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                    | Ðåçóëüòàò ïîèñêà |  
                    | Ïîèñê êíèã, ñîäåðæàùèõ: Schroedinger equation
 
 | Êíèãà | Ñòðàíèöû äëÿ ïîèñêà |  | Taylor M.E. — Partial Differential Equations. Basic theory (vol. 1) | 465 |  | Andrews G., Askey R., Roy R. — Special Functions | 199 |  | Smith M.B., March J. — March's Advanced Organic Chemistry: Reactions, Mechanisms, and Structure | 3 |  | Carey F.A. — Organic Chemistry | see “Wave equation” |  | Morse P., Feshbach H. — Methods of Theoretical Physics (part 1) | 1638—1745 |  | Morse P., Feshbach H. — Methods of Theoretical Physics (part 2) | 1638—1745 |  | Berger M. — A Panoramic View of Riemannian Geometry | 79, 400, 405, 525 |  | Felsager B. — Geometry, particles and fields | 32 |  | Nayfeh A.H. — Perturbation Methods | 56, 71, 160, 339, 342, 344, 346 |  | Goldstein H., Poole C., Safko J. — Classical mechanics | 54, 584, 599 |  | Parr R., Yang W. — Density-functional theory of atoms and molecules | 3 |  | Nayfeh A.H., Mook D.T. — Nonlinear Oscillations | 37, 584—588 |  | Murdock J. — Perturbations: Theory and Methods | 437 |  | Dittrich W., Reuter M. — Classical and quantum dynamics | 220 |  | Landsman N.P. — Mathematical topics between classical and quantum mechanics | 74 |  | Pedlosky J. — Waves in the ocean and atmosphere: introduction to wave dynamics | 199 |  | Opechowski W. — Crystallographic and metacrystallographic groups | 522 |  | Mukamel S. — Principles of Nonlinear Optical Spectroscopy | 23, 35, 51, 54, 57 |  | Debnath L. — Nonlinear water waves | 175, 307, 344 |  | Liddle A., Lyth D.H. — Cosmological Inflation and Large-Scale Structure | 169 |  | Pugovecki E. — Quantum mechanics in hilbert space | 3, 46, 48, 122, 332, 56\36 |  | Clarke L.J. — Surface crystallography: an introduction to low energy electron diffraction | 127, 129, 136 |  | Ryder L.H. — Quantum Field Theory | 28 |  | Prugovecki E. — Quantum Mechanics in Hilbert Space | 3, 46, 48, 122, 332 |  | Robert A. — Non-Standard Analysis | 10.3.1 |  | Allouche J.-P., Shallit J. — Automatic Sequences: Theory, Applications, Generalizations | 467, 468 |  | Ablowitz M.J., Fokas A.S. — Complex Variables: Introduction and Applications | 411, 474, 609 |  | Chung K.L., Walsh J.B. — Markov Processes, Brownian Motion, and Time Symmetry | 202 |  | Harrison W.A. — Elementary electronic structure | 4 |  | Lounesto P., Hitchin N.J. (Ed), Cassels J.W. (Ed) — Clifford Algebras and Spinors | 50 |  | Naber G.L. — Topology, Geometry and Gauge Fields | 76 |  | Balescu R. — Equilibrium and nonequilibrium statistical mechanics | 23 |  | Egorov Y.U. (Ed), Gamkrelidze R.V. (Ed) — Partial Differential Equations I: Foundations of the Classical Theory | 16, 186 |  | Baez J.C., Segal I.E., Zhou Z. — Introduction to algebraic and constructive quantum field theory | 155 |  | Rammer J. — Quantum transport theory | 2, 12, 21, 23 |  | Altmann S.L. — Band Theory of Solids: An Introduction from the Point of View of Symmetry | 9 (1—3.1) |  | Dorlas T.C. — Statistical mechanics, fundamentals and model solutions | 239, 241 |  | Domb C., Lebowitz J.L. — Phase Transitions  and  Critical Phenomena (Vol. 