/mti6100085. https://www.mdpi.com/2414-4088/6/10/85

  • Aljuhani, K., Sonbul, M., Althabiti, M., et al. (2018). (2018). Creating a virtual science lab (vsl): the adoption of virtual labs in saudi schools. Smart Learning Environments, 5, 1–13.

    Article  Google Scholar 

  • Aron, A., Norman, C. C., Aron, E. N., et al. (2000). Couples’ shared participation in novel and arousing activities and experienced relationship quality. Journal of Personality and Social Psychology, 78(2), 273.

    Article  Google Scholar 

  • Attarbashi, Z. S., Hashim, A. H. A., Abuzaraida, M. A., et al. (2021). Teaching lab-based courses remotely: Approaches, technologies, challenges, and ethical issues. IIUM Journal of Educational Studies, 9(3), 37–51.

    Article  Google Scholar 

  • Bai, L., & Wang, Y. X. (2022). In-class and out-of-class interactions between international students and their host university teachers. Research in Comparative and International Education, 17(1), 71–88.

    Article  Google Scholar 

  • Bandura, A. (1977). Self-efficacy: toward a unifying theory of behavioral change. Psychological Review, 84(2), 191.

    Article  Google Scholar 

  • Bergmann, J., & Sams, A. (2012). Before you flip, consider this. Phi Delta Kappan, 94(2), 25–25. https://doi.org/10.1177/003172171209400206

    Article  Google Scholar 

  • Brownell, S. E., Wenderoth, M. P., Theobald, R., et al. (2014). How students think about experimental design: novel conceptions revealed by in-class activities. BioScience, 64(2), 125–137.

    Article  Google Scholar 

  • Bybee, R. W. (1990). Science for life & living: An elementary school science program from biological sciences curriculum study. The American Biology Teacher, 52(2), 92–98.

    Article  Google Scholar 

  • Cherner, Y., Cima, M., Barone, P., et al. (2020). Interactive and adaptable cloud-based virtual equipment and laboratories for 21st century science and engineering education. EPiC Series in Education Science, 3, 47–53.

    Article  Google Scholar 

  • CSDT. (n.d.). Intrinsic Motivation Inventory (IMI) – Center for Self-Determination Theory. [Online; Accessed 13 July 2023]. https://selfdeterminationtheory.org/intrinsic-motivation-inventory/

  • de Araujo Guerra Grangeia, T., de Jorge, B., Franci, D., et al. (2016). Cognitive load and self-determination theories applied to e-learning: Impact on students’ participation and academic performance. PloS One,11(3), e0152462.

  • Deci, E., & Ryan, R. (2012). Intrinsic Motivation Inventory (IMI): Scale Description.

  • Desa, N. A. M., & Abd Halim, N. D. (2022). Flipped classroom in secondary school or high school education: A review of its advantages and challenges. Innovative Teaching and Learning Journal, 6(2), 1–8.

    Article  Google Scholar 

  • Diwakar, S., Kolil, V. K., Francis, S. P., et al. (2023). Intrinsic and extrinsic motivation among students for laboratory courses-assessing the impact of virtual laboratories. Computers & Education, 198, 104758.

    Article  Google Scholar 

  • Donnelly, D., O’Reilly, J., & McGarr, O. (2013). Enhancing the student experiment experience: Visible scientific inquiry through a virtual chemistry laboratory. Research in Science Education, 43, 1571–1592.

    Article  Google Scholar 

  • Durkaya, F. (2023). Virtual laboratory use in science education with digitalization. Hungarian Educational Research Journal, 13(2), 189–211.

    Article  Google Scholar 

  • Elmoazen, R., Saqr, M., Khalil, M., et al. (2023). Learning analytics in virtual laboratories: a systematic literature review of empirical research. Smart Learning Environments, 10(1), 1–20.

    Article  Google Scholar 

  • Finkelstein, N. D., Adams, W. K., Keller, C., et al. (2005). When learning about the real world is better done virtually: A study of substituting computer simulations for laboratory equipment. Physical Review Special Topics-physics Education Research, 1(1), 010103.

    Article  Google Scholar 

  • Gagné, M., Parker, S. K., Griffin, M. A., et al. (2022). Understanding and shaping the future of work with self-determination theory. Nature Reviews Psychology, 1(7), 378–392.

