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  1. Examining the Representations of NOS in Educational Resources.Ryan Summers & Fouad Abd-El-Khalick - 2019 - Science & Education 28 (3):269-289.
    Researchers have raised concerns about teachers’ ability to embed nature of science in their science instruction, a complicated situation that is certainly impacted by the availability of adequate resources to assist K-12 science teachers. In light of the implementation of the ideas from the Framework for K-12 Science Education and the Next Generation Science Standards in the USA, this study sought to identify and evaluate resources aimed at guiding NOS instruction. A search of the National Science Teachers Association database for (...)
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  • Emphasizing the History of Genetics in an Explicit and Reflective Approach to Teaching the Nature of Science.Cody Tyler Williams & David Wÿss Rudge - 2016 - Science & Education 25 (3-4):407-427.
    Science education researchers have long advocated the central role of the nature of science for our understanding of scientific literacy. NOS is often interpreted narrowly to refer to a host of epistemological issues associated with the process of science and the limitations of scientific knowledge. Despite its importance, practitioners and researchers alike acknowledge that students have difficulty learning NOS and that this in part reflects how difficult it is to teach. One particularly promising method for teaching NOS involves an explicit (...)
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  • Effects of Historical Story Telling on Student Understanding of Nature of Science.Cody Tyler Williams & David Wÿss Rudge - 2019 - Science & Education 28 (9-10):1105-1133.
    Concepts related to the nature of science have been considered an important part of scientific literacy as reflected in its inclusion in curriculum documents. A significant amount of science education research has focused on improving learners’ understanding of NOS. One approach that has often been advocated is an explicit and reflective approach. Some researchers have used the history of science to provide learners with explicit and reflective experiences with NOS concepts. Previous research on using the history of science in science (...)
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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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  • 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.
  • Current Status of Research in Teaching and Learning Evolution: II. Pedagogical Issues.Mike U. Smith - 2010 - Science & Education 19 (6-8):539-571.
  • Changes Observed in Views of Nature of Science During a Historically Based Unit.David Wÿss Rudge, David Paul Cassidy, Janice Marie Fulford & Eric Michael Howe - 2014 - Science & Education 23 (9):1879-1909.
  • Developing Content Knowledge in Students Through Explicit Teaching of the Nature of Science: Influences of Goal Setting and Self-Monitoring.Erin E. Peters - 2012 - Science & Education 21 (6):881-898.
  • Using a Professional Development Program for Enhancing Chilean Biology Teachers’ Understanding of Nature of Science (NOS) and Their Perceptions About Using History of Science to Teach NOS.José M. Pavez, Claudia A. Vergara, David Santibañez & Hernán Cofré - 2016 - Science & Education 25 (3-4):383-405.
    A number of authors have recognized the importance of understanding the nature of science for scientific literacy. Different instructional strategies such as decontextualized, hands-on inquiry, and history of science activities have been proposed for teaching NOS. This article seeks to understand the contribution of HOS in enhancing biology teachers’ understanding of NOS, and their perceptions about using HOS to teach NOS. These teachers, enrolled in a professional development program in Chile are, according to the national curriculum, expected to teach NOS, (...)
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  • A Theater-Based Device for Training Teachers on the Nature of Science.Énery Melo & Manuel Bächtold - 2018 - Science & Education 27 (9-10):963-986.
    This article presents and discusses an innovative pedagogical device designed for training pre-service teachers on the nature of science. We endorse an approach according to which aspects of the nature of science should be explicitly discussed in order to be understood by learners. We identified quantum physics, and more precisely the principles of uncertainty and complementarity, as a rich topic suitable for such a discussion. Our training device consists in preparing and staging a new type of theater, the “scientific experimental (...)
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  • Mendel and the Path to Genetics: Portraying Science as a Social Process.Kostas Kampourakis - 2013 - Science & Education 22 (2):293-324.
    Textbook descriptions of the foundations of Genetics give the impression that besides Mendel’s no other research on heredity took place during the nineteenth century. However, the publication of the Origin of Species in 1859, and the criticism that it received, placed the study of heredity at the centre of biological thought. Consequently, Herbert Spencer, Charles Darwin himself, Francis Galton, William Keith Brooks, Carl von Nägeli, August Weismann, and Hugo de Vries attempted to develop theories of heredity under an evolutionary perspective, (...)
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  • Charles Darwin and Evolution: Illustrating Human Aspects of Science. [REVIEW]Kostas Kampourakis & William F. McComas - 2010 - Science & Education 19 (6-8):637-654.
