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== '''[[Moral responsibility]]''' ==
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'''Moral responsibility''' is an assignment of a duty or obligation to behave in a 'good' manner and refrain from behaving in a 'bad' manner. From a philosophical standpoint, the rationale behind 'good' and 'bad' is a subject for [[ethics]]<ref name=Shoemaker/> and [[metaethics]].<ref name=SayreMcCord/> Stent provides four conditions for assigning moral responsibility, among them the "duties and obligations devolving from moral, legal, or ritual imperatives".<ref name=Stent/> In everyday life, obligation in this context is distinguished in part from milder demands for conformity like etiquette by the intense and insistent social pressure brought to bear upon those who deviate or threaten to deviate.<ref name=Hart0/> From an anthropological or sociological standpoint, the specifics of what is 'good' or 'bad', and the ways of enforcing acceptable behavior, vary considerably from one group to another.<ref name=Kleinman/>
==Footnotes==
:"Social learning theorists...feel that the learning of moral rules is not culturally invariant, but is, rather, critically related to particular learning environments and to the distinctive normative code of the society in question. The major influences on moral development are what B.F. Skinner calls "contingencies of reinforcement"...culturally variable factors that explain why different peoples acquire different types of moral orientations."
 
'Moral responsibility' is part of the interplay between the individual and their society, and study of this relationship is both a scientific and a philosophical investigation.<ref name=Kendler/><ref name=Morgan/>
:"The study of ethics is concerned not only with identification of societal values but with thinking logically about ethical challenges and developing practical approaches to moral problem solving. Other disciplines also are concerned with discovering society's moral precepts. For example, sociology and anthropology each study cultural norms."<ref name=Carper/>
 
A large part of the philosophical discussion of 'moral responsibility' is focused upon the logical implications (as distinct from the ascertainable facts, such as they may be) of whether or not humans actually are able to control their actions to some or another extent.<ref name=Vargas/><ref name=Cane0/> Resolution of that issue is the philosophical subject of [[free will]], a continuing debate that began millennia ago and seems destined to continue indefinitely. It is known that humans' control over their actions is limited in some circumstances, and there is debate over the role of moral responsibility where there is only curtailed agency.
 
''[[Moral responsibility|.... (read more)]]''
 
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Latest revision as of 10:19, 11 September 2020

In computational molecular physics and solid state physics, the Born-Oppenheimer approximation is used to separate the quantum mechanical motion of the electrons from the motion of the nuclei. The method relies on the large mass ratio of electrons and nuclei. For instance the lightest nucleus, the hydrogen nucleus, is already 1836 times heavier than an electron. The method is named after Max Born and Robert Oppenheimer[1], who proposed it in 1927.

Rationale

The computation of the energy and wave function of an average-size molecule is a formidable task that is alleviated by the Born-Oppenheimer (BO) approximation.The BO approximation makes it possible to compute the wave function in two less formidable, consecutive, steps. This approximation was proposed in the early days of quantum mechanics by Born and Oppenheimer (1927) and is indispensable in quantum chemistry and ubiquitous in large parts of computational physics.

In the first step of the BO approximation the electronic Schrödinger equation is solved, yielding a wave function depending on electrons only. For benzene this wave function depends on 126 electronic coordinates. During this solution the nuclei are fixed in a certain configuration, very often the equilibrium configuration. If the effects of the quantum mechanical nuclear motion are to be studied, for instance because a vibrational spectrum is required, this electronic computation must be repeated for many different nuclear configurations. The set of electronic energies thus computed becomes a function of the nuclear coordinates. In the second step of the BO approximation this function serves as a potential in a Schrödinger equation containing only the nuclei—for benzene an equation in 36 variables.

The success of the BO approximation is due to the high ratio between nuclear and electronic masses. The approximation is an important tool of quantum chemistry, without it only the lightest molecule, H2, could be handled; all computations of molecular wave functions for larger molecules make use of it. Even in the cases where the BO approximation breaks down, it is used as a point of departure for the computations.

Historical note

The Born-Oppenheimer approximation is named after M. Born and R. Oppenheimer who wrote a paper [Annalen der Physik, vol. 84, pp. 457-484 (1927)] entitled: Zur Quantentheorie der Molekeln (On the Quantum Theory of Molecules). This paper describes the separation of electronic motion, nuclear vibrations, and molecular rotation. A reader of this paper who expects to find clearly delineated the BO approximation—as it is explained above and in most modern textbooks—will be disappointed. The presentation of the BO approximation is well hidden in Taylor expansions (in terms of internal and external nuclear coordinates) of (i) electronic wave functions, (ii) potential energy surfaces and (iii) nuclear kinetic energy terms. Internal coordinates are the relative positions of the nuclei in the molecular equilibrium and their displacements (vibrations) from equilibrium. External coordinates are the position of the center of mass and the orientation of the molecule. The Taylor expansions complicate the theory tremendously and make the derivations very hard to follow. Moreover, knowing that the proper separation of vibrations and rotations was not achieved in this work, but only eight years later [by C. Eckart, Physical Review, vol. 46, pp. 383-387 (1935)] (see Eckart conditions), chemists and molecular physicists are not very much motivated to invest much effort into understanding the work by Born and Oppenheimer, however famous it may be. Although the article still collects many citations each year, it is safe to say that it is not read anymore, except maybe by historians of science.

Footnotes

  1. Wikipedia has an article about Robert Oppenheimer.