LEADER 05855nam 22008295 450 001 9910254034203321 005 20200704084644.0 010 $a3-319-31450-5 024 7 $a10.1007/978-3-319-31450-1 035 $a(CKB)3710000000765468 035 $a(DE-He213)978-3-319-31450-1 035 $a(MiAaPQ)EBC4613315 035 $a(PPN)194512142 035 $a(EXLCZ)993710000000765468 100 $a20160726d2016 u| 0 101 0 $aeng 135 $aurnn|008mamaa 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aTwo-Dimensional Transition-Metal Dichalcogenides /$fby Alexander V. Kolobov, Junji Tominaga 205 $a1st ed. 2016. 210 1$aCham :$cSpringer International Publishing :$cImprint: Springer,$d2016. 215 $a1 online resource (XVII, 538 p. 378 illus., 292 illus. in color.) 225 1 $aSpringer Series in Materials Science,$x0933-033X ;$v239 311 $a3-319-31449-1 320 $aIncludes bibliographical references at the end of each chapters and index. 327 $aIntroduction -- Chemistry of Transition Metal Dichalcogenides -- Brief Review of Bulk TMDCs: Structure and Properties -- Fabrication of 2D TMDC -- Structure of Monolayer and Few-Layer TMDCs -- Band Structure of 2D TMDCs -- Raman Scattering Spectroscopy of 2D TMDCs -- Photoluminescence of 2D TMDC -- Excitons in 2D TMDCs -- Magnetism of 2D TMDCs -- Spin-Valley Coupling in 2D TMDCs -- Miscellaneous Phenomena -- Functionalization of 2D TMDCs -- TMDC Heterostructures -- Applications of 2D TMDCs. 330 $aThis book summarizes the current status of theoretical and experimental progress in 2 dimensional graphene-like monolayers and few-layers of transition metal dichalcogenides (TMDCs). Semiconducting monolayer TMDCs, due to the presence of a direct gap, significantly extend the potential of low-dimensional nanomaterials for applications in nanoelectronics and nano-optoelectronics as well as flexible nano-electronics with unprecedented possibilities to control the gap by external stimuli. Strong quantum confinement results in extremely high exciton binding energies which forms an interesting platform for both fundamental studies and device applications. Breaking of spatial inversion symmetry in monolayers results in strong spin-valley coupling potentially leading to their use in valleytronics. Starting with the basic chemistry of transition metals, the reader is introduced to the rich field of transition metal dichalcogenides. After a chapter on three dimensional crystals and a description of top-down and bottom-up fabrication methods of few-layer and single layer structures, the fascinating world of two-dimensional TMDCs structures is presented with their unique atomic, electronic, and magnetic properties. The book covers in detail particular features associated with decreased dimensionality such as stability and phase-transitions in monolayers, the appearance of a direct gap, large binding energy of 2D excitons and trions and their dynamics, Raman scattering associated with decreased dimensionality, extraordinarily strong light-matter interaction, layer-dependent photoluminescence properties, new physics associated with the destruction of the spatial inversion symmetry of the bulk phase, spin-orbit and spin-valley couplings. The book concludes with chapters on engineered heterostructures and device applications such as a monolayer MoS2 transistor. Considering the explosive interest in physics and applications of two-dimensional materials, this book is a valuable source of information for material scientists and engineers working in the field as well as for the graduate students majoring in materials science. 410 0$aSpringer Series in Materials Science,$x0933-033X ;$v239 606 $aOptical materials 606 $aElectronic materials 606 $aSurfaces (Physics) 606 $aInterfaces (Physical sciences) 606 $aThin films 606 $aNanotechnology 606 $aNanoscale science 606 $aNanoscience 606 $aNanostructures 606 $aMicrowaves 606 $aOptical engineering 606 $aOptical and Electronic Materials$3https://scigraph.springernature.com/ontologies/product-market-codes/Z12000 606 $aSurface and Interface Science, Thin Films$3https://scigraph.springernature.com/ontologies/product-market-codes/P25160 606 $aNanotechnology and Microengineering$3https://scigraph.springernature.com/ontologies/product-market-codes/T18000 606 $aNanoscale Science and Technology$3https://scigraph.springernature.com/ontologies/product-market-codes/P25140 606 $aMicrowaves, RF and Optical Engineering$3https://scigraph.springernature.com/ontologies/product-market-codes/T24019 615 0$aOptical materials. 615 0$aElectronic materials. 615 0$aSurfaces (Physics). 615 0$aInterfaces (Physical sciences). 615 0$aThin films. 615 0$aNanotechnology. 615 0$aNanoscale science. 615 0$aNanoscience. 615 0$aNanostructures. 615 0$aMicrowaves. 615 0$aOptical engineering. 615 14$aOptical and Electronic Materials. 615 24$aSurface and Interface Science, Thin Films. 615 24$aNanotechnology and Microengineering. 615 24$aNanoscale Science and Technology. 615 24$aMicrowaves, RF and Optical Engineering. 676 $a546.72 700 $aKolobov$b Alexander V$4aut$4http://id.loc.gov/vocabulary/relators/aut$0866156 702 $aTominaga$b Junji$4aut$4http://id.loc.gov/vocabulary/relators/aut 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910254034203321 996 $aTwo-Dimensional Transition-Metal Dichalcogenides$92508532 997 $aUNINA