Fatni Mufit
Department of Physics Universitas Negeri Padang,Padang,Indonesia.

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Effectiveness of Cognitive Conflict-Based Teaching Material Integrated with Augmented Reality in Improving Students’ Conceptual Understanding and Self-Efficacy on Light Waves Intan Ayu Tresna; Fatni Mufit; Ratnawulan Ratnawulan; Selma Riyasni
Jurnal Penelitian Pembelajaran Fisika Vol. 12 No. 2 (2026): JPPF (Jurnal Penelitian Pembelajaran Fisika) : In Progress
Publisher : Universitas Negeri Padang in collaboration with Association of Mathematics and Natural Sciences Institution for Education of Teaching Staff Indonesia (AMLI)

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.24036/jppf.v13i2.56

Abstract

Effective physics learning should enable students to develop sound conceptual understanding and strong self-efficacy to solve scientific problems. Physics learning on light waves remains challenging due to students’ low conceptual understanding, misconceptions, and low self-efficacy caused by abstract concepts and teacher-centered instruction. These challenges highlight the need for innovative teaching materials. This study aimed to investigate the effectiveness of Augmented Reality (AR)-integrated cognitive conflict-based teaching materials in improving students’ conceptual understanding and self-efficacy. A quasi-experimental study employing a nonequivalent pretest–posttest control group design was conducted with 36 experimental and 33 control class students at SMA Negeri 1 Batusangkar. Data from a validated four-tier diagnostic test and self-efficacy questionnaire were analyzed using descriptive statistics, Mann–Whitney U, and Independent Sample t-tests. Results showed the experimental class's correct understanding increased from 26% to 80%, while misconceptions decreased from 40% to 8%. Statistical analysis revealed significant differences in conceptual understanding (p < .001) and self-efficacy (p < .001) between classes. These findings demonstrate that AR-integrated cognitive conflict-based materials effectively enhance both cognitive and affective outcomes, serving as an impactful instructional alternative to overcome learning difficulties in abstract physics topics.
Effects of E-Module Integrated Problem Based Learning Model of Fluid Material on Student’s Learning Outcomes Amelia Agustin; Hidayati Hidayati; Fatni Mufit; Renol Afrizon
Jurnal Penelitian Pembelajaran Fisika Vol. 12 No. 2 (2026): JPPF (Jurnal Penelitian Pembelajaran Fisika) : In Progress
Publisher : Universitas Negeri Padang in collaboration with Association of Mathematics and Natural Sciences Institution for Education of Teaching Staff Indonesia (AMLI)

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.24036/jppf.v13i2.60

Abstract

Improving students’ physics learning outcomes is one of the primary goals of implementing the Independent Curriculum, which emphasizes active, independent, and student-centered learning, However, students learning outcomes on fluid materials remain relatively low because the teaching materials commonly used in schools have not fully facilitated active learning and problem-solving activities. To address this issue, the use of Problem-Based Learning (PBL)-based E-Modules is proposed as an alternative solution to create more meaningful and independent learning experiences. This study aims to analyze the effect of the use of Problem Based Learning (PBL)-based E-Modules on physics learning outcomes of grade XI students of SMA Negeri 14 Padang on fluid materials. The research uses a quasi-experimental method with a Posttest-Only Control Design. The research sample consisted of 71 students divided into experimental classes and control classes. The experimental class uses PBL-based E-Modules, while the control class uses teaching materials commonly used in schools. The research data includes learning outcomes of cognitive, affective, and psychomotor aspects obtained through tests and observation sheets. The results showed that the average learning outcomes of students in cognitive, affective, and psychomotor aspects in the experimental class were higher than in the control class. These findings show that the use of Problem Based Learning-based E-Modules is effective in improving students' physics learning outcomes on fluid materials. The use of PBL-based E-Modules provides benefits in creating more active, meaningful learning, and supports the development of students' knowledge, attitudes, and skills in learning fluid material.