    Article  Google Scholar 

  • Goudsouzian, L. K., Riola, P., Ruggles, K., et al. (2018). Integrating cell and molecular biology concepts: Comparing learning gains and self-efficacy in corresponding live and virtual undergraduate laboratory experiences. Biochemistry and Molecular Biology Education, 46(4), 361–372.

    Article  Google Scholar 

  • Herga, N. R., Čagran, B., & Dinevski, D. (2016). Virtual laboratory in the role of dynamic visualisation for better understanding of chemistry in primary school. Eurasia Journal of Mathematics, Science and Technology Education, 12(3), 593–608.

    Google Scholar 

  • Husnaini, S. J., & Chen, S. (2019). Effects of guided inquiry virtual and physical laboratories on conceptual understanding, inquiry performance, scientific inquiry self-efficacy, and enjoyment. Physical Review Physics Education Research, 15(1), 010119.

    Article  Google Scholar 

  • Kolil, V. K., & Achuthan, K. (2023). Longitudinal study of teacher acceptance of mobile virtual labs. Education and Information Technologies, 28(7), 7763–7796.

    Article  Google Scholar 

  • Kolil, V. K., Muthupalani, S., & Achuthan, K. (2020). Virtual experimental platforms in chemistry laboratory education and its impact on experimental self-efficacy. International Journal of Educational Technology in Higher Education, 17(1), 1–22.

    Article  Google Scholar 

  • Kolil, V. K., Parvathy, S., & Achuthan, K. (2023). Confirmatory and validation studies on experimental self-efficacy scale with applications to multiple scientific disciplines. Frontiers in Psychology, 14(1154), 310.

    Google Scholar 

  • Lee, E. N., Nealy, S., & Cruz, L. (2023). Navigating the interlanguage space: Chinese international students’ perceptions of a virtual chemistry laboratory course. Chemistry Education Research and Practice, 24, 674–687. https://doi.org/10.1039/D2RP00145D

    Article  Google Scholar 

  • Lou, Y., Abrami, P. C., & d’Apollonia, S. (2001). Small group and individual learning with technology: A meta-analysis. Review of Educational Research, 71(3), 449–521.

    Article  Google Scholar 

  • Luft, J. A., & Hewson, P. W. (2014). Research on teacher professional development programs in science. In Handbook of Research on Science Education, Volume II (pp 903–924). Routledge

  • Major, S., Hubálovská, M., & Loskot, R. (2022). Alternative forms of laboratory teaching during the lockdown period caused by the covid-19 pandemic. International Journal of Information and Education Technology,12(11),.

  • Minner, D. D., Levy, A. J., & Century, J. (2010). Inquiry-based science instruction–what is it and does it matter? results from a research synthesis years 1984 to 2002. Journal of Research in Science Teaching: The Official Journal of the National Association for Research in Science Teaching, 47(4), 474–496.

    Article  Google Scholar 

  • Nacaroğlu, O., & Bektaş, O. (2023). The effect of the flipped classroom model on gifted students’ self-regulation skills and academic achievement. Thinking Skills and Creativity, 47(101), 244.

    Google Scholar 

  • Nechypurenko, P. P., & Pokhliestova, O. Y. (2023). Cloud technologies of augmented reality as a means of supporting educational and research activities in chemistry for 11th grade students. Educational Technology Quarterly,.

  • Petillion, R., & McNeil, W. (2020). Johnstone’s triangle as a pedagogical framework for flipped-class instructional videos in introductory chemistry. Journal of Chemical Education,97(6), 1536–1542. https://doi.org/10.1021/acs.jchemed.9b01105.

  • Polly, P., Marcus, N., Maguire, D., et al. (2014). Evaluation of an adaptive virtual laboratory environment using western blotting for diagnosis of disease. BMC Medical Education, 14(1), 1–9.

    Article  Google Scholar 

  • Poo, M. C. P., Yy, Lau, & Chen, Q. (2023). Are virtual laboratories and remote laboratories enhancing the quality of sustainability education? Education Sciences, 13(11), 1110.

