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  1. Exploring students’ epistemological knowledge of models and modelling in science:results from a teaching/learning experience on climate change.Giulia Tasquier, Olivia Levrini & Justin Dillon - 2016 - International Journal of Science Education 38 (4):539-563.
    The scientific community has been debating climate change for over two decades. In the light of certain arguments put forward by the aforesaid community, the EU has recommended a set of innovative reforms to science teaching such as incorporating environmental issues into the scientific curriculum, thereby helping to make schools a place of civic education. However, despite these European recommendations, relatively little emphasis is still given to climate change within science curricula. Climate change, although potentially engaging for students, is a (...)
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  • A New Definition of Models and Modeling in Chemistry’s Teaching.José A. Chamizo - 2013 - Science & Education 22 (7):1613-1632.
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  • School Chemistry: An Historical and Philosophical Approach.Mercè Izquierdo-Aymerich - 2013 - Science & Education 22 (7):1633-1653.
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  • Sketching the Invisible to Predict the Visible: From Drawing to Modeling in Chemistry.Melanie M. Cooper, Mike Stieff & Dane DeSutter - 2017 - Topics in Cognitive Science 9 (4):902-920.
    Sketching as a scientific practice goes beyond the simple act of inscribing diagrams onto paper. Scientists produce a wide range of representations through sketching, as it is tightly coupled to model-based reasoning. Chemists in particular make extensive use of sketches to reason about chemical phenomena and to communicate their ideas. However, the chemical sciences have a unique problem in that chemists deal with the unseen world of the atomic-molecular level. Using sketches, chemists strive to develop causal mechanisms that emerge from (...)
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  • Developing epistemologically empowered teachers: examining the role of philosophy of chemistry in teacher education.Sibel Erduran, Agustin Aduriz Bravo & Rachel Mamlok Naaman - 2007 - Science & Education 16 (9-10):975-989.
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  • Constructivism’s New Clothes: The Trivial, the Contingent, and a Progressive Research Programme into the Learning of Science. [REVIEW]Keith S. Taber - 2006 - Foundations of Chemistry 8 (2):189-219.
    Constructivism has been a key referent for research into the learning of science for several decades. There is little doubt that the research into learners’ ideas in science stimulated by the constructivist movement has been voluminous, and a great deal is now known about the way various science topics may commonly be understood by learners of various ages. Despite this significant research effort, there have been serious criticisms of this area of work: in terms of its philosophical underpinning, the validity (...)
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  • Integrating Epistemological Perspectives on Chemistry in Chemical Education: The Cases of Concept Duality, Chemical Language, and Structural Explanations.Ebru Kaya & Sibel Erduran - 2013 - Science & Education 22 (7):1741-1755.
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  • Connections between pedagogical and epistemological constructivism: Questions for teaching and research in chemistry. [REVIEW]Donald J. Wink - 2006 - Foundations of Chemistry 8 (2):111-151.
    The rich and ongoing debate about constructivism in chemistry education includes questions about the relationship, for better or worse, between applications of the theory in pedagogy and in epistemology. This paper presents an examination of the potential to use connections of epistemological and pedagogical constructivism to one another. It examines connections linked to the content, processes, and premises of science with a goal of prompting further research in these areas.
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