Low dimensional semiconductor structures characterization, modeling and applications

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Veröffentlicht: Berlin [u.a.] Springer 2013
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Datensatz im Suchindex

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adam_text CONTENTS 1 ADVANCES IN LOW-DIMENSIONAL SEMICONDUCTOR STRUCTURES 1 HILMI UNLII, MOHAMED REZAUL KARIM, H. HAKAN GIIREL, AND OZDEN AKINCI 1.1 INTRODUCTION 1 1.2 SUPERLATTICES AND QUANTUM WELLS 2 1.3 STRAINED SUPERLATTICES AND QUANTUM WELLS 6 1.4 MODULATION-DOPED FIELD EFFECT TRANSISTORS 8 1.5 HETEROSTRUCTURE BIPOLAR TRANSISTORS 9 1.6 DEVELOPMENTS AT NANOSCALE 10 1.7 CONCLUSION 16 REFERENCES 17 2 MODELING OF LOW-DIMENSIONAL SEMICONDUCTORS 19 HILMI UNLII, H. HAKAN GIIREL, OZDEN AKINCI, AND MOHAMED REZAUL KARIM 2.1 INTRODUCTION 19 2.2 TB VIEW OF SEMICONDUCTOR STRUCTURES 22 2.3 SEMIEMPIRICAL SP 3 S* TB MODEL 25 2.4 BAND STRUCTURE OF TERNARY SEMICONDUCTORS 28 2.5 BAND OFFSETS IN TERNARY/BINARY STRUCTURES 32 2.6 SEMIEMPIRICAL SP 3 D 5 S* TB MODEL 34 2.7 CONCLUSION 35 REFERENCES 37 3 GRAPHENE: PROPERTIES AND THEORY 39 NORMAN J. MORGENSTERN HORING 3.1 GRAPHENE 40 3.1.1 DEVICE-FRIENDLY MATERIAL PROPERTIES 40 3.1.2 APPLICATIONS 40 3.1.3 INTRODUCTION: SAMPLE PREPARATION TECHNIQUES: ORIGINAL EXPERIMENTS 40 IX HTTP://D-NB.INFO/1019305304 X CONTENTS 3.1.4 INTRODUCTION: STRUCTURE 41 3.1.5 INTRODUCTION: STRUCTURE, MASSLESS DIRAC SPECTRUM 41 3.2 GRAPHENE HAMILTONIAN 1 41 3.3 GRAPHENE HAMILTONIAN II 42 3.4 GRAPHENE HAMILTONIAN III 42 3.4.1 GRAPHENE: GREEN S FUNCTIONS FOR NULL FIELD AND FINITE MAGNETIC FIELD 43 3.4.2 GRAPHENE QUANTUM DOT IN MAGNETIC FIELD 45 3.4.3 MORE ABOUT GRAPHENE QUANTUM DOTS 47 3.5 DIELECTRIC SCREENING FUNCTION, K, (ON THE 2D GRAPHENE SHEET) 47 3.5.1 GRAPHENE POLARIZABILITY: DEGENERATE LIMIT (T = 0K, NO MAGNETIC FIELD) 48 3.5.2 GRAPHENE PLASMON 49 3.5.3 NEW GRAPHENE TRANSVERSE ELECTRIC MODE IN TERAHERTZ RANGE 50 3.5.4 COUPLING OF GRAPHENE AND SURFACE PLASMONS 50 3.6 GRAPHENE ENERGY LOSS SPECTROSCOPY AND VAN DER WAALS INTERACTION 51 3.6.1 ATOM/GRAPHENE VAN DER WAALS INTERACTION 1 52 3.6.2 ATOM/GRAPHENE VAN DER WAALS INTERACTION II 52 3.6.3 GRAPHENE DOUBLE LAYER VAN DER WAALS INTERACTION 53 3.6.4 GRAPHENE QUASIPARTICLE SELF-ENERGY, ^ 54 3.6.5 ELECTRONIC SUPERLATTICES IN CORRUGATED GRAPHENE 55 3.7 GRAPHENE TRANSPORT: EXPERIMENTAL BACKGROUND 55 3.8 GRAPHENE TRANSPORT: THEORETICAL BACKGROUND-A 56 3.9 GRAPHENE TRANSPORT: THEORETICAL BACKGROUND-B 56 3.10 KINETIC EQUATION FOR GRAPHENE 57 3.10.1 KINETIC EQUATION