Student Worksheets Integrated Augmented Reality Based on Physics Learning Project Models to Improve Students' Scientific Creativity in High School



Maimon Sumo(1*), Ratno Budiyanto(2), Syifaul Aini Mulyadi(3),

(1) Universitas Islam Madura
(2) Universitas Annuqayah Sumenep
(3) Universitas Islam Madura
(*) Corresponding Author

Abstract


Scientific creativity is an important skill in 21st century learning. In practice, many students still have difficulty in developing ideas, exploring, and solving problems innovatively. Various previous studies have developed teaching materials based on Project Based Learning (PjBL) and Augmented Reality (AR) separately. However, none have integrated the two to improve scientific creativity. Based on the results of previous research studies, this study aims to develop student worksheets (LKPD) based on PjBL integrated with AR to improve the scientific creativity of high school students. The research method used is Research & Development (R&D) from ADDIE which consists of five stages, namely analysis, design, development, implementation, and evaluation. Based on the results of previous research studies, both in terms of methods, approaches and use of physics learning media, there is a research gap, the gap between this research and previous research is the integration between AR technology and project-based LKPD. The integration of AR with project-based LKPD simultaneously is something new in this study. This integration will provide a new experience that is more interactive and interesting in the physics learning process. The results of the study showed that the results of the validity test by three experts obtained an average validity score of 3.91 (98%) with a very valid category and a reliability score reaching 95.6% with a reliable category. Thus, this student worksheet is declared valid, practical, and effective in improving the scientific creativity of high school students. The limitation of this study is that this study has only reached the validation stage so that it needs to be implemented in more high schools.

Keywords


Student worksheet; Augmented Reality; Physics Learning project; Scientific Creativity

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References


Al-Kamzari, F., & Alias, N. (2025). A systematic literature review of project-based learning in secondary school physics: theoretical foundations, design principles, and implementation strategies. Humanities and Social Sciences Communications, 12(1), 1–18. https://doi.org/10.1057/s41599-025-04579-4

Andres, E. C. A., & Rosalinda, B. (2023). Online Flipped Learning Model in a College Physical Education Course. European Journal of Educational Research, 13(1), 413–425.

Angelina, O. P., Handayani, R. D., & Maryani, M. (2023). Implementation of STEM Project-Based Learning (PjBL) student worksheet through the “otok-otok” boat game on engineering thinking skills. Momentum: Physics Education Journal, 7(1), 116–124. https://doi.org/10.21067/mpej.v7i1.7238

Arifullah. (2020). The development of student worksheets with PhET assisted to improve student science process skill. In Journal of Physics: Conference Series (Vol. 1460, Issue 1). https://doi.org/10.1088/1742-6596/1460/1/012144

Arzak, K. A., & Prahani, B. K. (2023). Practicality of Augmented Reality Books in Physics Learning: A Literature Review. JPPS (Jurnal Penelitian Pendidikan Sains), 12(2), 138–154. https://doi.org/10.26740/jpps.v12n2.p138-154

Astiningsih, A. D., & Partana, C. F. (2020). Using Android Media for Chemistry Learning Construction of Motivation and Metacognition Ability. International Journal of Instruction. https://eric.ed.gov/?id=EJ1239195

Bahri, A., Hidayat, W. M., Putra, K. P., Ainun, N. A., & Arifin, N. (2024). the Relationship Between Students’ Perception To the Learning Media, Digital Literacy Skills, and Self-Regulated Learning With Students’ Learning Outcomes in the Rural Area. Journal of Technology and Science Education, 14(2), 588–606. https://doi.org/10.3926/jotse.2513

Baihaqi, H. K., Jumadi, J., Mardiani, A., & Religia, R. (2021). Analyzing student inquiry in online and offline classes during the Covid-19 pandemic through momentum and impulse worksheets. Momentum: Physics Education Journal, 5(2), 161–174. https://doi.org/10.21067/mpej.v5i2.5567

Borich, G. D., Godbout, R. C., Peck, R. F., Kash, M. M., & Poynor, L. H. (1994). An Evaluation of the Personalized Model of Teacher. Research and Development Center for Teacher Education The University of Texas at Austin.

