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Journal : JPF : JURNAL PENDIDIKAN FISIKA

Enhancing Problem-Solving Abilities and Science Process Skills through Guided Inquiry with Laboratory Media in High School Rahman, Sunarti; Muhammad Syahri; Agus Tinus
Jurnal Pendidikan Fisika Vol. 13 No. 3 (2025): PENDIDIKAN FISIKA
Publisher : Universitas Muhammadiyah Makassar

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.26618/vn4kxv72

Abstract

Physics education at the high school level continues to face challenges in cultivating students’ higher-order thinking, particularly problem-solving ability and science process skills, which are essential for scientific literacy and future learning. Conventional lecture-based approaches often result in passive learning and limited opportunities for inquiry, creating an urgent need for innovative teaching strategies. This study aimed to investigate the effectiveness of guided inquiry supported by laboratory media in enhancing problem-solving ability and science process skills among high school students. Employing a quasi-experimental design with a pretest–posttest nonequivalent control group, the research was conducted with 64 Grade X students at SMAN 1 Gowa, Indonesia, who were divided into an experimental group taught through guided inquiry with laboratory media and a control group receiving traditional instruction. Data were collected using a validated problem-solving test and a science process skills assessment and analyzed using descriptive statistics, independent samples t-tests, and normalized gain (N-gain) scores. The results indicated that the experimental group achieved significantly higher improvements, with N-gain scores of 0.70 (high) for problem-solving and 0.50 (medium) for science process skills, compared with 0.60 and 0.38, respectively, in the control group. These findings confirm that guided inquiry combined with laboratory media provides a more effective learning environment by promoting active engagement, conceptual understanding, and procedural competence. The novelty of this study lies in its focus on the measurement topic in high school physics, an area often associated with analytical difficulty. The study concludes that this instructional model contributes to the advancement of physics education by offering empirical evidence for curriculum innovation and pedagogical reform.
Effectiveness of Digital Learning Media on Students' Achievement in Science Education: A Quasi-Experimental Study in Islamic Junior Secondary School Nurhidayah, Nurhidayah; Syahri, Muhammad; Agus Tinus
Jurnal Pendidikan Fisika Vol. 13 No. 3 (2025): PENDIDIKAN FISIKA
Publisher : Universitas Muhammadiyah Makassar

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.26618/654nz478

Abstract

The rapid expansion of digital technology compels schools to adopt learning media that elevate achievement and cultivate twenty-first-century competencies. In science education, conventional teacher-centered instruction often fails to sustain engagement or deepen conceptual understanding, creating an urgent need for evidence-based innovations. This study examined the effectiveness of digital learning media in improving science achievement at MTs Muhammadiyah Datarang, an Islamic junior secondary school. A quantitative quasi-experimental design was implemented with two intact classes: an experimental group (n = 27) taught using digital media and a control group (n = 26) taught conventionally. Data were collected via pretest–posttest instruments and analyzed using descriptive statistics, normalized gain (N-Gain), and independent-samples t tests. Results showed that the experimental group attained a mean posttest score of 91.41 and an average N-Gain of 0.70 (high), whereas the control group achieved a score of 80.42 and a N-Gain of 0.27 (low); the difference was statistically significant (p < 0.05). These findings indicate that digital media enhance conceptual understanding, engagement, and motivation compared with traditional instruction. The study’s novelty lies in providing rigorous quantitative evidence from a madrasah context that is underrepresented in the technology-enhanced science learning literature. Integrating interactive, visual, feedback-oriented tools can transform science learning in Islamic schools by enabling deeper processing and more equitable progress. This research contributes to physics education by presenting a practical model aligned with multimedia learning theory, providing classroom benchmark values, and informing teacher development and school-level policy. Future studies should extend the intervention longitudinally, involve larger and more diverse samples, and examine affective and social outcomes to evaluate the sustainability and generalizability of the gains.