19) | 5, 19, 21, 315 |  | Ito K. — Encyclopedic Dictionary of Mathematics | 351.D |  | Galindo A., Pascual P. — Quantum Mechanics Two | I 25, 26, 68 |  | Polkinghorne J.C. — The quantum world | 13, 30, 60, 64ff, 84ff, 96 |  | Brown L.S. — Quantum Field Theory | 4 |  | Mukamel S. — Principles of nonlinear spectroscopy | 23, 35, 51, 54, 57 |  | DeWitt B.S. — The global approach to quantum field theory (Vol. 1) | 192ff |  | Ablowitz M.J., Segur H. — Solitons and the Inverse Scattering Transform | 7, 9—13, 15, 26—28, 31, 33, 38, 46, 51—53, 58, 59, 68, 75, 89, 115, 134, 139, 216, 221, 357 (see also “Nonlinear Schroedinger equation”) |  | Guimaraes A.P. — Magnetism and Magnetic Resonance in Solids | 29—30, 63, 82 |  | van Eijndhoven S.J.L., de Greef J. — Trajectory Spaces, Generalized Functions and Llnbounded Operators | 195 |  | Fishbane P.M. — Physics For Scientists and Engineers with Modern Physics | 1144 |  | van de Hulst H.C. — Light Scattering by Small Particles | 208 |  | Audretsch J. — Entangled World: The Fascination of Quantum Information and Computation | 22, 205, 230 |  | Prigogine I. — Nonequilibrium statistical mechanics | 16, 19, 32 |  | Nagaosa N. — Quantum field theory in condensed matter physics | 1 |  | Hilborn R.C. — Chaos and nonlinear dynamics | 494—496 |  | Heitler W. — Elementary Wave Mechanics With Applications to Quantum Chemistry | see “Wave equation” |  | Bube R.H. — Electronic Properties of Crystalline Solids: An Introduction to Fundamentals | 23—26 |  | Seitz F. — Modern Theory of Solids | 198ff. |  | Held A. (ed.) — General relativity and gravitation. 100 years after the birth of Albert Einstein (volume 1) | 281 |  | Held A. (ed.) — General Relativity and Gravitation: One Hundred Years After the Birth of Albert Einstein, Vol. 2 | 281 |  | Kubo R. — Statistical Mechanics: An Advanced Course with Problems and Solutions | 28, 68 |  | Galindo A., Pascual P. — Quantum Mechanics One | 25, 26, 68 |  | Visser M. — Lorentzian wormholes. From Einstein to Hawking | 356 |  | Guillemin V. — Geometric Asymptotics (Mathematical Surveys and Monographs Number 14) | 244 |  | Lee T.D. — Practicle physics and introduction to field theory | 63 |  | Englert B.G. (Ed) — Quantum Mechanics | 29, 201 |  | Callaghan P. — Principles of Nuclear Magnetic Resonance Microscopy | 31 |  | Elze H.-T. (ed.) — Decoherence and entropy in complex systems | 11, 38, 45, 120, 144, 167, 207, 240 |  | Allen H.C., Cross P.C. — Molecular Vib-Rotors: the Theory and Interpretation of High Resolution Infrared Spectra | 2 |  | Beltrametti E.G., Cassinelli G. — The Logic of Quantum Mechanics (Encyclopedia of Mathematics and Its Applications - Vol 15) | 55—56 |  | Bube R.H. — Photoconductivity of Solids | 20, 21, 24 |  | Bjorken J.D., Drell S.D. — Relativistic Quantum Fields | 44—45, 52 |  | Miller W. — Symmetry Groups and Their Applications | 65, 109, 253 |  | Perkins D.H. — Particle Astrophysics | 176 |  | Bernstein R.B. — Atom-Molecule Collision Theory: Guide for the Experimentalist | 1, 5 |  | Egorov Y.V., Shubin M.A. — Partial Differential  Equations I  (Foundations of the Classical) | 16, 186 |  | Olver P.J., Shakiban C. — Applied linear. algebra | 