Preface |
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xv | |
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Table of Previous Kirchberg Winterschools |
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xvi | |
Organizer, Patronage, Supporters, Sponsors |
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xvii | |
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FULLERENES, ENDOHEDRALS, AND FULLERIDES |
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What is Special about Endofullerenes? |
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3 | (5) |
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Distortion and Orientation of Fulleride Ions in A4C60 |
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8 | (4) |
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VIS-NIR, Raman and EPR Spectroscopy on Medium Cage Sized Endohedral Fullerenes |
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12 | (7) |
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CARBON NANOSTRUCTURE SYNTHESIS, PURIFICATION AND SEPARATION |
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Approaching the Rational Synthesis of Carbon Nanotubes |
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19 | (8) |
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Controlled Growth of SWCNT on Solid Catalysts with Narrow (n,m) Distribution |
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27 | (5) |
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Blowing Carbon Nanotubes to Carbon Nanobulbs |
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32 | (4) |
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On the Temporary Growth of Multi-Walled Carbon Nanaotubes |
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36 | (4) |
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Synthesis, Properties and Possible Applications of Helical Carbon Nanotubes |
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40 | (5) |
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A Low Cost Method for the Synthesis of Carbon Nanotubes and Highly Y-Branched Nanotubes |
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45 | (4) |
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Raman-Spectroscopy on Metallic SWNTs Separated from Semiconducting SWNTs with Dielectrophoresis |
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49 | (4) |
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Production of Aligned Carbon Nanotube Films and Nitrogen Doped Carbon Nanotube Films from the Pyrolysis of Styrene |
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53 | (4) |
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Limited Number of Possible Mean Diameters in the Evaporation Synthesis of Single-Walled Carbon Nanotubes |
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57 | (4) |
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Mass Production of Multiwalled Carbon Nanotubes by Chemical Vapor Deposition |
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61 | (4) |
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Electrochemical Synthesis of an Array of Aligned Polypyrrole Nanotubes |
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65 | (4) |
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Metallic/Semiconducting Nanotube Separation and Ultra-Thin, Transparent Nanotube Films |
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69 | (6) |
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Manipulating Carbon Nanotubes with Nucleic Acids |
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75 | (6) |
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Direct Growth of Carbon Nanofibers on Plastic Substrates |
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81 | (6) |
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PROPERTIES OF SINGLE-WALL CARBON NANOTUBES |
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Changes in Carbon Nanotube Electronic Properties by Collisions with Inert Gases |
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87 | (4) |
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Thermal Measurements on Multi-Wall Nanotubes |
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91 | (4) |
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Pathogenic Activity of ID Nanocarbons: In Vivo Studies on Guinea Pigs |
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95 | (4) |
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Comparison of Current-Voltage Characteristics of Nanofibers and Nanotubes |
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99 | (4) |
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Superconductivity in Long and Short Molecules |
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103 | (4) |
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Effect of Irradiation on Aligned Carbon Nanotube Fibers |
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107 | (4) |
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Luminescence from Pillar Suspended Single-Walled Carbon Nanotubes |
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111 | (5) |
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Strain-Induced Shifts of the Photoluminescence of Single-Walled Carbon Nanotubes in Frozen Aqueous Dispersions |
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116 | (5) |
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Mechanical Dynamics of Chiral Carbon Nanotubes: Magnetochyrodynamic Effects |
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121 | (8) |
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CHARACTERIZATION OF CARBON NANOTUBES |
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Scanning Conductance Microscopy of Carbon Nanotubes and Polyethylene Oxide Nanofibers |
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129 | (4) |
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Characterization and Gas Adsorption on Multi-Walled Carbon Nanotubes Before and After Controlled Chemical Opening |
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133 | (4) |
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Wide Range Optical Studies on Transparent SWNT Films |
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137 | (4) |
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Bulk Synthesis and Characteristic Properties of Boron Nitride Nanostructures: Nanocapsules and Nanotubes |
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141 | (4) |
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Structure and Electronic Properties of Suspended Single Wall Carbon Nanotubes |
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145 | (4) |
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STM Investigation of Irradiated Carbon Nanotubes |
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149 | (4) |
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A Resonant Raman Study of SWNTs under Electrochemical Doping |
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153 | (4) |
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Raman on Carbon Nanotubes Using a Tunable Laser and Comparison with Photoluminescence |
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157 | (6) |
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Local Phonon Modes of Single-Walled Carbon Nanotubes Observed by Near-Field Raman Spectroscopy |
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163 | (5) |
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Vibrational Spectromicroscopy of Graphite and Carbon Nanotubes |
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168 | (5) |
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Atomically Clean Integration of Carbon Nanotubes with Silicon |
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173 | (8) |
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FUNCTIONALIZATION OF CARBON NANOTUBES |
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NMR on Cesium Intercalated Carbon Nanotubes |
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181 | (4) |
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Purification and Dispersion of Carbon Nanotubes by Sidewall Functionalization with Single-Stranded DNA |
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185 | (4) |
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Transport Properties of Functionalized Single Wall Nanotubes Buckypaper |
