| dc.description.abstract |
Chemical equilibrium is among the most conceptually demanding topics in secondary chemistry,
with students frequently developing persistent misconceptions due to its dynamic nature and the
prevalence of teacher-centered instruction that limits inquiry and reasoning opportunities. This
study examined how a Design-Based Research Inquiry Based Learning (DBR–IBL) approach an
instructional framework that integrates iterative design cycles with student-centered inquiry
pedagogy affected Grade 11 students’ conceptual understanding of chemical equilibrium and
critical thinking skills.
Rooted in constructivism and Chemistry Education Research (CER), the study employed a
mixed-methods design implemented over six weeks in a public secondary school in Injibara City,
Ethiopia. Quantitative data were collected using a Critical Thinking Test and a Chemical
Equilibrium Diagnostic Test administered pre- and post-intervention. Qualitative data were
gathered through structured classroom observations, semi-structured interviews, reflective
discussions, and analysis of student learning artifacts. The intervention was iteratively refined
through DBR cycles to address evolving student learning needs.
Quantitative results showed significant achievement gains: mean scores rose from 29.30 (SD =
7.84) to 42.63 (SD = 3.48). A paired-samples t-test confirmed statistical significance, t(29) = –
13.75, p < 0.001, with a very large effect size (Cohen's d = 2.51). Qualitative analysis revealed
five interconnected themes: conceptual restructuring of chemical equilibrium understanding,
growth in critical thinking and scientific reasoning, increased engagement in collaborative
inquiry, challenges in adapting to student-centered learning, and positive perceptions of
chemistry real-world relevance.
Collectively, the findings indicate that the DBR–IBL approach enabled students to actively
construct scientific knowledge, confront persistent misconceptions, and engage in evidence based
reasoning. The study contributes empirical support for design-oriented inquiry in complex
chemistry instruction and recommends broader integration of DBR–IBL alongside further
research into its long-term transfer ability across diverse educational settings |
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