169 |  | Israelachvili J.N. — Intermolecular and surface forces | 11 |  | Economou E.N. — Green's Functions in Quantum Physics | 41, 43, 44, 46, 52, 58, 69, 75, 158, 159, 251, 348 |  | Greiner W. — Quantum mechanics: special chapters | 99 |  | Zory P.S. — Quantum well lasers | see “Effective mass equation”, 19 |  | Greiner W., Mueller B. — Quantum mechanics: symmetries | 46 |  | Bertlmann R.A. — Anomalies in Quantum Field Theory | 119—120 |  | Adachi S. — Physical Properties of  III-V Semiconductor  Compounds  InP, InAs, GaAs, GaP, InGaAs, and  InGaAsP | 290 |  | Bogaevski V.T., Povzner A. — Algebraic Methods In Nonlinear Perturbation Theory | 233, 244 |  | Estrada R., Kanwal R.P. — A distributional approach to asymptotics theory and applications | 428 |  | van der Giessen E., Wu Theodore Y.-T. — Advances in Applied Mechanics, Volume 37 | 73 |  | Steeb W.-H. — Problems and Solutions in theoretical and mathematical physics. Volume 1. Introductory level | 138 |  | Adler S.L. — Quantum theory as emergent phenomenon | 17 |  | Accardi L., Lu Y.G., Volovich I. — Quantum Theory and Its Stochastic Limit | 4 |  | Bayin S.S. — Mathematical Methods in Science and Engineering | 10, 43 |  | Woodhouse N.M.J. — Geometric quantization | 201 |  | Mariot A. — Group Theory and Solid State Physics | see also "Ritz method" |  | Anisimov S.I., Khokhlov V.A. — Instabilities in Laser-matter interaction | 27, 84 |  | Eliezer Sh., Ghatak A., Hora H. — Fundamentals of Equations of State | 28, 42, 76, 321 |  | Holden H., Oksendal B. — STOCHASTIC PARTIAL DIFFERENTIAL EQUATIONS | 9, 150 |  | Fordy A.P., Wood J.C. (eds.) — Harmonic maps and integrable systems | 12 |  | Azaroff L.V. — Introduction to Solids | 205, 223, 238 |  | Riley, Hobson — Mathematical Methods for Physics and Engineering | 612 |  | Jones H. — Theory of Brillouin Zones and Electronic States in Crystals | 4 |  | Barnett S.M., Radmore P.M. — Methods in Theoretical Quantum Optics | 5, 6, 16, 25, 131 |  | Mandel L., Wolf E. — Optical Coherence and Quantum Optics | 440, 602, 684 |  | D'Eath P.D. — Supersymmetric quantum cosmology | 35, 36, 39, 60, 78, 79 |  | Mayer J.E., Goeppert Mayer M. — Statistical mechanics | 43 |  | Choquet-Bruhat Y., DeWitt-Morette C., Dillard-Bleick M. — Analysis, manifolds and physics. Part I. | 528 |  | Volkmer H. — Multiparameter Eigenvalue Problems And Expansion Theorems | 137 |  | Wheeler J.A. — Topics of modern physics. Vol. I. Geometrodynamics | 85 |  | Puri P.R. — Mathematical methods of quantum optics | 13 |  | Roepstorf G. — Path integral approach to quantum physics | 15 |  | Murdock J.A. — Perturbations: Theory and Methods (Classics in Applied Mathematics) | 437 |  | Meijer P.H.E. — Group Theory: The Application to Quantum Mechanics | 33, 110 |  | Morse P.M. — Methods of theoretical physics | 1638—1745 |  | Bethe H., de Hoffmann F. — Mesons and fields. Volume 2. Mesons | 200, 201, 205, 206, 217, 249, 302, 306, 3081 |  | Esposito G. — Dirac Operators and Spectral Geometry | 2, 143 |  | Bornemann F. — Homogenization in Time of Singularly Perturbed Mechanical Systems (Lecture Notes in Mathematics, 1687) | 84 |  | McQuarrie D.A. — Statistical Mechanics | 9 |  | Greiner