FORMULATION FOR CURRENT AND DISTRIBUTION FUNCTION 57 3.10.2 KINETIC EQUATION: SOLUTION I 57 3.10.3 KINETIC EQUATION: SOLUTION II 58 3.10.4 KINETIC EQUATION: CONDUCTIVITY 1 58 3.10.5 STATIC SCREENING DIELECTRIC FUNCTION 59 3.10.6 CONDUCTIVITY RESULTS AND DISCUSSION I 59 3.10.7 CONDUCTIVITY RESULTS AND DISCUSSION II 59 3.10.8 CONDUCTIVITY RESULTS AND DISCUSSION III 60 3.10.9 CONDUCTIVITY RESULTS AND DISCUSSION IV 60 3.10.10 CONDUCTIVITY RESULTS AND DISCUSSION V 61 3.10.11 CONDUCTIVITY RESULTS AND DISCUSSION VI 61 3.11 DYNAMIC AC CONDUCTIVITY 61 3.11.1 AC KINETIC EQUATION FORMULATION FOR CURRENT AND DISTRIBUTION FUNCTION -YY P 62 3.11.2 DYNAMIC AC CONDUCTIVITY 64 3.11.3 AC CONCLUSIONS 66 3.12 DEVICE-FRIENDLY FEATURES OF GRAPHENE 1 66 3.12.1 DEVICE-FRIENDLY FEATURES OF GRAPHENE II 66 CONTENTS XI 3.12.2 DEVICE-FRIENDLY FEATURES OF GRAPHENE III 67 3.12.3 DEVICE-FRIENDLY FEATURES OF GRAPHENE IV 67 3.12.4 DEVICE-FRIENDLY FEATURES OF GRAPHENE V 68 3.12.5 DEVICE-FRIENDLY FEATURES OF GRAPHENE VI 68 4 FUNCTIONALIZATION OF GRAPHENE NANORIBBONS 69 HALDUN SEVINGLI, MEHMET TOPSAKAL, AND SALIM CIRACI 4.1 INTRODUCTION 69 4.2 ELECTRONIC AND MAGNETIC PROPERTIES OF 2D AND 1D GRAPHENE 71 4.2.1 ELECTRONS IN HONEYCOMB LATTICE 71 4.2.2 ELECTRONIC AND MAGNETIC PROPERTIES OF GNRS 73 4.3 FUNCTIONALIZATION THROUGH SUPERLATTICE FORMATION 75 4.3.1 SUPERLATTICES OF ARMCHAIR GRAPHENE NANORIBBONS 75 4.3.2 SUPERLATTICES OF ZIGZAG GRAPHENE NANORIBBONS 82 4.4 FUNCTIONALIZATION THROUGH TM-ATOM DOPING 86 4.5 CONCLUSIONS 90 REFERENCES 91 5 ATOM/MOLECULE VAN DER WAALS INTERACTION WITH GRAPHENE 93 NORMAN J. MORGENSTERN HORING, VASSILIOS FESSATIDIS, AND JAY D. MANCINI 5.1 INTRODUCTION: ATOM-GRAPHENE VAN DER WAALS INTERACTION AND THE PLASMA IMAGE 93 5.2 NONLOCAL DIPOLAR VAN DER WAALS INTERACTION OF AN ATOM/MOLECULE AND GRAPHENE 97 REFERENCES 99 6 OPTICAL STUDIES OF SEMICONDUCTOR QUANTUM DOTS 101 H. YUKSELICI, . ALLAHVERDI, A. AJIKOGLU, H. UNLII, A. BAYSAL, M. ULHA, R. INCE, A. INCE, M. FEENEY, AND H. ATHALIN 6.1 INTRODUCTION 101 6.2 SOLID-PHASE PRECIPITATION IN GLASS 102 6.3 PARTICLE-IN-A-BOX MODEL TO DETERMINE THE AVERAGE NANOCRYSTAL RADIUS AND SIZE DISTRIBUTION 104 6.4 RAMAN AND PHOTOLUMINESCENCE SPECTROSCOPIES 108 6.5 PHOTOABSORPTION SPECTRA ILL 6.6 QUANTUM DOTS IN SOLUTION PHASE 113 6.7 INTERFEROMETRIC ANALYSIS OF QD SAMPLES 114 REFERENCES 116 7 FRIEDEL SUM RULE IN ONE- AND QUASI-ONE-DIMENSIONAL WIRES 119 VASSILIOS VARGIAMIDIS, VASSILIOS FESSATIDIS, AND NORMAN J. MORGENSTERN HORING 7.1 INTRODUCTION 119 7.2 LOCAL DENSITY OF STATES AND FRIEDEL SUM RULE FOR THE