Celestino-Salcedo, R. K. M., Malayao, S. O., Salic-Hairulla, M. A., Castro, E. J., & Mordeno, I. C. V. (2024). Vodcast embedded with physics education technology simulation in learning projectile motion. Journal of Education and Learning, 18(3), 1047–1055. https://doi.org/10.11591/edulearn.v18i3.21434

Cheli, S., Chiarello, F., & Cavalletti, V. (2023). A psychotherapy oriented by compassion and metacognition for schizoid personality disorder: A two cases series. Journal of Contemporary Psychotherapy. https://doi.org/10.1007/s10879-022-09566-3

Cirkony, C. (2023). Flexible, creative, constructive, and collaborative: the makings of an authentic science inquiry task. International Journal of Science Education, 45(17), 1440–1462. https://doi.org/10.1080/09500693.2023.2213384

Coban, A., Dzsotjan, D., Küchemann, S., Durst, J., Kuhn, J., & Hoyer, C. (2025). AI support meets AR visualization for Alice and Bob: personalized learning based on individual ChatGPT feedback in an AR quantum cryptography experiment for physics lab courses. EPJ Quantum Technology, 12(1). https://doi.org/10.1140/epjqt/s40507-025-00310-z

Costley, J., Hughes, C., & Lange, C. (2017). The effects of instructional design on student engagement with video lectures at cyber universitiesCostley, J., Hughes, C., & Lange, C. (2017). The effects of instructional design on student engagement with video lectures at cyber universities. Journal of. Journal of Information Technology Education: Research, 16(1), 189–207.

Cynthia, C., Arafah, K., & Palloan, P. (2023). Development of Interactive Physics E-Module to Improve Critical Thinking Skills. Jurnal Penelitian Pendidikan IPA, 9(5), 3943–3952. https://doi.org/10.29303/jppipa.v9i5.2302

Dila Rukmi Octaviana, Sutomo, M., & Mashudi. (2022). Model Pembelajaran Dick and Carey Serta Implementasinya Dalam Pembelajaran Pai. Jurnal Tawadhu, 6(2), 114–126. https://doi.org/10.52802/twd.v6i2.344

Dwikoranto, Jatmiko, B., Hariyono, E., Lestari, N. A., Prahani, B. K., & Suyidno. (2021). MobLen Model for Enhancing Scientific Creativity of Physics Students: An Alternative in the Covid-19 Pandemic. Journal of Physics: Conference Series, 1805(1). https://doi.org/10.1088/1742-6596/1805/1/012006

Echle, A. (2021). Deep learning in cancer pathology: a new generation of clinical biomarkers. In British Journal of Cancer (Vol. 124, Issue 4, pp. 686–696). https://doi.org/10.1038/s41416-020-01122-x

Ellianawati, E., Ardilla, D., & Wiji, W. (2024). Development of Student Worksheet Integrated by Differentiated-PjBL Model to Train Student Science Process Skills on Renewable Energy Material. JPPPF (Jurnal Penelitian Dan Pengembangan Pendidikan Fisika), 10(2), 229–242. https://doi.org/doi.org/10.21009/1.10203

Güler, T. (2025). Specializing the scientific creativity survey for subjects “ our foods ” and “ human and environment ” in grade 4 science curriculum. 21(4).

Habibi, Mundilarto, Jumadi, J., Gummah, S., Ahzan, S., & Prasetya, D. S. B. (2020). Project brief effects on creative thinking skills among low-ability pre-service physics teachers. International Journal of Evaluation and Research in Education, 9(2), 415–420. https://doi.org/10.11591/ijere.v9i2.20531

Haim, K., & Aschauer, W. (2022). Fostering Scientific Creativity in the Classroom: The Concept of Flex-Based Learning. International Journal of Learning, Teaching and Educational Research, 21(3), 196–230. https://doi.org/10.26803/ijlter.21.3.11

Hu, W., & Adey, P. (2010). A scientific creativity test for secondary school students. International Journal of Science Education, 24(4), 389–403. https://doi.org/10.1080/09500690110098912

Ida Kholida, S., Suprianto, & Ketut Mahardika, I. (2020). Development of Work Sheet Students in Guided Inquiry Based on the Game Education Using Macromedia Flash. Journal of Physics: Conference Series, 1569(2). https://doi.org/10.1088/1742-6596/1569/2/022006

Irma, Z. U., Kusairi, S., & Yuliati, L. (2023). Strem Pbl With E-Authentic Assessment: Its Impact To Students’ Scientific Creativity on Static Fluid. Jurnal Pendidikan IPA Indonesia, 12(1), 80–95. https://doi.org/10.15294/jpii.v12i1.40214

Ismail, A., Bhakti, D. D., Sari, L., Dwi Kemalia, L., & Saprudin, S. (2024). Development of an augmented reality integrated Problem-Solving Laboratory Model (PSLab-AR) for electricity concepts to enhance the students’ understanding of concepts. Momentum: Physics Education Journal, 8(1), 1–10. https://doi.org/10.21067/mpej.v8i1.9428