W., Reinhardt J. — Field quantization | 20, 57, 59, 339, 345 |  | Saito Y. — Statistical physics of crystal growth | 150 |  | Schreiber E. — Femtosecond real-time spectroscopy of small molecules and clusters | 41, 47 |  | Atkins P.W., Friedman R.S. — Molecular Quantum Mechanics | 19 |  | Hobbie R., Roth B. — Intermediate Physics for Medicine and Biology, | 49 |  | Brenner P. — Besov Spaces And Applications To Difference Methods For Initial Value Problems | 53, 132 |  | Neuenschwander D. — Probabilistic and Statistical Methods in Cryptology: An Introduction by Selected Topics | 39 |  | Kanwal R.P. — Linear Integral Equations: Theory and Techniques | 131 |  | Goldsmid J., Drabble H. — Thermal Conduction in Semiconductors | 37, 39—44 |  | Naber G.L. — Topology, Geometry and Gauge Fields | 76 |  | Chung K.L., Walsh J.B — Markov Processes, Brownian Motion, and Time Symmetry | 202 |  | Cvitanovic P., Artuso R., Dahlqvist P. — Classical and quantum chaos | 480 |  | Gaspard P. (ed.), Burghardt I. (ed.) — Advances in CHEMICAL PHYSICS. Volume 101: Chemical Reactions and Their Control on the Femtosecond Time Scale XXth Solvay Conference on Chemistry | 231—232, 686—687 |  | Sattler K.D. — Handbook of Nanophysics: Functional Nanomaterials | 18-18, 20-2, 20-5, 26-11 |  | Moriyasu K. — An Elementary Primer for Gauge Theory | 17 |  | Veselic I. — Integrated density of states and Wegner estimates for random Schrodinger operators | 7 |  | Zeidler E. — Applied Functional Analysis: Applications to Mathematical Physics | 323, 336, 338, 381, 395 |  | Ashby N., Miller S.C. — Principles of modern physics | 166, 167 |  | Greiner W. — Relativistic quantum mechanics. Wave equations | 4 |  | Borówko M. (ed.) — Computational Methods in Surface and Colloid Science | 117, 485 |  | Boyd R.W. — Nonlinear Optics | 131, 144, 148, 239, 284, 523 |  | Kruegel E. — The Physics of Interstellar Dust | 178ff, 193, 199ff, 214 |  | Greiner W., Neise L., Stocker H. — Thermodynamics and statistical mechanics | 268 |  | Miller W. — Symmetry and Separation of Variables | 73, 121, 145, 157 |  | Bates D.R. — Quantum Theory. I. Elements | 38, 82 |  | Barut A.O. — Electrodynamics and Classical Theory of Fields and Particles | 211 |  | Hartmann A.K., Rieger H. — Optimization Algorithms in Physics | 172 |  | Zeidler E. — Oxford User's Guide to Mathematics | 506, 924 |  | Williams C.P., Clearwater S.H. — Explorations in quantum computing | 61, 62, 63, 71, 74, 78, 84, 89, 90, 95, 214, 224 |  | Visconti A. — Quantum field theory. Volume 1 | 26 |  | Lemm J.C. — Bayesian field theory | 115 |  | Pier J.-P. — Mathematical Analysis during the 20th Century | 233 |  | Brown L., Dresden M., Hoddeson L. — Pions to quarks: Particle physics in the 1950s | 561 |  | Murray J.D. — Asymptotic Analysis | 127 |  | Berman G.P., Doolen G.D., Mainieri R. — Intnoduction to Quantum Computers | 69 |  | Hassani S. — Mathematical Methods: for Students of Physics and Related Fields | 543, 546, 666—680 |  | Sakurai J.J. — Modern quantum mechanics | 56, 71—73, 126, 129, 138, 181, 281, 299, 366, 406, 424, 425, 435 |  | Constantinescu F., Magyari E. — Problems in quantum mechanics | 20 |  | Binder K., Heermann D.W. — Monte Carlo Simulation in Statistical Physics | 137, 158 |  | Hume-Rothery W. — Electrons, Atoms, Metals and Alloys | 60, 66, 149 |  | Held A. (ed.) — General relativity and gravitation. 