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  1. 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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  • The Nature of the Arguments for Creationism, Intelligent Design, and Evolution.Ralph M. Barnes, Rebecca A. Church & Samuel Draznin-Nagy - 2017 - Science & Education 26 (1-2):27-47.
    Seventy-two Internet documents promoting creationism, intelligent design, or evolution were selected for analysis. The primary goal of each of the 72 documents was to present arguments for creationism, I.D., or evolution. We first identified all arguments in these documents. Each argument was then coded in terms of both argument type and argument topic. We then provided a quantitative summary of each argument type and topic for each of the three positions. Three clear patterns were revealed by the data. First, websites (...)
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  • Heuristic Diagrams as a Tool to Teach History of Science.José A. Chamizo - 2012 - Science & Education 21 (5):745-762.
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  • Science and Worldviews in the Classroom: Joseph Priestley and Photosynthesis.Michael R. Matthews - 2009 - Science & Education 18 (6-7):929-960.
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  • Philosophical Dimensions of Social and Ethical Issues in School Science Education: Values in Science and in Science Classrooms.Ana C. Couló - 2014 - In Michael R. Matthews (ed.), International Handbook of Research in History, Philosophy and Science Teaching. Springer. pp. 1087-1117.
    Philosophical debates on the nature and significance of values in scientific knowledge and practices have differentiated cognitive (or epistemic) values from noncognitive (non-epistemic, such as moral or political) ones. The significance of cognitive values has come to be more or less commonly accepted, but the place of noncognitive values is much more controversial. Analysis and debate on values-related dimensions of scientific knowledge and inquiry has been on the rise in contemporary philosophy of science since 1970. This chapter provides an overview (...)
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  • Social Studies of Science and Science Teaching.Gábor Kutrovátz & Gábor Áron Zemplén - 2014 - In Michael R. Matthews (ed.), International Handbook of Research in History, Philosophy and Science Teaching. Springer. pp. 1119-1141.
    If any nature of science perspective is to be incorporated in science-related curricula, it is hard to imagine a satisfactory didactic toolkit that neglects the social studies of science, the academic field of study of the institutional structures and networks of science. Knowledge production takes place in a world populated by actors, instruments, and ideas, and various epistemic cultures are responsible for providing the concepts, abstractions, and techniques that slowly trickle down the information pathways to become stabilized in university curricula (...)
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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 challenge of knowledge soup.John F. Sowa - 2006 - In Jayashree Ramadas & Sugra Chunawala (eds.), Research Trends in Science, Technology and Mathematics Education. Homi Bhabha Centre for Science Education, TIFR. pp. 55--90.
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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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  • 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 Potential of Perspectivism for Science Education.Jacob V. Pearce - 2013 - Educational Philosophy and Theory 45 (5):531-545.
    Many science teachers are presented with the challenge of characterizing science as a dynamic, human endeavour. Perspectivism, as a hermeneutic philosophy of science, has the potential to be a learning tool for teachers as they elucidate the complex nature of science. Developed earlier by Nietzsche and others, perspectivism has recently re-emerged in the context of the philosophy of science in the work of Ronald Giere. Giere presents a compelling case that scientific theories and scientific observation are perspectival by using science (...)
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  • The Implications for Science Education of Heidegger’s Philosophy of Science.Robert Shaw - 2013 - Educational Philosophy and Theory 45 (5):546-570.
    Science teaching always engages a philosophy of science. This article introduces a modern philosophy of science and indicates its implications for science education. The hermeneutic philosophy of science is the tradition of Kant, Heidegger, and Heelan. Essential to this tradition are two concepts of truth, truth as correspondence and truth as disclosure. It is these concepts that enable access to science in and of itself. Modern science forces aspects of reality to reveal themselves to human beings in events of disclosure. (...)
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  • Changes in Students’ Views about Nature of Scientific Inquiry at a Science Camp.G. Leblebicioglu, D. Metin, E. Capkinoglu, P. S. Cetin, E. Eroglu Dogan & R. Schwartz - 2017 - Science & Education 26 (7-9):889-917.
    Although nature of science and nature of scientific inquiry are related to each other, they are differentiated as NOS is being more related to the product of scientific inquiry which is scientific knowledge whereas NOSI is more related to the process of SI. Lederman et al. determined eight NOSI aspects for K-16 context. In this study, a science camp was conducted to teach scientific inquiry and NOSI to 24 6th and 7th graders. The core of the program was guided inquiry (...)
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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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  • 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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  • Reflections on 25 Years of Journal Editorship.Michael R. Matthews - 2015 - Science & Education 24 (5-6):749-805.
    These reflections range over some distinctive features of the journal Science & Education, they acknowledge in a limited way the many individuals who over the past 25 years have contributed to the success and reputation of the journal, they chart the beginnings of the journal, and they dwell on a few central concerns—clear writing and the contribution of HPS to teacher education. The reflections also revisit the much-debated and written-upon philosophical and pedagogical arguments occasioned by the rise and possible demise (...)
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  • 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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  • Why the Difference Between Explanation and Argument Matters to Science Education.Ingo Brigandt - 2016 - Science & Education 25 (3-4):251-275.
    Contributing to the recent debate on whether or not explanations ought to be differentiated from arguments, this article argues that the distinction matters to science education. I articulate the distinction in terms of explanations and arguments having to meet different standards of adequacy. Standards of explanatory adequacy are important because they correspond to what counts as a good explanation in a science classroom, whereas a focus on evidence-based argumentation can obscure such standards of what makes an explanation explanatory. I provide (...)
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  • Clergy’s Views of the Relationship between Science and Religious Faith and the Implications for Science Education.Daniel L. Dickerson, Karen R. Dawkins & John E. Penick - 2008 - Science & Education 17 (4):359-386.
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  • Science, Worldviews, and Education.Hugh G. Gauch - 2009 - Science & Education 18 (6-7):667-695.
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  • Calculating and Understanding: Formal Models and Causal Explanations in Science, Common Reasoning and Physics Teaching.Ugo Besson - 2010 - Science & Education 19 (3):225-257.
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  • Constitutive Pluralism of Chemistry: Thought Planning, Curriculum, Epistemological and Didactic Orientations.Marcos Antonio Pinto Ribeiro & Duarte Costa Pereira - 2013 - Science & Education 22 (7):1809-1837.
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  • Scientific Communication and the Nature of Science.Kristian H. Nielsen - 2013 - Science & Education 22 (9):2067-2086.
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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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  • Trends in HPS/NOS Research in Korean Science Education.Jinwoong Song & Yong Jae Joung - 2014 - In Michael R. Matthews (ed.), International Handbook of Research in History, Philosophy and Science Teaching. Springer. pp. 2177-2215.
    The recent National Science Curriculum of Korea highlights the promotion of students’ scientific literacy, which requires an understanding of HPS and NOS, for rational and scientific decision-making in everyday contexts. This chapter reports the results of the analyses of the current situation and recent changes of HPS and NOS in the practice of science education, such as school science curriculum, science textbooks, preservice, and in-service teacher education for primary and secondary school science in Korea. In addition, based on the results, (...)
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  • Two Views About Explicitly Teaching Nature of Science.Richard A. Duschl & Richard Grandy - 2013 - Science & Education 22 (9):2109-2139.
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  • Science, Worldviews and Education: An Introduction.Michael R. Matthews - 2009 - Science & Education 18 (6-7):641-666.
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  • Putting Sociology First—Reconsidering the Role of the Social in ‘Nature of Science’ Education.Gábor Á Zemplén - 2009 - Science & Education 18 (5):525-559.
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