LEADER 05304nam 2200673Ia 450 001 9910841219603321 005 20230801222653.0 010 $a1-283-64401-0 010 $a3-527-64649-3 010 $a3-527-64646-9 010 $a3-527-64648-5 035 $a(CKB)2670000000179026 035 $a(EBL)896060 035 $a(OCoLC)792684785 035 $a(SSID)ssj0000661976 035 $a(PQKBManifestationID)11434583 035 $a(PQKBTitleCode)TC0000661976 035 $a(PQKBWorkID)10721111 035 $a(PQKB)10591147 035 $a(MiAaPQ)EBC896060 035 $a(EXLCZ)992670000000179026 100 $a20120611d2012 uy 0 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 00$aDynamics at solid state surfaces and interfaces$hVolume 2$iFundamentals /$fedited by Uwe Bovensiepen, Hrvoje Petek, Martin Wolf 210 $aWeinheim $cWiley-VCH$dc2012 215 $a1 online resource (273 p.) 300 $aDescription based upon print version of record. 311 $a3-527-40924-6 320 $aIncludes bibliographical references and index. 327 $aDynamics at Solid State Surfaces and Interfaces; Contents; Preface; List of Contributors; Colour Plates; 1 The Electronic Structure of Solids; 1.1 Single-Electron Approximation; 1.1.1 The Drude Model of the Free Electron Gas; 1.1.2 The Electronic Band Structure: Metals, Insulators, and Semiconductors; 1.2 From Bloch Theory to Band Structure Calculations; 1.2.1 Bloch Theory; 1.2.2 The Tight Binding Approach to the Solid; 1.2.3 Band Structure Calculations; 1.3 Beyond the Band Picture; 1.3.1 Mott's Hydrogen Solid; 1.3.2 Mott Insulators in Nature; 1.4 Electronic Structure of Correlated Materials 327 $a1.4.1 The Hubbard Model1.4.2 Dynamical Mean Field Theory; 1.4.3 Electronic Structure Calculations; 1.4.4 Ordered States; 1.4.5 Cooperation Between Lattice Instabilities and Electronic Correlations: The Example of Vanadium Dioxide; References; 2 Quasi-Particles and Collective Excitations; 2.1 Introduction; 2.2 Quasi-Particles; 2.2.1 Electrons and Holes; 2.2.2 Phonons; 2.2.2.1 Adiabatic Approximation; 2.2.2.2 Harmonic Approximation; 2.2.2.3 Lattice Dynamics; 2.2.2.4 Phonons at Surfaces; 2.2.3 Electron-Phonon Coupling in Metals; 2.2.4 Excitons: Electron-Hole Pairs in Semiconductor Quantum Wells 327 $a2.2.4.1 Microscopic Theory2.2.4.2 Excitonic Resonances and Populations; 2.2.4.3 Terahertz Spectroscopy of Exciton Populations; 2.2.4.4 Excitonic Signatures in the Photoluminescence; 2.2.5 Polarons: Electron-Phonon Coupling in Polar and Ionic Solids; 2.3 Collective Excitations; 2.3.1 Plasmons: Electron Density Oscillations; 2.3.1.1 Surface Plasmons; 2.3.1.2 Acoustic Surface Plasmons; 2.3.2 Magnons: Elementary Excitations in Ferromagnetic Materials; 2.3.2.1 Spin Waves in the Heisenberg Model; 2.3.2.2 Itinerant Electrons; 2.3.2.3 Conclusions 327 $a2.4 Experimental Access to Quasi-Particle and Collective Excitations2.4.1 Coherent Phonons; 2.4.1.1 Coherent Optical Phonons; 2.4.1.2 Coherent Acoustic Phonons; 2.4.2 High-Resolution Angle-Resolved Photoemission; 2.4.2.1 Photoemission Spectral Function of Quasi-Particles; 2.4.2.2 Experimental Considerations for Photoelectron Spectroscopy; 2.4.2.3 Quasi-Particles from Electron-Phonon Interaction; 2.4.2.4 Quasi-Particles from Electron-Magnon Interaction; 2.4.2.5 Conclusions and Implications; 2.4.3 Time-Resolved Photoelectron Spectroscopy; 2.4.3.1 Experiment; 2.4.3.2 Electron Lifetimes 327 $a2.4.3.3 Electron-Phonon Coupling2.4.3.4 Surface Exciton Formation; 2.4.3.5 Magnon Emission; 2.4.3.6 Magnon-Phonon Interaction; 2.5 Summary; References; 3 Surface States and Adsorbate-Induced Electronic Structure; 3.1 Intrinsic Surface States; 3.1.1 Basic Concepts of Surface States; 3.1.2 Scattering Model of Surface States; 3.2 Crystal-Induced Surface States; 3.2.1 Tamm and Shockley Surface States; 3.2.2 Dangling Bond States; 3.3 Barrier-Induced Surface States; 3.3.1 Image Potential States; 3.3.2 Quantum Well States; 3.4 Experimental Methods; 3.4.1 Photoemission; 3.4.2 Two-Photon Photoemission 327 $a3.4.3 Scanning Tunneling Methods 330 $aThis two-volume work covers ultrafast structural and electronic dynamics of elementary processes at solid surfaces and interfaces, presenting the current status of photoinduced processes. Providing valuable introductory information for newcomers to this booming field of research, it investigates concepts and experiments, femtosecond and attosecond time-resolved methods, as well as frequency domain techniques.The whole is rounded off by a look at future developments. 606 $aSolids$xSurfaces 606 $aSurfaces (Physics) 606 $aElectrodynamics 606 $aStructural dynamics 615 0$aSolids$xSurfaces. 615 0$aSurfaces (Physics) 615 0$aElectrodynamics. 615 0$aStructural dynamics. 676 $a530.417 701 $aBovensiepen$b Uwe$01731089 701 $aPetek$b Hrvoje$01731090 701 $aWolf$b Martin$0296671 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910841219603321 996 $aDynamics at solid state surfaces and interfaces$94143342 997 $aUNINA