100 years after the birth of Albert Einstein (volume 2) | 406 |  | Braginsky V.B., Khalili F.Ya. — Quantum measurement | 18 |  | Attwood S.S. — Electric and Magnetic Fields | 454 |  | Bohm-Vitense E. — Introduction to Stellar Astrophysics: Volume 3 | 90 |  | Rodberg L.S., Thaler R.M. — Introduction to the quantum theory of scattering | 1, 172, 328 |  | Simeone C. — Deparametrization and Path Integral Quantization of Cosmological Models | 14, 91, 93, 97, 99, 100, 102, 103 |  | Haus H.A. — Waves and Fields in Optoelectronics | 160 |  | Crisanti A., Paladin G., Vulpiani A. — Products of random matrices in statistical physics | 88, 118 |  | Glimm J., Jaffe A. — Quantum Physics: A Functional Integral Point of View | 7, 8 |  | Prikarpatsky A.K., Taneri U., Bogolubov N.N. — Quantum field theory with application to quantum nonlinear optics | 16 |  | Breuer H.-P., Petruccione F. — The Theory of Open Quantum Systems | 110 |  | Farina J.E.G. — Quantum theory of scattering processes | 5, 7, 70, 112 |  | Zory P.S. (ed.), Kelley P. (ed.), Liao P.F. (ed.) — Quantum Well Lasers | 19, see "Effective mass equation" |  | Suter D. — The physics of laser-atom interactions | 44—45, 52, 54, 60, 84, 120, 128—131, 150 |  | Shu-Ang Zhou — Electrodynamics of solids and microwave superconductivity | 304, 330 |  | Bernard L. Cohen — Concepts of Nuclear Physics | 25, 44, 91 |  | Lambert J.B., Mazzola E.P. — Nuclear Magnetic Resonance Spectroscopy | 302—303 |  | Greiner W., Maruhn J. — Nuclear models | 2, 238 |  | Ehrenberg W. — Electric Conduction in Semiconductors and Metals | 86, 88, 105, 154 |  | Kane G.L. — Modern elementary particle physics | 3, 22, 37 |  | Krane K.S. — Introductory nuclear physics | 12 |  | Mackey G. — Unitary Group Representations in Physics, Probability and Number Theory | 169, 210, 211 |  | Tipler F.J. — The Physics of Immortality | 191 |  | Blin-Stoyle R.J. — Eureka! Physics of particles, matter and the universe | 76, 114 |  | Kaiser G. — Quantum physics, relativity, and complex spacetime: Towards a new synthesis | 169 |  | Stakgold I. — Boundary value problems of mathematical physics | 322 |  | Fetter A.L., Walecka J.D. — Quantum theory of many-particle systems | 4, 54, 509, 572 |  | Mathews J., Walker R.L. — Mathematical Methods of Physics | 218 |  | Wester M.J. — Computer Algebra Systems: A Practical Guide | 213 |  | Plischke M., Bergersen B. — Equilibrium statistical physics | 330, 343 |  | Lilley J.S. — Nuclear physics: principles and applications | 10, 329 |  | Kalckar J. — Foundations of Quantum Physics I  (1926 - 1932), Volume 6 | 9, 70, 96, 126, 128, 154, 172, 264, 287, see also "Wave equation" |  | Aharonov Y., Rohrlich D. — Quantum Paradoxes: Quantum Theory for the Perplexed | 8, 47, 72, 95 |  | D'Angelo J.P. — Inequalities from Complex Analysis (Carus Mathematical Monographs) | 59 |  | H. Fehske, R. Schneider, A. Weile — Computational Many-Particle Physics | 50, 255, 566, 637 | 
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