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1.

電子ブック

EB
Jeffrey H. Williams
出版情報: [San Rafael, Calif.] : Morgan & Claypool, 2014  1 online resource (various pagings)
シリーズ名: IOP concise physics ;
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2.

電子ブック

EB
Brian R. Kent, PhD.
出版情報: [San Rafael, Calif.] : Morgan & Claypool, 2015  1 online resource (various pagings)
シリーズ名: IOP concise physics ;
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3.

電子ブック

EB
edited by Qipeng Guo
出版情報: Wiley Online Library Online Books , Hoboken, New Jersey : Wiley, 2016
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4.

電子ブック

EB
Sponsored by The Minerals, Metals & Materials Society (TMS) ; edited by Eric Ott ... [et al.]
出版情報: Wiley Online Library Online Books, 2014 , Hoboken, NJ : John Wiley & Sons, Inc., c2014
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5.

電子ブック

EB
Ingo Dierking
出版情報: Wiley Online Library Online Books, 2003 , Weinheim : Wiley-VCH, c2003
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目次情報: 続きを見る
Preface
Foreword
Introduction / 1:
Surface Anchoring and Elasticity / 2:
Polarizing Microscopy / 3:
The Blue Phases / 4:
The Nematic and Cholesteric Phases / 5:
Twist Grain Boundary Phases / 6:
The Fluid Smectic Phases / 7:
The SmC* Subphases / 8:
The Hexatic Phases / 9:
Soft Crystal Phases and Crystallization / 10:
Other Liquid Crystal Phases / 11:
Appendix A
Appendix B
Color Plates
Index
Preface
Foreword
Introduction / 1:
6.

電子ブック

EB
edited by C. Leyens and M. Peters
出版情報: 2003 : Wiley Online Library Online Books , Weinheim : Wiley-VCH, c2003
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Foreword
List of Contributors
Structure and Properties of Titanium and Titanium Alloys / M. Peters, et al.1:
Beta Titanium Alloys / G. Terlinde ; G. Fischer2:
Orthorhombic Titanium Aluminides: Intermetallic with Improved Damage Tolerance / J. Kumpfert ; C. Leyens3:
?-Titanium Aluminide Alloys: Alloy Design and Properties / F. Appel ; M. Oehring4:
Fatigue of Titanium Alloys / L. Wagner ; J.K. Bigoney5:
Oxidation and Protection of Titanium Alloys and Titanium Aluminides / 6:
Titanium and Titanium Alloys - From Raw material to Semi-finished Products / H. Sibum7:
Fabrication of Titanium Alloys / M. Peters8:
Investment Casting of Titanium / H.-P. Nicolai ; Chr. Liesner9:
Superplastic Forming and Diffusion Bonding of Titanium and Titanium Alloys / W. Beck10:
Forging of Titanium / G. Terlinde, et al.11:
Continuous Fiber Reinforced Titanium matrix Composites: Fabrication, Properties and Applications / C. Leyens, et al.12:
Titanium Alloys for Aerospace Applications / 13:
Production, Processing and Application of ?(TiAl)-Based Alloys / H. Kestler ; H. Clemens14:
Non-Aerospace Applications of Titanium and Titanium Alloys / 15:
Titanium and its Alloys for Medical Applications / J. Breme, et al.16:
Titanium in Dentistry / J. Lindigkeit17:
Titanium in Automotive Production / O. Schauerte18:
Offshore Applications for Titanium Alloys / L. Lunde ; M. Seiersten19:
Foreword
List of Contributors
Structure and Properties of Titanium and Titanium Alloys / M. Peters, et al.1:
7.