    Recently, the nature of science (NOS) has become recognized as an important element within the K-12 science curriculum. Despite differences in the ultimate lists of recommended aspects, a consensus is emerging on what specific NOS elements should be the focus of science instruction and inform textbook writers and curriculum developers. In this article, we suggest a contextualized, explicit approach addressing one core NOS aspect: the human aspects of science that include the domains of creativity, social influences and subjectivity. To illustrate (...)
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  • Discussion of the Controversy Concerning a Historical Event Among Pre-service Teachers.Rosária Justi & Paula Cristina Cardoso Mendonça - 2016 - Science & Education 25 (7-8):795-822.
    As part of a teacher training project, 16 future chemistry teachers participated in a dramatisation activity, in which they discussed a controversy concerning an event from the history of science: the awarding of the Nobel Prize in Chemistry to Fritz Haber in 1918. Preparations for the role-play activity, the dramatisation of the mock trial, and the subsequent discussions were video-recorded. We also collected the written material produced by the pre-service teachers and the reflective journals they produced during their involvement with (...)
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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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  • 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.
  • 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.
  • The Name of the Rose: A Path to Discuss the Birth of Modern Science.Andreia Guerra & Marco Braga - 2014 - Science & Education 23 (3):643-654.
  • 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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  • Teaching the Conceptual History of Physics to Physics Teachers.Peter Garik, Luciana Garbayo, Yann Benétreau-Dupin, Charles Winrich, Andrew Duffy, Nicholas Gross & Manher Jariwala - 2015 - Science & Education 24 (4):387-408.
    For nearly a decade we have taught the history and philosophy of science as part of courses aimed at the professional development of physics teachers. The focus of the history of science instruction is on the stages in the development of the concepts and theories of physics. For this instruction, we designed activities to help the teachers organize their understanding of this historical development. The activities include scientific modeling using archaic theories. We conducted surveys to gauge the impact on the (...)
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  • The Portrayal of Industrial Melanism in American College General Biology Textbooks.Janice Marie Fulford & David Wÿss Rudge - 2016 - Science & Education 25 (5-6):547-574.
    The phenomenon of industrial melanism became widely acknowledged as a well-documented example of natural selection largely as a result of H.B.D. Kettlewell’s pioneering research on the subject in the early 1950s. It was quickly picked up by American biology textbooks starting in the early 1960s and became ubiquitous throughout the 1970s, 1980s and 1990s. While recent research on the phenomenon broadly supports Kettlewell’s explanation of IM in the peppered moth, which in turn has strengthened this example of natural selection, textbook (...)
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  • History and Nature of Science in High School: Building Up Parameters to Guide Educational Materials and Strategies.Thaís Cyrino de Mello Forato, Roberto de Andrade Martins & Maurício Pietrocola - 2012 - Science & Education 21 (5):657-682.
  • Science & Education in Educational Perspectives: Recognizing the Contributions of Michael R. Matthews.Zoubeida R. Dagher & Peter Heering - 2015 - Science & Education 24 (7-8):821-826.
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  • Teachers’ Use of Educative Features in Guides for Nature of Science Read-Alouds.Jeanne Brunner - 2019 - Science & Education 28 (3-5):413-437.
    This study investigates the use of specific educative features for supporting the teaching of nature of science during read-alouds of elementary science trade books. Educative features are components of educative curriculum materials that aim to increase teachers’ content knowledge and support effective instructional practices. Understanding how teachers use specific educative features is important for the future design of curriculum materials that can be used to improve teachers’ views of NOS in tandem with changing their teaching practices. Qualitative data from teacher (...)
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  • How Many Times Can You Be Wrong and Still Be Right? T. H. Morgan, Evolution, Chromosomes and the Origins of Modern Genetics.Garland E. Allen - 2015 - Science & Education 24 (1-2):77-99.
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  • Using History of Science to Teach Nature of Science to Elementary Students.Valarie Akerson, Heidi Masters & Khadija Fouad - 2015 - Science & Education 24 (9-10):1103-1140.
    Science lessons using inquiry only or history of science with inquiry were used for explicit reflective nature of science instruction for second-, third-, and fourth-grade students randomly assigned to receive one of the treatments. Students in both groups improved in their understanding of creative NOS, tentative NOS, empirical NOS, and subjective NOS as measured using VNOS-D as pre- and post-test surveys. Social and cultural context of science was not accessible for the students. Students in second, third, and fourth grades were (...)
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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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  • Special Issue: Philosophical Considerations in the Teaching of Biology. Part II, Evolution, Development and Genetics.Kostas Kampourakis (ed.) - 2013 - Springer (Science & Education).
  • 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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