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Beautifully illustrated and engagingly written, Lectures on Quantum Mechanics presents theoretical physics with a breathtaking array of examples and anecdotes. Basdevant's style is clear and stimulating, in the manner of a brisk classroom lecture that students can follow with ease and enjoyment. Here is a sample of the book's style, from the opening of Chapter 1: "If one were to ask a passer-by to quote a great formula of physics, chances are that the answer would be 'E = mc2'. Nevertheless, the formula 'E=hV' which was written in the same year 1905 by the same Albert Einstein, and which started quantum theory, concerns their daily life considerably more. In fact, of the three watershed years for physics toward the beginning of the 20th century - 1905: the Special Relativity of Einstein, Lorentz and Poincaré; 1915: the General Relativity of Einstein, with its extraordinary reflections on gravitation, space and time; and 1925: the full development of Quantum Mechanics - it is surely the last which has the most profound implications for the development of science and technology. There is no way around it: all physics is quantum, from elementary particles, to stellar physics and the Big Bang, not to mention semiconductors and solar cells." A graduate of the Ecole Normale Superieure, Jean-Louis Basdevant is Professor and former Chair of the Department of Physics at the Ecole Polytechnique, and Director of Research for the CNRS. Specializing in the theoretical physics of elementary particles, quantum field theory and astrophysics, Prof. Basdevant works in the Leprince-Ringuet Laboratory at the Ecole Polytechnique.
Quantum theory. --- Quantum Physics. --- Quantum Information Technology, Spintronics. --- Elementary Particles, Quantum Field Theory. --- Particle and Nuclear Physics. --- Quantum dynamics --- Quantum mechanics --- Quantum physics --- Physics --- Mechanics --- Thermodynamics --- Quantum physics. --- Quantum computers. --- Spintronics. --- Elementary particles (Physics). --- Quantum field theory. --- Nuclear physics. --- Computers --- Atomic nuclei --- Atoms, Nuclei of --- Nucleus of the atom --- Relativistic quantum field theory --- Field theory (Physics) --- Quantum theory --- Relativity (Physics) --- Elementary particles (Physics) --- High energy physics --- Nuclear particles --- Nucleons --- Nuclear physics --- Fluxtronics --- Magnetoelectronics --- Spin electronics --- Spinelectronics --- Microelectronics --- Nanotechnology
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Quantum mechanics. Quantumfield theory --- Quantum theory. --- Théorie quantique --- Quantum theory --- 530.145 --- Quantum dynamics --- Quantum mechanics --- Quantum physics --- Physics --- Mechanics --- Thermodynamics --- 530.145 Quantum theory --- Théorie quantique
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Mechanics, Analytic --- Dynamics --- Variational principles --- Lagrangian functions --- Hamiltonian systems --- Mécanique analytique --- Dynamique --- Principes variationnels --- Lagrange, Fonctions de --- Systèmes hamiltoniens --- Mécanique analytique --- Systèmes hamiltoniens --- Variational principles. --- Mechanics, Analytic. --- Calculus of variations --- Calcul des variations --- Problèmes et exercices --- Principes variationnels. --- Mécanique analytique. --- Problèmes et exercices. --- Mécanique analytique. --- Problèmes et exercices.
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Toute la physique actuelle, du transistor à l'astrophysique, de l'énergie photovoltaïque à la physique des particules et aux interactions fondamentales contient une part prédominante de physique quantique. Une large fraction de la technologie moderne provient de processus et phénomènes quantiques.Le but de cet ouvrage est de donner les bases de cette théorie, tout en s'appuyant à chaque étape, sur des phénomènes caractéristiques de la physique moderne à l'aide d'un ensemble d'exercices, certains très simples, d'autre plus approfondis. Ces exemples proviennent de toutes les branches de la physique, de l'optique quantique à la physique du solide et aux particules élémentaires.Cette seconde édition, outre l'ajout de quelques exercices et problèmes complémentaires, intègre maintenant une section consacrée à la distribution de Dirac et une autre aux développements de l'information quantique.
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Optimization under constraints is an essential part of everyday life. Indeed, we routinely solve problems by striking a balance between contradictory interests, individual desires and material contingencies. This notion of equilibrium was dear to thinkers of the enlightenment, as illustrated by Montesquieu’s famous formulation: "In all magistracies, the greatness of the power must be compensated by the brevity of the duration." Astonishingly, natural laws are guided by a similar principle. Variational principles have proven to be surprisingly fertile. For example, Fermat used variational methods to demonstrate that light follows the fastest route from one point to another, an idea which came to be known as Fermat’s principle, a cornerstone of geometrical optics. Variational Principles in Physics explains variational principles and charts their use throughout modern physics. The heart of the book is devoted to the analytical mechanics of Lagrange and Hamilton, the basic tools of any physicist. Prof. Basdevant also offers simple but rich first impressions of Einstein’s General Relativity, Feynman’s Quantum Mechanics, and more revealing and amazing interconnections between various fields of physics. A graduate of the Ecole Normale Superieure, Jean-Louis Basdevant is Professor and former Chair of the Department of Physics at the Ecole Polytechnique, and Director of Research for the CNRS. Specializing in the theoretical physics of elementary particles, quantum field theory and astrophysics, Prof. Basdevant works in the Leprince-Ringuet Laboratory at the Ecole Polytechnique.
