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  1. From Science Studies to Scientific Literacy: A View from the Classroom.Douglas Allchin - 2014 - Science & Education 23 (9):1911-1932.
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  • How to Use Historical Approach to Teach Nature of Science in Chemistry Education?Simo Tolvanen, Jan Jansson, Veli-Matti Vesterinen & Maija Aksela - 2014 - Science & Education 23 (8):1605-1636.
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  • Progressive transitions in chemistry teachers’ understanding of nature of science based on historical controversies.Mansoor Niaz - 2009 - Science & Education 18 (1):43-65.
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  • International Handbook of Research in History, Philosophy and Science Teaching.Michael R. Matthews (ed.) - 2014 - Springer.
    This inaugural handbook documents the distinctive research field that utilizes history and philosophy in investigation of theoretical, curricular and pedagogical issues in the teaching of science and mathematics. It is contributed to by 130 researchers from 30 countries; it provides a logically structured, fully referenced guide to the ways in which science and mathematics education is, informed by the history and philosophy of these disciplines, as well as by the philosophy of education more generally. The first handbook to cover the (...)
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  • The renewal of case studies in science education.Arthur Stinner, Barbara A. McMillan, Don Metz, Jana M. Jilek & Stephen Klassen - 2003 - Science & Education 12 (7):617-643.
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  • The Concepts of Heat and Temperature: The Problem of Determining the Content for the Construction of an Historical Case Study which is Sensitive to Nature of Science Issues and Teaching–Learning Issues.K. C. de Berg - 2008 - Science & Education 17 (1):75-114.
    Historical case studies of scientific concepts are a useful medium for showing how scientific ideas originate and how they change over time. They are thus a useful tool for conveying knowledge about the nature of science. This paper focuses on the concepts of heat and temperature and discusses some issues related to choosing the content for a historical case study which incorporates not only nature of science perspectives but understandings related to what we know about the teaching and learning of (...)
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  • Science education for democratic citizenship through the use of the history of science.Stein Dankert Kolstø - 2008 - Science & Education 17 (8-9):977-997.
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  • Experiment in Cartesian Courses: The Case of Professor Burchard de Volder.Tammy Nyden - 2010 - The Circulation of Science and Technology.
    In 1675, Burchard de Volder became the first university physics professor to introduce the demonstration of experiments into his lectures and to create a special university classroom, The Leiden Physics Theatre, for this specific purpose. This is surprising for two reasons: first, early pre-Newtonian experiment is commonly associated with Italy and England, and second, de Volder is committed to Cartesian philosophy, including the view that knowledge gathered through the senses is subject to doubt, while that deducted from first principles is (...)
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  • The Minnesota Case Study Collection: New Historical Inquiry Case Studies for Nature of Science Education.Douglas Allchin - 2012 - Science & Education 21 (9):1263-1281.
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  • Nature of Science Contextualized: Studying Nature of Science with Scientists.Veli-Matti Vesterinen & Suvi Tala - 2015 - Science & Education 24 (4):435-457.
    Understanding nature of science is widely considered an important educational objective and views of NOS are closely linked to science teaching and learning. Thus there is a lively discussion about what understanding NOS means and how it is reached. As a result of analyses in educational, philosophical, sociological and historical research, a worldwide consensus about the content of NOS teaching is said to be reached. This consensus content is listed as a general statement of science, which students are supposed to (...)
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  • Methodology and politics: a proposal to teach the structuring ideas of the philosophy of science through the pendulum.Agustín Adúriz-Bravo - 2004 - Science & Education 13 (7-8):717-731.
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  • Understanding the Nature of Science Through a Critical and Reflective Analysis of the Controversy Between Pasteur and Liebig on Fermentation.Antonio García-Carmona & José Antonio Acevedo-Díaz - 2017 - Science & Education 26 (1-2):65-91.
    This article presents a qualitative study, descriptive-interpretive in profile, of the effectiveness in learning about the nature of science of an activity relating to the historical controversy between Pasteur and Liebig on fermentation. The activity was implemented during a course for pre-service secondary science teachers specializing in physics and chemistry. The approach was explicit and reflective. Three research questions were posed: What conceptions of NOS do the PSSTs show after a first reflective reading of the historical controversy?, What role is (...)
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  • The Cultural Argument for Understanding Nature of Science.Christiane S. Reiners, Markus Bliersbach & Karl Marniok - 2017 - Science & Education 26 (5):583-610.
    Understanding Nature of Science is a central component of scientific literacy, which is agreed upon internationally, and consequently has been a major educational goal for many years all over the globe. In order to justify the promotion of an adequate understanding of NOS, educators have developed several arguments, among them the cultural argument. But what is behind this argument? In order to answer this question, C. P. Snow’s vision of two cultures was used as a starting point. In his famous (...)
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  • Design of Chemistry Teacher Education Course on Nature of Science.Veli-Matti Vesterinen & Maija Aksela - 2013 - Science & Education 22 (9):2193-2225.
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  • A Research-Informed Instructional Unit to Teach the Nature of Science to Pre-Service Science Teachers.Agustín Adúriz-Bravo & Mercè Izquierdo-Aymerich - 2009 - Science & Education 18 (9):1177-1192.
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  • The Rationale for a Teaching Innovation About the Interrelationship Between Science and Technology.R. Hadjilouca, C. P. Constantinou & N. Papadouris - 2011 - Science & Education 20 (10):981-1005.
