Enhancing prospective teachers’ creative thinking skills: A study of the transition from structured to open inquiry classes
I Putu Artayasa, Universitas Mataram, Indonesia
Muhammad Yustiqvar, Universitas Mataram, Indonesia
Nina Nisrina, Universitas Mataram, Indonesia
Abstract
Creative thinking skills are considered to have a positive correlation with students’ academic achievement. Thus, they need to be developed through the learning process. To successfully develop these skills, an appropriate learning model is needed. This research aims to determine the improvement of the creative thinking skills of prospective teachers who learned using structured, guided, and open inquiries. This quasi-experimental research used an untreated control group design with pretest and posttest. A total sample of 118 students was selected and distributed into structured, guided, and open inquiry classes. The research instrument consisted of 18 creative thinking skill items applied to the pretest and posttest. The data analysis was performed using ANCOVA and LSD tests. The results show that the mean score of the open inquiry class was higher and significantly different compared to those of the other two classes. However, the mean scores of the two classes were not significantly different. Therefore, it can be concluded that the implementation of the open inquiry model led to a higher increase in creative thinking skills compared to those of the structured and guided inquiry models.
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Akyol, Z., Garrison, D. R., & Ozden, M. Y. (2009). Development of a community of inquiry in online and blended learning contexts. Procedia - Social and Behavioral Sciences, 1(1), 1834–1838. https://doi.org/10.1016/j.sbspro.2009.01.324
Alencar, E. M. L. S. de, Fleith, D. de S., & Pereira, N. (2017). Creativity in higher education: Challenges and facilitating factors. Temas Em Psicologia, 25(2), 553–561. https://doi.org/10.9788/TP2017.2-09
Anazifa, R. D., & Djukri, D. (2017). Project-based learning and problem-based learning: Are they effective to improve student’s thinking skills? Jurnal Pendidikan IPA Indonesia, 6(2), 346. https://doi.org/10.15294/jpii.v6i2.11100
Andrini, V. S. (2016). The effectiveness of inquiry learning method to enhance students’ learning outcome: A theoritical and empirical review. Journal of Education and Practice, 7(3), 38–42.
Anjarwani, R., Doyin, M., & Indiatmoko, B. (2020). Guided inquiry learning with outdoor activities setting to improve critical thinking ability and science process skills of elementary school students. Journal of Primary Education, 9(2), 129–135. https://doi.org/10.15294/jpe.v9i2.36178
Antwi, C. O., Fan, C., Aboagye, M. O., Brobbey, P., Jababu, Y., Affum-Osei, E., & Avornyo, P. (2019). Job demand stressors and employees’ creativity: A within-person approach to dealing with hindrance and challenge stressors at the airport environment. The Service Industries Journal, 39(3–4), 250–278. https://doi.org/10.1080/02642069.2018.1520220
Ary, D., Jacobs, L. C., & Razavieh, A. (2011). Pengantar penelitian dalam pendidikan (A. Furchan (trans.); 4th ed.). Pustaka Pelajar.
Beetlestone, F. (2010). Creative learning: Strategi pembelajaran untuk melesatkan kreatifitas siswa (N. Yusron (trans.); 5th ed.). Nusa Media.
Bennett, D. (2016). Enacting strategies for graduate employability: How universities can best support students to develop generic skills.