Ismail, R. N., Arnawa, I. M., & Yerizon, Y. (2020). Student worksheet usage effectiveness based on realistics mathematics educations toward mathematical communication ability of junior high school student. Journal of Physics: Conference Series, 1554(1). https://doi.org/10.1088/1742-6596/1554/1/012044

Kartika, S., Saepuzaman, D., Rusnayati, H., Karim, S., & Feranie, S. A. (2019). The influence of scientific creativity and critical worksheet (SCCW) on project based learning to increase cognitive ability, scientific creative skills and scientific critical skills senior high school students on sound wave problem. Journal of Physics: Conference Series, 1280(5). https://doi.org/10.1088/1742-6596/1280/5/052002

Kevin, R., Todd, L., & Hélène, H. (2024). Teaching responsible creativity: a path to ethical innovation. Discover Education, 3(1). https://doi.org/10.1007/s44217-024-00164-0

Maharani Putri Kumalasani, & Kusumaningtyas, D. I. (2022). 21 St Century Skill In Learning Models With A Steam Approach. Jurnal Riset Pendidikan Dasar, 05(April), 74–81.

Nieveen, Tjeerd Plomp., N. (2013). Educational Design Research. In Netherlands Institute for Curriculum Development: SLO (Tjeerd Plo). SLO Enschede the Netherland.

Nugraheni, V. Y. S. T., & Mundilarto, M. (2022). Development of 2-D augmented reality integrated physics e-book to improve students’ problem-solving skills. Momentum: Physics Education Journal, 6(2), 171–180. https://doi.org/10.21067/mpej.v6i2.6623

Oktasari, D., Jumadi, Warsono, Hariadi, M. H., & Syari, E. L. (2019). 3D Page-Flipped Worksheet on Impulse-Momentum To Develop Students’ Scientific Communication Skills. Jurnal Pendidikan IPA Indonesia, 8(2), 211–219. https://doi.org/10.15294/jpii.v8i2.15737

Park, J., Yoon, H. G., & Lee, I. (2023). Research-Based Teaching: Analyzing Science Teachers’ Process of Understanding and Using Academic Papers To Teach Scientific Creativity. Journal of Baltic Science Education, 22(1), 57–72. https://doi.org/10.33225/jbse/23.22.57

PISA. (2023). PISA 2022 Results Factsheets Indonesia. The Language of Science Education, 1, 1–9. https://oecdch.art/a40de1dbaf/C108.

Plomp, T., & Nieveen, N. M. (2010). An introduction to educational design research (N. Plomp, Tjeerd. Nieveen (ed.)). Netzodruk enschede.

Prahani, B. K., Suprapto, N., & Rachmadiarti, F. (2021). Online Scientific Creativity Learning ( OSCL ) in Science Education to Improve Students ’ Scientific Creativity in Covid-19 Pandemic. 10, 77–90.

Prahani, B. K., Suprapto, N., Rachmadiarti, F., Sholahuddin, A., Mahtari, S., Suyidno, & Siswanto, J. (2021). Online Scientific Creativity Learning (OSCL) in Science Education to Improve Students’ Scientific Creativity in Covid-19 Pandemic. Journal of Turkish Science Education, 18(Special Issue), 77–90. https://doi.org/10.36681/tused.2021.73

Pusat Penilaian Pendidikan Balitbang Kemendikbud. (2019). Pendidikan di Indonesia Belajar dari Hasil PISA 2018. Pusat Penilaian Pendidikan Balitbang Kemendikbud, 021, 1–206.

Rahayu, S., Setyosari, P., Hidayat, A., & Kuswandi, D. (2022). the Effectiveness of Creative Problem Solving-Flipped Classroom for Enhancing Students’ Creative Thinking Skills in Online Physics Educational Learning. Jurnal Pendidikan IPA Indonesia, 11(4), 649–656. https://doi.org/10.15294/jpii.v11i4.39709

Rahmawati, Y., Afrizal, A., Astari, D. D., Mardiah, A., Utami, D. B., & Muhab, S. (2021). The integration of dilemmas stories with stem-project-based learning: Analyzing students’ thinking skills using hess’ cognitive rigor matrix. Journal of Technology and Science Education, 11(2), 419–439. https://doi.org/10.3926/jotse.1292

Saphira, H. V. (2022). Profile of Students’ Critical Thinking Skills in Physics Learning: A Preliminary Study of Games Application Integrated Augmented Reality. In Journal of Physics: Conference Series (Vol. 2377, Issue 1). https://doi.org/10.1088/1742-6596/2377/1/012088

Siagian, M. V., Saragih, S., & Sinaga, B. (2019). Development of Learning Materials Oriented on Problem-Based Learning Model to Improve Students’ Mathematical Problem Solving Ability and Metacognition Ability. International Electronic Journal of Mathematics Education, 14(2), 331–340. https://doi.org/10.29333/iejme/5717

