000 03860nam a22005175i 4500
001 978-3-642-28424-3
003 DE-He213
005 20140220082846.0
007 cr nn 008mamaa
008 120914s2013 gw | s |||| 0|eng d
020 _a9783642284243
_9978-3-642-28424-3
024 7 _a10.1007/978-3-642-28424-3
_2doi
050 4 _aQC176.8.N35
050 4 _aT174.7
072 7 _aTBN
_2bicssc
072 7 _aSCI050000
_2bisacsh
082 0 4 _a620.5
_223
100 1 _aÜnlü, Hilmi.
_eeditor.
245 1 0 _aLow Dimensional Semiconductor Structures
_h[electronic resource] :
_bCharacterization, Modeling and Applications /
_cedited by Hilmi Ünlü, Norman J. M. Horing.
264 1 _aBerlin, Heidelberg :
_bSpringer Berlin Heidelberg :
_bImprint: Springer,
_c2013.
300 _aXIV, 162 p. 86 illus., 39 illus. in color.
_bonline resource.
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bc
_2rdamedia
338 _aonline resource
_bcr
_2rdacarrier
347 _atext file
_bPDF
_2rda
490 1 _aNanoScience and Technology,
_x1434-4904
505 0 _aAdvances in Low Dimensional Semiconductor Structures -- Modeling of Low Dimensional Semiconductors -- Graphene: Properties and Theory.-  Functionalization of Graphene Nanoribbons -- Atom/Molecule Van Der Waals Interaction with Graphene -- Optical Studies of Semiconductor Quantum Dots -- Friedel Sum Rule in One- And Quasi-One-Dimensional Wires -- Effects of Temperature on The Scattering Phases and Density of States in Quantum Wires.
520 _aStarting with the first transistor in 1949, the world has experienced a technological revolution which has permeated most aspects of modern life, particularly over the last generation. Yet another such revolution looms up before us with the newly developed capability to control matter on the nanometer scale. A truly extraordinary research effort, by scientists, engineers, technologists of all disciplines, in nations large and small throughout the world, is directed and vigorously pressed to develop a full understanding of the properties of matter at the nanoscale and its possible applications, to bring to fruition the promise of nanostructures to introduce a new generation of electronic and optical devices. The physics of low dimensional semiconductor structures, including heterostructures, superlattices, quantum wells, wires and dots is reviewed and their modeling is discussed in detail. The truly exceptional material, Graphene, is reviewed; its functionalization and Van der Waals interactions are included here. Recent research on optical studies of quantum dots and on the physical properties of one-dimensional quantum wires is also reported. Chapters on fabrication of nanowire – based nanogap devices by the dielectrophoretic assembly approach. The broad spectrum of research reported here incorporates chapters on nanoengineering and nanophysics. In its presentation of tutorial chapters as well as advanced research on nanostructures, this book is ideally suited to meet the needs of newcomers to the field as well as experienced researchers interested in viewing colleagues’ recent advances.
650 0 _aPhysics.
650 0 _aEngineering.
650 0 _aNanotechnology.
650 1 4 _aPhysics.
650 2 4 _aNanoscale Science and Technology.
650 2 4 _aSemiconductors.
650 2 4 _aOptics, Optoelectronics, Plasmonics and Optical Devices.
650 2 4 _aNanotechnology and Microengineering.
650 2 4 _aNanotechnology.
700 1 _aHoring, Norman J. M.
_eeditor.
710 2 _aSpringerLink (Online service)
773 0 _tSpringer eBooks
776 0 8 _iPrinted edition:
_z9783642284236
830 0 _aNanoScience and Technology,
_x1434-4904
856 4 0 _uhttp://dx.doi.org/10.1007/978-3-642-28424-3
912 _aZDB-2-PHA
999 _c96856
_d96856