Nor Farahwahidah Abdul Rahman
Universiti Teknologi Malaysia, Malaysia

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Mapping a Decade of Research on Artificial Intelligence and Augmented Reality in Physics Education: A Bibliometric Analysis (2016–2025) Zainuddin Zainuddin; Misbah Misbah; Mastuang Mastuang; Qamariah Qamariah; Mohd Zaidi Bin Amiruddin; Nor Farahwahidah Abdul Rahman
Online Learning In Educational Research (OLER) Vol. 5 No. 2 (2025): Online Learning in Educational Research
Publisher : CV FOUNDAE

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.58524/oler.v5i2.901

Abstract

This study presents a Scopus-based bibliometric mapping of a decade of research on Artificial Intelligence (AI) and Augmented Reality (AR) in physics education, spanning the period from 2016 to 2025. The dataset was retrieved from Scopus on August 2, 2025, and, following PRISMA-style screening and filtering, comprised 1,038 English-language journal articles at the final publication stage. Bibliometric analyses were conducted using Bibliometrix (Biblioshiny), VOSviewer, and Microsoft Excel to examine publication growth, leading sources and authors, geographic and institutional contributions, collaboration patterns, and conceptual structures through keyword co-occurrence, thematic mapping, and thematic evolution. The results indicate accelerated publication growth after 2019 and an interdisciplinary dissemination pattern across education- and technology-facing outlets. Conceptual mapping suggests that AI-related themes (e.g., adaptive and data-informed learning support) and AR-related themes (e.g., interactive visualization and representational learning) constitute the dominant pillars of the field, while physics-education-specific learning mechanisms (e.g., conceptual change, multi-representational reasoning, and inquiry/laboratory enactment) are unevenly foregrounded across clusters. Because this is a bibliometric study, the findings provide a structured overview of research patterns and thematic orientations rather than causal evidence of learning effectiveness, thereby informing future empirical and design-based studies that connect AI/AR developments to physics-education-specific learning mechanisms and implementation contexts.
Fabrication of Fluorine-Doped Tin Oxide (FTO): From experiment to its application in physics learning Sahrul Saehana; Aqidatul Izzah; Agnes Jois’ Palamba; Darsikin Darsikin; Nor Farahwahidah Abdul Rahman
Momentum: Physics Education Journal Vol. 7 No. 2 (2023)
Publisher : Universitas PGRI Kanjuruhan Malang

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.21067/mpej.v7i2.8438

Abstract

The paper reports the experiment in the laboratory in making FTO by employing spray pyrolysis methods, its application in DSSC, and its implementation in physics learning. The methodology in this research was mixed methods (experiment and qualitative methods). The experimental section was conducted by dissolving SnCl2.2H2O and NH4F in 96% alcohol and then depositioned on a glass substrate on a hotplate with a temperature of 450◦C using an Omron NE-C28 nebulizer. Spraying was carried out for 20 minutes then characterized morphology (SEM), content (EDS), crystal structure (XRD), transmittance (UV-VIS), and voltage-current (IV). Based on investigations using Scanning Electron Microscopy and Electron Dispersive Spectroscopy, it is known that transparent conductive SnO2:F particles have been formed. By using XRD, Nanometer-sized crystalline particles have also been identified. Furthermore, the FTO electrode is utilized as an electrode on DSSC and its performance is measured. In the qualitative section, students and researchers were interviewed about the physical aspect of the FTO fabrication process. Then, interview results were used to design laboratory physics learning. 
Framework for critical thinking skills as a preservice physics teacher competence Misbah Misbah; Ida Hamidah; Siti Sriyati; Achmad Samsudin; Qamariah Qamariah; Nor Farahwahidah Abdul Rahman
Journal of Environment and Sustainability Education Vol. 3 No. 3 (2025)
Publisher : Education and Development Research

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.62672/joease.v3i3.69

Abstract

Critical thinking skills (CTS) are among the 21st-century skills needed. Preservice physics teachers need CTS to solve problems critically, not only in academics but also in life. This research offers a comprehensive perspective and understanding of critical thinking skills as a framework for measuring the ability of preservice physics teachers. The approach is qualitative with methodology analysis, and the documentary content produces a theoretical competence framework. Findings are then applied to determine CTS indicators' relevant competencies, such as clarity assumption, interpretation, analysis, reason, and evaluation. Preservice physics teachers can understand and use these results to evaluate CTS. The research emphasizes optimizing CTS for preservice physics teachers because education is increasingly complex and dynamic.