ONE-DIMENSIONAL WIRE 120 7.2.1 LOCAL DENSITY OF STATES 122 7.2.2 FRIEDEL SUM RULE 125 XII CONTENTS 7.3 FRIEDEL SUM RULE IN A QUASI-ONE-DIMENSIONAL WIRE 127 7.4 SUMMARY 129 REFERENCES 130 8 EFFECTS OF TEMPERATURE ON THE SCATTERING PHASES AND DENSITY OF STATES IN QUANTUM WIRES 131 VASSILIOS VARGIAMIDIS, VASSILIOS FESSATIDIS, AND NORMAN J. MORGENSTERN HORING 8.1 INTRODUCTION 131 8.2 FORMULATION 133 8.2.1 LOCAL DENSITY OF STATES 133 8.2.2 SCATTERING PHASES 135 8.2.3 SIMPLE MODEL SCATTERER 136 8.3 FINITE TEMPERATURE EFFECTS 138 8.4 SUMMARY 141 REFERENCES 141 9 FABRICATION OF LOW DIMENSIONAL NANOWIRE-BASED DEVICES USING DIELETROPHORESIS 143 RAMAZAN KIZIL 9.1 INTRODUCTION 143 9.2 NANOGAP ELECTRODES 145 9.3 NANOTECHNOLOGY APPLIED TO BIO/MOLECULAR DETECTION AND NANOGAP ELECTRODES 146 9.4 DIELECTROPHORESIS 147 9.5 APPLICATIONS OF DEP 148 9.6 NANOWIRE SYNTHESIS AND CHARACTERIZATION 148 9.7 INTEGRATION OF NANOWIRES WITH A MICROSYSTEM 150 9.8 MICROCHIP DESIGN 150 9.9 NANOWIRE ALIGNMENT BY DEP 151 REFERENCES 158 INDEX 161
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publishDate 2013
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record_format marc
series2 Nanoscience and technology
spellingShingle Low dimensional semiconductor structures characterization, modeling and applications
Niederdimensionaler Halbleiter (DE-588)4482656-4 gnd
Nanostruktur (DE-588)4204530-7 gnd
subject_GND (DE-588)4482656-4
(DE-588)4204530-7
(DE-588)1071861417
title Low dimensional semiconductor structures characterization, modeling and applications
title_alt NanoMats-2009 NanoTr-4
title_auth Low dimensional semiconductor structures characterization, modeling and applications
title_exact_search Low dimensional semiconductor structures characterization, modeling and applications
title_full Low dimensional semiconductor structures characterization, modeling and applications Hilmi Ünlü... (ed.)
title_fullStr Low dimensional semiconductor structures characterization, modeling and applications Hilmi Ünlü... (ed.)
title_full_unstemmed Low dimensional semiconductor structures characterization, modeling and applications Hilmi Ünlü... (ed.)
title_short Low dimensional semiconductor structures
title_sort low dimensional semiconductor structures characterization modeling and applications
title_sub characterization, modeling and applications
topic Niederdimensionaler Halbleiter (DE-588)4482656-4 gnd
Nanostruktur (DE-588)4204530-7 gnd
topic_facet Niederdimensionaler Halbleiter
Nanostruktur
Konferenzschrift
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