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  • Historical-Investigative Approaches in Science Teaching.Peter Heering & Dietmar Höttecke - 2014 - In Michael R. Matthews (ed.), International Handbook of Research in History, Philosophy and Science Teaching. Springer. pp. 1473-1502.
    This chapter presents the historical-investigative approach used in science teaching. Both history and philosophy of science have come to a sophisticated understanding of the role that experiments play in the generation and establishment of scientific knowledge. This recent development, called the “experimental turn,” is discussed first. Next, this chapter analyzes how practical work has been discussed among science educators in recent decades. Based on such a broad perspective, the historical-investigative approach is linked to recent advancements in history and philosophy of (...)
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  • Seeking historical examples to illustrate key aspects of the nature of science.William F. McComas - 2008 - Science & Education 17 (2-3):249-263.
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  • History of Science in the Physics Curriculum: A Directed Content Analysis of Historical Sources.Hayati Seker & Burcu G. Guney - 2012 - Science & Education 21 (5):683-703.
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  • The Nobel Prize in the Physics Class: Science, History, and Glamour.Haim Eshach - 2009 - Science & Education 18 (10):1377-1393.
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  • A Novel Method for Teaching the Difference and Relationship Between Theories and Laws to High School Students.Kathryn L. Gray & Khadija E. Fouad - 2019 - Science & Education 28 (3-5):471-501.
    This study examines the use of an explicit, reflective method for teaching the difference and relationship between scientific theories and laws to ninth-grade students. Students reflected individually and then as a whole class on theories and laws using a Venn diagram, both before and after reading short articles describing features of theories and laws that provided an explicit challenge to their naïve prior conceptions. In small groups, they chose a theory or law, researched it, constructed a poster, and did a (...)
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  • Implementing History and Philosophy in Science Teaching: Strategies, Methods, Results and Experiences from the European HIPST Project.Dietmar Höttecke, Andreas Henke & Falk Riess - 2012 - Science & Education 21 (9):1233-1261.
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  • Comparing the Impact of Two Science-as-Inquiry Methods on the NOS Understanding of High-School Biology Students.Dina Tsybulsky - 2018 - Science & Education 27 (7-8):661-683.
    The current study compared the effectiveness of two methods in biology teaching that are based on the science-as-inquiry approach: visits to authentic university laboratories and analyzing adapted primary literature. The methods’ effectiveness was measured in terms of high-school students’ increased understanding following a 6-week intervention that emphasized five major aspects of the nature of science : the tentativeness of scientific understanding, the cooperative nature of the scientific process, methodological diversity, the sociocultural embeddedness of scientific knowledge, and the aims of scientific (...)
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  • Why Implementing History and Philosophy in School Science Education is a Challenge: An Analysis of Obstacles.Dietmar Höttecke & Cibelle Celestino Silva - 2011 - Science & Education 20 (3-4):293-316.
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  • Physics Teachers’ Challenges in Using History and Philosophy of Science in Teaching.Dietmar Höttecke & Andreas Henke - 2015 - Science & Education 24 (4):349-385.
    The inclusion of the history and philosophy of science in science teaching is widely accepted, but the actual state of implementation in schools is still poor. This article investigates possible reasons for this discrepancy. The demands science teachers associate with HPS-based teaching play an important role, since these determine teachers’ decisions towards implementing its practices and ideas. We therefore investigate the perceptions of 8 HPS-experienced German middle school physics teachers within and beyond an HPS implementation project. Within focused interviews these (...)
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  • Turning Crisis into Opportunity: Nature of Science and Scientific Inquiry as Illustrated in the Scientific Research on Severe Acute Respiratory Syndrome.Siu Ling Wong, Jenny Kwan, Derek Hodson & Benny Hin Wai Yung - 2009 - Science & Education 18 (1):95-118.
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  • Whatever happened to STS? Pre-service physics teachers and the history of quantum mechanics.Samson Nashon, Wendy Nielsen & Stephen Petrina - 2008 - Science & Education 17 (4):387-401.
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  • Pupils Produce their Own Narratives Inspired by the History of Science: Animation Movies Concerning the Geocentric–Heliocentric Debate.Panagiotis Piliouras, Spyros Siakas & Fanny Seroglou - 2011 - Science & Education 20 (7-8):761-795.
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  • Teaching the Nature of Science Through the Millikan-Ehrenhaft Dispute.Eleni Paraskevopoulou & Dimitris Koliopoulos - 2011 - Science & Education 20 (10):943-960.
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  • History of Science as an Instructional Context: Student Learning in Genetics and Nature of Science.Sun Young Kim & Karen E. Irving - 2010 - Science & Education 19 (2):187-215.
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  • Introducing History of Science in the Classroom: A Field Research Experience in Italy.Liborio Dibattista & Francesca Morgese - 2013 - Science & Education 22 (3):543-576.
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  • Integrating Scientific Methods and Knowledge into the Teaching of Newton’s Theory of Gravitation: An Instructional Sequence for Teachers’ and Students’ Nature of Science Education.Maria Develaki - 2012 - Science & Education 21 (6):853-879.
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  • The Story Behind the Science: Bringing Science and Scientists to Life in Post-Secondary Science Education.Michael P. Clough - 2011 - Science & Education 20 (7-8):701-717.
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