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189 | (4) |
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Controlled Functionalization of Carbon Nanotubes by in Situ Polymerization Strategy |
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193 | (4) |
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Effect of Physical and Chemical Doping on Optical Spectra of SWNT's |
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197 | (4) |
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Electrochemical Functionalization of Single-Walled Carbon Nanotubes with Polyaniline Evidenced by Raman and FTIR Spectroscopy |
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201 | (4) |
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Covalent Interaction in Ba-Doped Single-Wall Carbon Nanotubes |
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205 | (4) |
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Reaction of Single-Wall Carbon Nanotubes with Radicals |
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209 | (4) |
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A Raman Study of Potassium-Doped Double-Wall Carbon Nanotubes |
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213 | (4) |
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A Photoemission Study of Potassium-Doped Single Wall Carbon Nanotubes |
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217 | (5) |
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Electronic Structure of Single-Wall Carbon Nanotubes and Peapods; Photoemission Study |
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222 | (7) |
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NANOTUBE FILLING AND DOUBLE-WALL CARBON NANOTUBES |
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Metal-Filled Nanotubes: Synthesis, Analysis, Properties and Applications |
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229 | (5) |
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The Growth Process of Nanotubes in Nanotubes |
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234 | (4) |
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13C NMR on Intercalated 2D-polymerised C60 and Modified Peapods |
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238 | (4) |
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The Redox Behavior of Potassium Doped C60 Peapods |
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242 | (5) |
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Distinct Redox Doping of Core/Shell Nanostructures: Double Wall Carbon Nanotubes |
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247 | (4) |
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Highly Diameter Selective 13C Enrichment in Carbon Nanotubes |
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251 | (4) |
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Inserting Fullerene Dimers into Carbon Nanotubes: Pushing the Boundaries of Molecular Self-assembly |
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255 | (4) |
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Properties of N@C60-Derived Peapods |
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259 | (4) |
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Interaction between Inner and Outer Tubes in DWCNTs |
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263 | (5) |
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Single Wall Carbon Nanotube Specific 13C Isotope Enrichment |
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268 | (5) |
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Thin Films of C60 Peapods and Double Wall Carbon Nanotubes |
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273 | (5) |
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Raman Spectroscopy of PbO-Filled Single Wall Carbon Nanotubes |
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278 | (7) |
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NON-CARBONACEOUS NANOTUBES |
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Thermally Induced Templated Synthesis for the Formation of SiC Nanotubes and More |
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285 | (4) |
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Raman Spectra of BxNyCz--Nanotubes: Correlation between B, N--Content and Frequency Shifts of the G-band |
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289 | (4) |
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EELS Measurements in Single Wall Boron Nitride Nanotubes |
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293 | (5) |
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Magnetic Properties of TiO2 Based Nanotubes |
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298 | (4) |
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EPR Study of TiO2 Based Nanotubes and NO2 Adsorption |
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302 | (4) |
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Mechanical Properties of Individual WS2 Nanotubes |
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306 | (9) |
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Entanglement of Spin States in 15N@C60 |
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315 | (6) |
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321 | (5) |
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Quantum Chemical Study on La2@C80: Configuration of Endohedral Metals |
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326 | (4) |
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Raman Excitation Profiles for the (n1, n2) Assignment in Carbon Nanotubes |
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330 | (4) |
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Resonant Raman Spectroscopy of Nanostructured Carbon-Based Materials: The Molecular Approach |
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334 | (5) |
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Orientational Charge Density Waves and the Metal-Insulator Transition in Polymerized KC60 |
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339 | (4) |
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First Principles Calculations for the Electronic Band Structures of Zone Folding Metallic Single Wall Carbon Nanotubes |
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343 | (4) |
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Stabilizing Y-Junctions and Ring Structures through Nitrogen Substitution |
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347 | (4) |
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Sticking Effect of Carbon Nanotube Y-Junction Branches |
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351 | (4) |
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How (and why) Twisting Cycles Make Individual MWCNTs Stiffer |
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355 | (4) |
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The Electronic Structure of Achiral Nanotubes: A Symmetry Based Treatment |
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359 | (5) |
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MD Simulations of Catalytic Carbon Nanotube Growth: Important Features of the Metal-Carbon Interactions |
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364 | (4) |
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DFT Investigation of Nanostructured Binary Compounds |
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368 | (4) |
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Electron-Phonon Interaction and Raman Intensities in Graphite |
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372 | (5) |
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First Principles Calculations for the Electronic Band Structures of Zone Folding Non-Metallic Single Wall Carbon Nanotubes |
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377 | (4) |
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The Strength of the Radial-Breathing Mode in Single-Walled Carbon Nanotubes |
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381 | (4) |
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Quantum Mechanical Calculations of the Structure, Energetics, and Electronic Properties of the (C60)2 and (C60)22- Fullerene Dimer |
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385 | (4) |