Bunterm, T., Lee, K., Ng Lan Kong, J., Srikoon, S., Vangpoomyai, P., Rattanavongsa, J., & Rachahoon, G. (2014). Do different levels of inquiry lead to different learning outcomes? A comparison between guided and structured inquiry. International Journal of Science Education, 36(12), 1937–1959. https://doi.org/10.1080/09500693.2014.886347
Chin, C., & Chia, L.-G. (2010). Implementing problem-based learning in biology. Journal of Biological Education, 1, 69–75. https://doi.org/10.1080/00219266.2004.9655904
Chu, S. K. W., Reynolds, R. B., Tavares, N. J., Notari, M., & Lee, C. W. Y. (2021). 21st century skills development through inquiry-based learning from theory to practice. Springer. https://doi.org/10.1007/978-981-10-2481-8
Duran, M., & Dökme, İ. (2016). The effect of the inquiry-based learning approach on student’s critical thinking skills. Eurasia Journal of Mathematics, Science & Technology Education, 12(12), 2887–2908. https://doi.org/10.12973/eurasia.2016.02311a
Fuad, N. M., Zubaidah, S., Mahanal, S., & Suarsini, E. (2017). Improving junior high schools’ critical thinking skills based on test three different models of learning. International Journal of Instruction, 10(01), 101–116. https://doi.org/10.12973/iji.2017.1017a
Garrison, D. R., & Vaughan, N. D. (2013). Institutional change and leadership associated with blended learning innovation: Two case studies. The Internet and Higher Education, 18, 24–28. https://doi.org/10.1016/j.iheduc.2012.09.001
Greenstein, L. (2012). Assessing 21st century skills: A guide to evaluating mastery and authentic learning. Corwin Press.
Gube, M., & Lajoie, S. (2020). Adaptive expertise and creative thinking: A synthetic review and implications for practice. Thinking Skills and Creativity, 35, 100630. https://doi.org/10.1016/j.tsc.2020.100630
Gunawan, G., Harjono, A., Sahidu, H., & Nisrina, N. (2018). Improving students’ creativity using cooperative learning with virtual media on static fluida concept. Journal of Physics: Conference Series, 1006, 012016. https://doi.org/10.1088/1742-6596/1006/1/012016
Gunawan, G., Jufri, A. W., Nisrina, N., Al-Idrus, A., Ramdani, A., & Harjono, A. (2021). Guided inquiry blended learning tools (GI-BL) for school magnetic matter in junior high school to improve students’ scientific literacy. Journal of Physics: Conference Series, 1747(1), 012034. https://doi.org/10.1088/1742-6596/1747/1/012034
Gunawan, G., Jufri, A. W., Nisrina, N., Al-Idrus, A., & Suranti, N. M. Y. (2020). Scientific literacy improvement with blended learning tools in rotational flipped classroom for junior high school. Solid State Technology, 63(4), 7742–7748.
Hadisaputra, S., Ihsan, M. S., Gunawan, G., & Ramdani, A. (2020). The development of chemistry learning devices based blended learning model to promote students’ critical thinking skills. Journal of Physics: Conference Series, 1521, 042083. https://doi.org/10.1088/1742-6596/1521/4/042083
Henriksen, D., Richardson, C., & Mehta, R. (2017). Design thinking: A creative approach to educational problems of practice. Thinking Skills and Creativity, 26, 140–153. https://doi.org/10.1016/j.tsc.2017.10.001
Hensley, N. (2020). Educating for sustainable development: Cultivating creativity through mindfulness. Journal of Cleaner Production, 243, 118542. https://doi.org/10.1016/j.jclepro.2019.118542
Hernawati, D., Amin, M., Irawati, M., Indriwati, S., & Aziz, M. (2018). Integration of project activity to enhance the scientific process skill and self-efficacy in zoology of vertebrate teaching and learning. EURASIA Journal of Mathematics, Science and Technology Education, 14(6), 2475–2485. https://doi.org/10.29333/ejmste/89940
Huang, S.-Y., Kuo, Y.-H., & Chen, H.-C. (2020). Applying digital escape rooms infused with science teaching in elementary school: Learning performance, learning motivation, and problem-solving ability. Thinking Skills and Creativity, 37, 100681. https://doi.org/10.1016/j.tsc.2020.100681
Hudha, M. N., Aji, S. D., & Huda, C. (2018). E-rubric: Scientific work based on android for experimental physic. IOP Conference Series: Materials Science and Engineering, 288(1), 012100. https://doi.org/10.1088/1757-899X/288/1/012100
Hudha, M. N., Hakim, A. R., Aji, S. D., Tasi, M. I., Sundaygara, C., Laksana, E. P., Fajaruddin, S., Andi, T., Yusro, A. C., & Chaeruman, U. A. (2018). Scientific performance e-rubric-assisted problem-based learning for improving learning effectiveness. In International Journal of Engineering & Technology (Vol. 7). www.sciencepubco.com/index.php/IJET
Hugerat, M., & Kortam, N. (2014). Improving higher order thinking skills among freshmen by teaching science through inquiry. Eurasia Journal of Mathematics, Science & Technology Education, 10(5), 447–454. https://doi.org/10.12973/eurasia.2014.1107a
Hwang, G.-J., Lai, C.-L., Liang, J.-C., Chu, H.-C., & Tsai, C.-C. (2018). A long-term experiment to investigate the relationships between high school students’ perceptions of mobile learning and peer interaction and higher-order thinking tendencies. Educational Technology Research and Development, 66(1), 75–93. https://doi.org/10.1007/s11423-017-9540-3
Kivunja, C. (2015). Teaching students to learn and to work well with 21st century skills: Unpacking the career and life skills domain of the new learning paradigm. International Journal of Sustainability in Higher Education, 4(1), 1–11. https://doi.org/10.5430/ijhe.v4n1p1
Llewellyn, D. (2011). Differentiated science inquiry. Corwin Press.
