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  1. The role of observables and non-observables in chemistry: A critique of chemical language. [REVIEW]Shant Shahbazian & Mansour Zahedi - 2006 - Foundations of Chemistry 8 (1):37-52.
    In this paper, aspects of observable and non-observable based models are discussed. A survey of recent literature was done to show how using non-observable-based language carelessly may cause disagreement, even in professional research programs and incorrect assertions, even in prestigious journals. The relation between physical measurements and observables is discussed and it is shown that, in contrast to general belief, this relation may be complicated and not always straightforward. The decomposition of the system into basic subsystems (physical or conceptual) is (...)
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  • Electron Charge Density: A Clue from Quantum Chemistry for Quantum Foundations.Charles T. Sebens - 2021 - Foundations of Physics 51 (4):1-39.
    Within quantum chemistry, the electron clouds that surround nuclei in atoms and molecules are sometimes treated as clouds of probability and sometimes as clouds of charge. These two roles, tracing back to Schrödinger and Born, are in tension with one another but are not incompatible. Schrödinger’s idea that the nucleus of an atom is surrounded by a spread-out electron charge density is supported by a variety of evidence from quantum chemistry, including two methods that are used to determine atomic and (...)
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  • Special theory of relativity in chemistry.Nenad Raos - 2022 - Foundations of Chemistry 24 (1):87-95.
    Application of Einstein special theory of relativity in chemistry seems to be superfluous; energies are too low. The average velocity of electron in hydrogen atom is 1/135 c, making its actual mass only 26,6 ppm bigger than the rest mass. However, for heavier elements relativistic effects have to be taken into account and, more, many phenomena cannot be explained without ascribing new mass to electrons, in accordance with Einstein theory. In this paper such phenomena are described: color of metallic gold (...)
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  • A Causal-Pluralist Metatheory of Observation.Osvaldo Pessoa - 2019 - Open Philosophy 2 (1):657-667.
    An extended definition of “observation” is developed in order to account for the usage in the physical sciences and in neuropsychology. An observation is initially defined as a perception that has a focus of attention and is guided by theoretical considerations. Since the focus may change, one adopts a pluralist position according to which the object of perception may involve any stage of the causal chain that leads to perception, such as the source of light or sound, the obstructions, the (...)
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  • Is a molecular orbital measurable by means of tomographic imaging?J. F. Ogilvie - 2011 - Foundations of Chemistry 13 (2):87-91.
    Interpretation of experiments involving use of vacuum ultraviolet radiation to effect ionization of N 2 in terms of measurements of a molecular orbital is erroneous.
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  • Two-step emergence: the quantum theory of atoms in molecules as a bridge between quantum mechanics and molecular chemistry.Chérif F. Matta, Olimpia Lombardi & Jesús Jaimes Arriaga - 2020 - Foundations of Chemistry 22 (1):107-129.
    By moving away from the traditional reductionist reading of the quantum theory of atoms in molecules, in this paper we analyze the role played by QTAIM in the relationship between molecular chemistry and quantum mechanics from an emergentist perspective. In particular, we show that such a relationship involves two steps: an intra-domain emergence and an inter-domain emergence. Intra-domain emergence, internal to quantum mechanics, results from the fact that the electron density, from which all the other QTAIM’s concepts are defined, arises (...)
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  • Acerca del status ontológico de las entidades químicas: el caso de los orbitales atómicos.Martín Labarca & Olimpia Lombardi - 2010 - Principia: An International Journal of Epistemology 14 (3):309-333.
    The aim of the present paper is to analyze the problem of the relationship between chemistry and physics, by focusing on the widely discussed case of the atomic orbitals. We will begin by remembering the difference between the physical and the chemical interpretation of the concept of orbital. Then, we will refer to the claim made in 1999 that atomic orbitals have been directly imaged for the first time. On this basis, we will analyze the problem from a new approach, (...)
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  • Teaching the Philosophical Interpretations of Quantum Mechanics and Quantum Chemistry Through Controversies.Andoni Garritz - 2013 - Science & Education 22 (7):1787-1807.
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  • Matters are not so clear on the physical side.Mario Castagnino - 2010 - Foundations of Chemistry 12 (2):159-166.
    According to ontological reductionism, molecular chemistry refers, at last, to the quantum ontology; therefore, the ontological commitments of chemistry turn out to be finally grounded on quantum mechanics. The main problem of this position is that nobody really knows what quantum ontology is. The purpose of this work is to argue that the confidence in the existence of the physical entities described by quantum mechanics does not take into account the interpretative problems of the theory: in the discussions about the (...)
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  • Rumos da Epistemologia v. 11.Luiz Dutra & Alexandre Meyer Luz (eds.) - 2011 - Núcleo de Epistemologia e Lógica.
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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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  • Philosophy of chemistry.Michael Weisberg, Paul Needham & Robin Hendry - 2011 - Stanford Encyclopedia of Philosophy.
    Chemistry is the study of the structure and transformation of matter. When Aristotle founded the field in the 4th century BCE, his conceptual grasp of the nature of matter was tailored to accommodate a relatively simple range of observable phenomena. In the 21st century, chemistry has become the largest scientific discipline, producing over half a million publications a year ranging from direct empirical investigations to substantial theoretical work. However, the specialized interest in the conceptual issues arising in chemistry, hereafter Philosophy (...)
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  • From Corpuscles to Elements: Chemical Ontologies from Van Helmont to Lavoisier.Marina Paola Banchetti-Robino - 2014 - In Lee McIntyre & Eric Scerri (eds.), Philosophy of Chemistry: Growth of a New Discipline. Springer. pp. 141-154.
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