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Chulkyu Park; Seonyeong Mun; Hun-Gi Hong – Journal of Research in Science Teaching, 2024
The purpose of this case study, informed by a Lakatosian perspective, is to identify how an alternative conception that originates in present learning but is related directly to subsequent learning contexts can be constructed. Before the study, one of the authors found by accident that a student who had learned about Avogadro's principle and…
Descriptors: High School Students, Knowledge Level, Scientific Concepts, Fuels
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Robert W. Danielson; Benjamin C. Heddy; Onur Ramazan; Gan Jin; Kanvarbir S. Gill; Danielle N. Berry – Journal of Research in Science Teaching, 2025
Misinformation has been extensively studied as both maliciously intended propaganda and accidentally experienced incorrect assumptions. We contend that "conceptual contamination" is the process by which the learning of incorrect information interferes, pollutes, or otherwise disrupts the learning of correct information. This is similar…
Descriptors: Misinformation, Propaganda, Deception, Misconceptions
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Watkins, Jessica; Hammer, David; Radoff, Jennifer; Jaber, Lama Z.; Phillips, Anna M. – Journal of Research in Science Teaching, 2018
Not understanding is central to scientific work: what scientists do is learn about the natural world, which involves seeking out what they do not know. In classrooms, however, the position of not-understanding is generally a liability; confusion is an unfortunate condition to resolve as quickly as possible, or to conceal. In this article, we argue…
Descriptors: Science Education, Science Process Skills, Comprehension, Ambiguity (Context)
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Herrmann-Abell, Cari F.; DeBoer, George E. – Journal of Research in Science Teaching, 2018
This study tests a hypothesized learning progression for the concept of energy. It looks at 14 specific ideas under the categories of (i) Energy Forms and Transformations; (ii) Energy Transfer; (iii) Energy Dissipation and Degradation; and (iv) Energy Conservation. It then examines students' growth of understanding within each of these ideas at…
Descriptors: Energy, Science Instruction, Concept Formation, Energy Conservation
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Davis, Pryce R.; Russ, Rosemary S. – Journal of Research in Science Teaching, 2015
The fields of science education and science communication share the overarching goal of helping non-experts and non-members of the professional science community develop knowledge of the content and processes of scientific research. However, the specific audiences, methods, and aims employed in the two fields have evolved quite differently and as…
Descriptors: Science Education, Communication (Thought Transfer), Scientific Research, Audiences
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Martin, Andrew J.; Durksen, Tracy L.; Williamson, Derek; Kiss, Julia; Ginns, Paul – Journal of Research in Science Teaching, 2016
Informal learning settings such as museums have been identified as opportunities to enhance students' knowledge and motivation in science and to optimize the connection between science and everyday life. The present study assessed the role of a self-paced science education program (situated in a medical science museum) in enhancing students'…
Descriptors: Role, Museums, Science Education, Learning Motivation
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Stefani, Christina; Tsaparlis, Georgios – Journal of Research in Science Teaching, 2009
We investigated students' knowledge constructions of basic quantum chemistry concepts, namely atomic orbitals, the Schrodinger equation, molecular orbitals, hybridization, and chemical bonding. Ausubel's theory of meaningful learning provided the theoretical framework and phenomenography the method of analysis. The semi-structured interview with…
Descriptors: Chemistry, Misconceptions, Models, Phenomenology
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Gunckel, Kristin L.; Covitt, Beth A.; Salinas, Ivan; Anderson, Charles W. – Journal of Research in Science Teaching, 2012
Providing model-based accounts (explanations and predictions) of water and substances in water moving through environmental systems is an important practice for environmental science literacy and necessary for citizens confronting global and local water quantity and quality issues. In this article we present a learning progression for water in…
Descriptors: Water Quality, Environmental Education, Thinking Skills, Science Education
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Plummer, Julia D.; Krajcik, Joseph – Journal of Research in Science Teaching, 2010
Prior research has demonstrated that neither children nor adults hold a scientific understanding of the big ideas of astronomy, as described in standards documents for science education [National Research Council [1996]. National science education standards. Washington, DC: National Academy Press; American Association for the Advancement of…
Descriptors: Astronomy, Motion, Scientific Literacy, Science Education
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Schwarz, Christina V.; Reiser, Brian J.; Davis, Elizabeth A.; Kenyon, Lisa; Acher, Andres; Fortus, David; Shwartz, Yael; Hug, Barbara; Krajcik, Joe – Journal of Research in Science Teaching, 2009
Modeling is a core practice in science and a central part of scientific literacy. We present theoretical and empirical motivation for a learning progression for scientific modeling that aims to make the practice accessible and meaningful for learners. We define scientific modeling as including the elements of the practice (constructing, using,…
Descriptors: Scientific Literacy, Grade 6, Models, Science Instruction
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Reif, Frederick; Larkin, Jill H. – Journal of Research in Science Teaching, 1991
Scientific and everyday knowledge domains are compared so as to reveal the distinctive differences between their goals and the cognitive processes used to attain them. The main goals, working goals, learning difficulties, knowledge structure, concept specification, knowledge organization, role of school science, program-solving instruction, formal…
Descriptors: Cognitive Structures, Concept Formation, Epistemology, Higher Education
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Chandran, Sarath; And Others – Journal of Research in Science Teaching, 1987
Discusses a study that examined the role of four cognitive factors (formal reasoning ability, prior knowledge, field dependence/independence, and memory capacity) on achievement in chemistry as measured by tests of lab application, chemical calculations, and content knowledge. Reports the significance of prior knowledge and formal reasoning…
Descriptors: Academic Achievement, Achievement Gains, Chemistry, Cognitive Processes