    Article  Google Scholar 

  • Radhamani, R., Kumar, D., Nizar, N., et al. (2021). What virtual laboratory usage tells us about laboratory skill education pre-and post-covid-19: Focus on usage, behavior, intention and adoption. Education and Information Technologies, 26(6), 7477–7495.

    Article  Google Scholar 

  • Reid, S. (2016). A flipped classroom redesign in general chemistry. Chemistry Education Research and Practice,17(4), 914–922. https://doi.org/10.1039/c6rp00129g. https://www.scopus.com/inward/record.uri?eid=2-s2.0-85028702626 &doi=10.1039%2fc6rp00129g &partnerID=40 &md5=05d505042dbf67d70b44eb453f936c14, cited By 28.

  • Reid, S. (2020). Restructuring a general college chemistry sequence using the acs anchoring concepts content map. Journal of Chemical Education,97(3), 651–658. https://doi.org/10.1021/acs.jchemed.9b00950. https://www.scopus.com/inward/record.uri?eid=2-s2.0-85079060769 &doi=10.1021%2facs.jchemed.9b00950 &partnerID=40 &md5=8f50e50dfc5c056eab76fcf15ac501ca’, cited By 6

  • Seery, M. K. (2015). Flipped learning in higher education chemistry: emerging trends and potential directions. Chemistry Education Research and Practice, 16(4), 758–768.

    Article  Google Scholar 

  • Sohrabi, B., & Iraj, H. (2016). Implementing flipped classroom using digital media: A comparison of two demographically different groups perceptions. Computers in Human Behavior,60, 514–524. https://doi.org/10.1016/j.chb.2016.02.056. https://www.sciencedirect.com/science/article/pii/S0747563216301145

  • Starks, J., Hendrickson, F. R., Hadi, F., et al. (2017). Miniaturized inexpensive hands-on fluid mechanics laboratory kits for remote online learning. In 2017 ASEE Annual Conference & Exposition.

  • Sypsas, A., & Kalles, D. (2023). Analysis, evaluation and reusability of virtual laboratory software based on conceptual modeling and conformance checking. Mathematics, 11(9), 2153.

    Article  Google Scholar 

  • Teo, T. W., Tan, K. C. D., Yan, Y. K., et al. (2014). How flip teaching supports undergraduate chemistry laboratory learning. Chemistry Education Research and Practice, 15(4), 550–567.

    Article  Google Scholar 

  • Tsai, C. Y., Ho, Y. C., & Nisar, H. (2021). Design and validation of a virtual chemical laboratory-an example of natural science in elementary education. Applied Sciences, 11(21), 10070.

    Article  Google Scholar 

  • Tsai, M. N., Liao, Y. F., Chang, Y. L., et al. (2020). A brainstorming flipped classroom approach for improving student’s learning performance, motivation, teacher-student interaction and creativity in a civics education class. Thinking Skills and Creativity, 38, 100747.

    Article  Google Scholar 

  • Venkatesh, V., Thong, J. Y., & Xu, X. (2012). Consumer acceptance and use of information technology: extending the unified theory of acceptance and use of technology. MIS Quarterly, 157–178.

  • Vishnoi, N. (2009). Advanced practical organic chemistry. Vikas Publishing House.

  • Weaver, G. C., & Sturtevant, H. G. (2015). Design, implementation, and evaluation of a flipped format general chemistry course. Journal of Chemical Education, 92(9), 1437–1448.

    Article  Google Scholar 

  • Wu, D., Fulmer, J., & Johnson, S. (2014). Teaching information security with virtual laboratories. Innovative Practices in Teaching Information Sciences and Technology: Experience Reports and Reflections, 179–192.

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Acknowledgements

This work derives direction and ideas from the Chancellor of Amrita Vishwa Vidyapeetham, Sri Mata Amritanandamayi Devi. The authors would like to thank the Amrita Virtual Labs team and CREATE team at Amrita Vishwa Vidyapeetham in developing and deploying virtual laboratories.

Funding

This work was funded by Virtual Labs project, NMEICT, Ministry of Education, Government of India.

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Correspondence to Vysakh Kani Kolil.

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Kolil, V.K., Achuthan, K. Virtual labs in chemistry education: A novel approach for increasing student’s laboratory educational consciousness and skills. Educ Inf Technol 29, 25307–25331 (2024). https://doi.org/10.1007/s10639-024-12858-x

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