Sumo, M., Jatmiko, B., Arifin, Z., & Supardi, I. (2024a). Profile of Scientific Creativity Based on Project Based Learning of Physics Education Undergraduate Students : Preliminary research. Jurnal Ilmu Pendidikan Fisika (JIPF), 9(3), 377–386. https://doi.org/10.26737/jipf.v9i3.5802

Sumo, M., Jatmiko, B., Arifin, Z., & Supardi, I. (2024b). Validity And Practicality of The Scientific Creativity Project-Based Learning ( SCPjBL ) Model to Increase The Scientific Creativity of Physics Education Undergraduate Students. IJORER : International Journal of Recent Educational Research, 5(6), 1353–1366. https://doi.org/https://doi.org/10.46245/ijorer

Sumo, M., Jatmiko, B., Supardi, Z. A. I., & Suprianto, S. (2024). The Influence Of The Project-Based Learning Model On The Scientific Creativity Of Physics Education Undergraduate Students At Madura Islamic University. SEJ (Science Education Journal), 8(1), 19–31. https://doi.org/10.21070/sej.v8i2.1651

Suprapto, N., & Hidaayatullaah, H. N. (2023). University Students’ Perspectives on Physics Education in Sustainable Development Goals. Journal of Physics: Conference Series, 2623(1). https://doi.org/10.1088/1742-6596/2623/1/012001

Suradika., Dwi., N. (2023). Jurnal Pendidikan IPA Indonesia. Jurnal Pendidikan IPA Indonesia, 12(1), 153–167. https://doi.org/10.15294/jpii.v12i1.39713

Suyidno, S., Susilowati, E., Arifuddin, M., Sunarti, T., Siswanto, J., & Rohman, A. (2020). Barriers to Scientific Creativity of Physics Teacher in Practicing Creative Product Design. Journal of Physics: Conference Series, 1491(1). https://doi.org/10.1088/1742-6596/1491/1/012048

Torrance. (2013). Scientific views of creativity and factors affecting its growth. Daedalus: The MIT Press and American Academy of Arts & Sciences Are Collaborating with JSTOR to Digitize, Preserve and Extend Access to Daedalus., 2(4), 15–165.

Wahyuni, L., & Rahayu, Y. S. (2021). Pengembangan E-Book Berbasis Project Based Learning (PjBL) untuk Melatihkan Kemampuan Berpikir Kreatif pada Materi Pertumbuhan dan Perkembangan Tumbuhan Kelas XII SMA. Berkala Ilmiah Pendidikan Biologi (BioEdu), 10(2), 314–325. https://doi.org/10.26740/bioedu.v10n2.p314-325

Wibowo, F. C. (2023). Effects of augmented reality integration (ARI) based model physics independent learning (mpil) for facilitating 21st-century skills (21-CS). Journal of Technology and Science Education, 13(1), 178–192.

Wijayanto, T., Supriadi, B., & Nuraini, L. (2020). Pengaruh Model Pembelajaran Project Based Learning Dengan Pendekatan Stem Terhadap Hasil Belajar Siswa Sma. Jurnal Pembelajaran Fisika, 9(3), 113. https://doi.org/10.19184/jpf.v9i3.18561

Xu, S., Reiss, M. J., & Lodge, W. (2024). Comprehensive Scientific Creativity Assessment (C-SCA): A New Approach for Measuring Scientific Creativity in Secondary School Students. International Journal of Science and Mathematics Education, 23(2), 293–319. https://doi.org/10.1007/s10763-024-10469-z

Yurt, E. (2023). 21st-century Skills as Predictors of Pre-Service Teachers’ Professional Qualifications: A Cross-Sectional Study. International Journal of Education in Mathematics, Science and Technology, 11(5), 1328–1345. https://doi.org/10.46328/ijemst.3291

Zainuddin, Suyidno, Dewi Dewantara, Saiyidah Mahtari, Mohamd Nur, Leny Yuanita, T. S. (2020). The Correlation of Scientific Knowledge-Science Process Skills and Scientific Creativity in Creative Responsibility Based Learning. International Journal of Instruction, 13(3), 307–316.

Zakaria, M. I., Hanri, C., Noer, S. H., Triana, M., & Widyastuti. (2025). 4C skills teaching activities for mathematics teachers: application of modified nominal group technique. Journal of Education and Learning, 19(2), 626–633. https://doi.org/10.11591/edulearn.v19i2.22337




DOI: https://doi.org/10.30998/npjpe.v7i1.3983

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