Llewellyn, D. (2013). Teaching high school science through inquiry and argumentation (2nd ed.). Corwin Press.
Lott, K. H. (2011). FIRE UP the Inquiry. Lose the routine, tweak your “cookbook lab,” and reach a level of open inquiry with these strategies used during a unit on heat. Science and Children, 48(7), 29–33.
Malik, A., & Setiawan, A. (2015). The development of higher order thinking laboratory to improve transferable skills of students. Proceedings of the 2015 International Conference on Innovation in Engineering and Vocational Education, 36–40. https://doi.org/10.2991/icieve-15.2016.9
Montag-Smit, T., & Maertz, C. P. (2017). Searching outside the box in creative problem solving: The role of creative thinking skills and domain knowledge. Journal of Business Research, 81, 1–10. https://doi.org/10.1016/j.jbusres.2017.07.021
Munro, J. (2015). Insights into the creativity process: Identifying and measuring creativity.
Ndiung, S. (2020). The treffinger learning model with RME principles on mathematics learning outcome by considering numerical ability. Proceedings of the International Conference on Progressive Education (ICOPE 2019). https://doi.org/10.2991/assehr.k.200323.080
Nisrina, N., Gunawan, G., & Harjono, A. (2017). Pembelajaran kooperatif dengan media virtual untuk peningkatan penguasaan konsep fluida statis siswa. Jurnal Pendidikan Fisika Dan Teknologi, 2(2), 66–72. https://doi.org/10.29303/jpft.v2i2.291
Nur, S., Zubaidah, S., Mahanal, S., & Rohman, F. (2020). ERCoRe learning model to improve creative-thinking skills of preservice biology teachers. Journal for the Education of Gifted Young Scientists, 8(1), 549–569. https://doi.org/10.17478/jegys.673022
Palaniappan, A. K. (2007). Academic achievement of groups formed based on creativity and intelligence. In L. Taxén (Ed.), The 13th International Conference on Thinking (pp. 154–151). Linköping University Electronic Press.
Pretorius, L., Mourik, G. P. van, & Barratt, C. (2017). Student choice and higher-order thinking: Using a novel flexible assessment regime combined with critical thinking activities to encourage the development of higher order thinking. International Journal of Teaching and Learning in Higher Education, 29(2), 389–401.