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Atomic Pseudopotential Model for Wave Packet Tunneling through a Carbon Nanotube |
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389 | (4) |
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Ab initio Approach to Superexchange Interactions in Alkali Doped Fullerides AC60 |
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393 | (4) |
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Phonon Dispersion of Graphite |
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397 | (5) |
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Electron Interactions and Excitons in Carbon Nanotube Fluorescence Spectroscopy |
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402 | (5) |
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Double Resonance Raman Spectroscopy and Optical Properties of Single Wall Carbon Nanotubes |
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407 | (8) |
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NEW MATERIALS AND BIOLOGICAL NANOSTRUCTURES |
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Boomerang-Shaped VOx Nanocrystallites |
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415 | (4) |
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Conducting Properties of Single Bundles of Mo6S3I6 Nanowires |
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419 | (4) |
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423 | (4) |
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Synthesis and Magnetic Characterization of Cu(OH)2 Nanoribbons |
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427 | (4) |
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XPS Study of Carbyne-Like Carbon Films |
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431 | (4) |
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Isolation, Positioning and Manipulation of Mo6S3I6 by (di)electrophoresis |
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435 | (4) |
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Motions in Catenanes and Rotaxanes |
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439 | (6) |
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Synthesis of Silicon Nanowires |
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445 | (4) |
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Electrical Properties of InAs-Based Nanowires |
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449 | (6) |
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CNF Re-Inforced Polymer Composites |
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455 | (5) |
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Carbon Nanotubes as Backbones for Composite Electrodes of Supercapacitors |
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460 | (5) |
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Synthesis and Characterization of Carbon Nanotubes/Amylose Composites |
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465 | (4) |
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Route for Single-Walled Nanotube-Polymer Composites |
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469 | (4) |
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Investigations on Polycarbonate-Nanotube Composites |
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473 | (5) |
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Dispersion of Carbon Nanotubes into Thermoplastic Polymers Using Melt Mixing |
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478 | (7) |
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Field Emission from Individual Thin Carbon Nanotubes |
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485 | (5) |
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Fundamental Aspects and Applications of Low-Field Electron Emission from Nano-Carbons |
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490 | (8) |
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Light-Driven Molecular Motors |
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498 | (5) |
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Progress towards a Rotary Molecular Motor |
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503 | (5) |
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Catalytic CVD of SWCNTs at Low Temperatures and SWCNT Devices |
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508 | (4) |
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Engineering Nanomotor Components from Multi-Walled Carbon Nanotubes via Reactive Ion Etching |
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512 | (4) |
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Contact Resistance between Individual Single Walled Carbon Nanotubes and Metal Electrodes |
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516 | (4) |
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Gate-Field-Induced Schottky Barrier Lowering in a Nanotube Field-Effect Transistor |
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520 | (4) |
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Fabrication of Field Effect Transistors Based on Carbon Nanotubes Made by Laser Ablation |
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524 | (4) |
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Emission Characteristics of CNT-Based Cathodes |
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528 | (4) |
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Application of Metal Coated Carbon Nanotubes to Direct Methanol Fuel Cells and for the Formation of Nanowires |
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532 | (4) |
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Electrical Interconnects Made of Carbon Nanotubes |
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536 | (4) |
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Freestanding Nanostructures for TEM-Combined Investigations of Nanotubes |
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540 | (4) |
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Controlling the Position and Morphology of Nanotubes for Device Fabrication |
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544 | (4) |
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Conjugated Polymeric Donor --- Fullerene Type Acceptor Systems for Photoelectrochemical Energy Conversion |
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548 | (4) |
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Integration of Carbon Nanotubes with Semiconductor Technology by Epitaxial Encapsulation |
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552 | (4) |
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Electrical Transport in Dy Metallofullerene Peapods |
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556 | (5) |
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Simultaneous Deposition of Individual Single-Walled Carbon Nanotubes onto Microelectrodes via AC-Dielectrophoresis |
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561 | (4) |
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Carbon Nanotubes: Can They Become a Microelectronics Technology? |
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565 | (9) |
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Suitability of Carbon Nanotubes Grown by Chemical Vapor Deposition for Electrical Devices |
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574 | (9) |
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A Few Electron-Hole Semiconducting Carbon Nanotube Quantum Dot |
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583 | (4) |
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Electrically Driven Vaporization of Multiwall Carbon Nanotubes for Rotary Bearing Creation |
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587 | (4) |
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Conducting Transparent Thin Films Based on Carbon Nanotubes --- Conducting Polymers |
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591 | (4) |
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Flourine Effect on the Binding Energy of Nitrogen Atoms Incorporated into Multiwall CNx Nanotubes |
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595 | (4) |
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Author Index |
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599 | |