Variational principles. --- Mechanics, Analytic. --- Field theory (Physics) --- Lagrange equations. --- Hamilton-Jacobi equations. --- Principes variationnels --- Mécanique analytique --- Champs, Théorie des (Physique) --- Lagrange, Equations de --- Hamilton-Jacobi, Equations de --- EPUB-LIV-FT SPRINGER-B LIVPHYSI --- Mathematical physics. --- Mechanics. --- Mathematical optimization. --- Mechanics, applied. --- Mathematical Methods in Physics. --- Classical Mechanics. --- Calculus of Variations and Optimal Control; Optimization. --- Optimization. --- Theoretical and Applied Mechanics. --- History and Philosophical Foundations of Physics. --- Applied mechanics --- Engineering, Mechanical --- Engineering mathematics --- Optimization (Mathematics) --- Optimization techniques --- Optimization theory --- Systems optimization --- Mathematical analysis --- Maxima and minima --- Operations research --- Simulation methods --- System analysis --- Classical mechanics --- Newtonian mechanics --- Physics --- Dynamics --- Quantum theory --- Physical mathematics --- Mathematics --- Physics. --- Calculus of variations. --- Mechanics, Applied. --- Isoperimetrical problems --- Variations, Calculus of --- Natural philosophy --- Philosophy, Natural --- Physical sciences
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Nuclear energy --- Nuclear power plants --- Nuclear engineering --- Fukushima Nuclear Disaster, Japan, 2011 --- Nuclear reactor accidents --- Safety measures --- Accidents --- BPB1108 --- Japon --- Technologie nucléaire --- Sécurité nucléaire --- Nuclear reactors --- Nuclear accidents --- Atomic energy --- Atomic power --- Energy, Atomic --- Energy, Nuclear --- Nuclear power --- Power, Atomic --- Power, Nuclear --- Force and energy --- Nuclear physics --- Power resources --- Nuclear facilities --- Fukushima I Nuclear Disaster, Japan, 2011 --- Fukushima II Nuclear Disaster, Japan, 2011 --- Fukushima Accident, Japan, 2011 --- Fukushima Daiichi Nuclear Disaster, Japan, 2011 --- Fukushima Daini Nuclear Disaster, Japan, 2011 --- Fukushima Disaster, Japan, 2011 --- Fukushima Nuclear Accident, Japan, 2011 --- Tohoku Earthquake and Tsunami, Japan, 2011 --- proteção nuclear --- tuumajulgeolek --- nukleare Sicherung --- siguranță nucleară --- πυρηνική προστασία --- sigurtà nukleari --- jedrska zaščita --- nucleaire beveiliging --- jądrowe bezpieczeństwo fizyczne --- ydinturva --- slándáil núicléach --- nuklearna zaštita --- ядрена сигурност --- нуклеарна безбедност --- nuclear security --- branduolinis saugumas --- seguridad física nuclear --- kodoldrošība --- protezione nucleare --- fyzická ochrana jadrových materiálov a jadrových zariadení --- nukleáris védettség --- jaderné zabezpečení --- nuklear sikring --- nukleärt fysiskt skydd --- segurança nuclear extrínseca --- ядрена технология --- nukleáris technológia --- jadrová technológia --- technika jądrowa --- πυρηνική τεχνολογία --- tecnologia nucleare --- tuumatehnoloogia --- tecnologia nuclear --- kodoltehnoloģija --- nucleaire technologie --- teknoloġija nukleari --- atomteknologi --- нуклеарна технологија --- Kerntechnologie --- ydinteknologia --- nuklearna tehnologija --- tehnologie nucleară --- jaderná technologie --- branduolinė technologija --- teknologji bërthamore --- jedrska tehnologija --- tecnología nuclear --- nuclear technology --- kärnteknologi --- atomudstyr --- Ausrüstung für Kernkraftwerke --- urýchľovače častíc --- osakeste kiirendid --- acelerador de partículas --- ubrzivač čestica --- dalelių greitintuvas --- részecskegyorsító --- urychlovač částic --- daļiņu paātrinātāji --- acceleratore di particelle --- zařízení jaderných elektráren --- accélérateur de particules --- jaderná zařízení --- επιταχυντής σωματιδίων --- hiukkaskiihdytin --- particle accelerators --- Kerntechnik --- jaderná technika --- deeltjesversneller --- apparecchiatura nucleare --- ciclotrão --- partikelaccelerator --- атомска технологија --- Teilchenbeschleuniger --- accelerator de particule --- технологија на нуклеарна фисија --- përshpejtuesit grimcë --- Япония --- Japan --- Japán --- Ιαπωνία --- Japani --- Јапан --- Japāna --- Japonsko --- il-Ġappun --- Japonska --- Japón --- Japonia --- Giappone --- Jaapan --- Japão --- An tSeapáin --- Japonija --- Јапонија --- Japonské císařství --- Парламентарна Уставна Монархија Јапонија --- Nippon --- teicneolaíocht núicléach --- Nuclear energy - Safety measures --- Nuclear power plants - Accidents --- Nuclear engineering - Safety measures --- Sécurité nucléaire --- Technologie nucléaire
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La quatrième de couverture indique : "Cet ouvrage fait suite au cours d'Introduction à la physique quantique, rédigé par le même auteur. Il s'adresse aux étudiants en troisième année de Licence et en Master de physique ainsi qu'aux élèves des écoles d'ingénieurs. Il a pour but de décrire les applications importantes de la physique quantique en se focalisant principalement sur la physique atomique, la physique nucléaire et la physique des semiconducteurs. Pour tester la bonne assimilation du cours, chaque chapitre se termine par des exercices et des problèmes corrigés. Ces derniers, plus avancés et plus complets, sont de véritables cas concrets d'application portant sur des sujets d'actualité
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