Ramadhani, R., Umam, R., Abdurrahman, A., & Syazali, M. (2019). The effect of flipped-problem based learning model integrated with LMS-google classroom for senior high school students. Journal for the Education of Gifted Young Scientists, 7(2), 137–158. https://doi.org/10.17478/jegys.548350
Ramdani, A., & Artayasa, I. P. (2020). Keterampilan berpikir kreatif mahasiswa dalam pembelajaran IPA menggunakan model inkuiri terbuka. Jurnal Pendidikan Sains Indonesia (Indonesian Journal of Science Education), 8(1), 1–9. https://doi.org/10.24815/jpsi.v8i1.15394
Ratnasari, D., Suciati, S., & Maridi, M. (2019). Empowering scientific thinking skills through creative problem solving with scaffolding learning. Jurnal Pendidikan Biologi Indonesia, 5(1), 61–68. https://doi.org/10.22219/jpbi.v5i1.7135
Romli, S., Abdurrahman, A., & Riyadi, B. (2018). Designing students’ worksheet based on open-ended approach to foster students’ creative thinking skills. Journal of Physics: Conference Series, 948, 012050. https://doi.org/10.1088/1742-6596/948/1/012050
Rudibyani, R. B. (2019). Improving students’ creative thinking ability through problem based learning models on stoichiometric materials. Journal of Physics: Conference Series, 1155, 012049. https://doi.org/10.1088/1742-6596/1155/1/012049
Sadeh, I., & Zion, M. (2012). Which type of inquiry project do high school biology students prefer: Open or guided? Research in Science Education, 42(5), 831–848. https://doi.org/10.1007/s11165-011-9222-9
Sarwono, J. (2015). Rumus-rumus populer dalam SPSS 22 untuk riset skripsi (A. Sahala (ed.); 1st ed.). Andi.
Siburian, J., Corebima, A. D., Ibrohim, I., & Saptasari, M. (2019). The correlation between critical and creative thinking skills on cognitive learning results. Eurasian Journal of Educational Research, 19(81), 99–114. https://doi.org/10.14689/ejer.2019.81.6
Spires, H. A., Kerkhoff, S. N., & Graham, A. C. K. (2016). Disciplinary literacy and inquiry: Teaching for deeper content learning. Journal of Adolescent & Adult Literacy, 60(2), 151–161. https://doi.org/10.1002/jaal.577
Sumarni, W., & Kadarwati, S. (2020). Ethno-STEM project-based learning: Its impact to critical and creative thinking skills. Jurnal Pendidikan IPA IndonesiaA, 9(1), 11–21. https://doi.org/10.15294/jpii.v9i1.21754
Suryawati, E., & Osman, K. (2018). Contextual learning: Innovative approach towards the development of students’ scientific attitude and natural science performance. Eurasia Journal of Mathematics, Science and Technology Education, 14(1), 61–76. https://doi.org/10.12973/ejmste/79329
Syuhendri, S. (2017). A learning process based on conceptual change approach to foster conceptual change in Newtonian mechanics. Journal of Baltic Science Education, 16(2), 228–240. https://doi.org/10.33225/jbse/17.16.228
Trnova, E., & Trna, J. (2014). Implementation of creativity in science teacher training. International Journal on New Trends in Education and Their Implications, 5(3), 54–63.
Wahyudi, W., Verawati, N. N. S. P., Ayub, S., & Prayogi, S. (2019). The effect of scientific creativity in inquiry learning to promote critical thinking ability of prospective teachers. International Journal of Emerging Technologies in Learning (IJET), 14(14), 122. https://doi.org/10.3991/ijet.v14i14.9532
Yulianti, D., Wiyanto, W., Rusilowati, A., & Nugroho, S. E. (2020). Student worksheets based on Science, Technology, Engineering and Mathematics (STEM) to facilitate the development of critical and creative thinking skills. Journal of Physics: Conference Series, 1567, 022068. https://doi.org/10.1088/1742-6596/1567/2/022068
Yusnaeni, Y., Corebima Aloysius, D., Susilo, H., & Zubaidah, S. (2017). Creative thinking of low academic student undergoing search solve create and share learning integrated with metacognitive strategy. International Journal of Instruction, 10(2), 245–262. https://doi.org/10.12973/iji.2017.10216a
Yustiqvar, M., Gunawan, G., & Hadisaputra, S. (2019). Effects of green chemistry based interactive multimedia on the students’ learning outcomes and scientific literacy. Journal of Advanced Research in Dynamical and Control Systems, 11(7), 664–674.
Zion, M., & Mendelovici, R. (2012). Moving from structured to open inquiry: Challenges and limits. Science Education International, 23(4), 383–399.
Zubaidah, S., Fuad, N. M., Mahanal, S., & Suarsini, E. (2017). Improving creative thinking skills of students through differentiated science inquiry integrated with mind map. Journal of Turkish Science Education, 14(4), 77–91.
DOI: https://doi.org/10.21831/cp.v40i3.41758
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