電子ブック

EB
edited by Rigoberto C. Advincula ... [et al.]
出版情報: Wiley Online Library Online Books, 2004 , Weinheim : Wiley-VCH, c2004
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Preface
Polymer Brushes: On the Way to Tailor-Made Surfaces / Jurgen RuheList of Contributors:
Growth of Polymer Molecules at Surfaces: Introductory Remarks / 1:
Coatings: From First Principles to High-Tech Applications / 2:
Surface-Coating Techniques / 3:
Surface-Attached Polymers / 4:
Polymer Brushes: General Features / 5:
Theory of Polymer Brushes / 6:
Synthesis of Polymer Brushes / 7:
Polymer Brushes as Functional Materials / 8:
Microstructured Polymer Brushes / 9:
Surface-Initiated Polymerization: The Overall Picture / 10:
Synthesis / Part I:
Recent Advances in Polymer Brush Synthesis / Anthony M. Granville and William J. Brittain
Introduction / 1.1:
"Grafting To" Synthesis Technique / 1.2:
"Grafting From" Synthesis Technique / 1.3:
Polymer Brushes by Atom Transfer Radical Polymerization / Jeffrey Pyun ; Tomasz Kowalewski ; Krzysztof Matyjaszewski
Polymer Brushes on Flat Surfaces / 2.1:
Polymer Brushes from Particles / 2.3:
Molecular Brushes / 2.4:
Polymer Brushes by Atom Transfer Radical Polymerization Initiated from Macroinitiator Synthesized on the Surface / Viktor Klep ; Bogdan Zdyrko ; Yong Liu ; Igor Luzinov
Experimental / 3.1:
Results and Discussion / 3.3:
Synthesis of Polypeptide Brushes / Henning Menzel and Peter Witte
Preparation of Peptide Brushes by "Grafting To" / 4.1:
Preparation of Peptide Brushes by Grafting From Polymerization / 4.3:
Preparation of Peptide Brushes by Living Grafting From Polymerization / 4.4:
Bottle Brush Brushes: Ring-Opening Polymerization of Lactide from Poly(hydroxyethyl methacrylate) Surfaces / Jong-Bum Kim ; Wenxi Huang ; Chun Wang ; Merlin Bruening ; Gregory L. Baker
Synthesis of PHEMA-g-PLA / 5.1:
Conclusions and Implications for Future Studies / 5.3:
Experimental Section / 5.4:
Preparation of Well-Defined Organic-Inorganic Hybrid Nanostructures using Living Cationic Surface-Initiated Polymerization from Silica Nanoparticles / Il-Jin Kim ; Su Chen ; Rudolf Faust
Photoinitiated Polymerization from Self-Assembled Monolayers / Daniel J. Dyer ; Jianxin Feng ; Charles Fivelson ; Rituparna Paul ; Rolf Schmidt ; Tongfeng Zhao6.1:
Substrates / 7.1:
Photoinitiated Radical Polymerization Mechanisms / 7.3:
Polymerization from AIBN-type SAMs / 7.4:
Conclusions and Future Studies / 7.5:
Recent Advances in the Synthesis and Rearrangement of Block Copolymer Brushes / Stephen G. Boyes ; Anthony M. Granville ; Marina Baum ; Bulent Akgun ; Brian K. Mirous ; William J. Brittain7.6:
Introduction and Background / 8.1:
Controlled/"Living" Free Radical Polymerization / 8.2:
Synthesis of Block Copolymer Brushes / 8.3:
Rearrangement of Block Copolymer Brushes / 8.4:
Surface-Grafted Hyperbranched Polymers / Hideharu Mori and Axel H. E. Muller
"Grafting To" Approach / 9.1:
Multi-Step Grafting Approach / 9.3:
"Grafting From" Approach / 9.4:
Characterization / Part II:
The Analysis and Characterization of Polymer Brushes: From Flat Surfaces to Nanoparticles / Rigoberto C. Advincula
Characterization of Ultrathin Polymer Films and Polymer Brushes / 10.1:
Investigating Polymer Brush Systems / 10.3:
The Importance of Characterizing Particles and Nanoparticles / 10.4:
Characte / 10.5:
List of Contributors
Characterization and Analysis Methods for Polymer Brushes on Particles / Henning Menzel ; Peter Witte ; Hideharu Mori ; Axel H. E. Muller
Characterization of Polymer Brushes on Nanoparticle Surfaces / Thomas A. P. Seery ; Mark Jordi ; Rosette Guino ; Dale Huber11:
Spherical Polyelectrolyte Brushes / Matthias Ballauff11.1:
Synthesis and Characterization / 12.1:
Experimental Verification of Theoretical Predictions / 12.3:
Flow Behavior / 12.4:
Applications / 12.5:
Weak Polyelectrolyte Brushes: Complex Formation and Multilayer Build-up with Oppositely Charged Polyelectrolytes / Rupert Konradi ; Haining Zhang ; Markus Biesalski13:
Synthesis and Data Evaluation / 13.1:
Swelling Behavior of Weak Polyelectrolyte Brushes in Aqueous Environments / 13.3:
Interaction Between Polyelectrolyte Brushes and Oppositely Charged Polyelectrolytes in Solution / 13.4:
Structure and Properties of High-Density Polymer Brushes / Yoshinobu Tsujii ; Muhammad Ejaz ; Shinpei Yamamoto ; Kohji Ohno ; Kenji Urayama ; Takeshi Fukuda14:
Controlled Synthesis of High-Density Polymer Brush by ATRP / 14.1:
Structure and Properties of High-Density PMMA Brushes / 14.3:
Application of High-Density Polymer Brushes / 14.4:
Behavior of Surface-Anchored Poly(acrylic acid) Brushes with Grafting Density Gradients on Solid Substrates / Tao Wu ; Jan Genzer ; Peng Gong ; Igal Szleifer ; Petr Vlcek ; Vladimir Subr15:
Glossary
Theory Section / 15.1:
Experimental Results / 15.4:
Discussion / 15.5:
Kinetics of Polymer Brush Formation With and Without Segmental Adsorption / Lynn S. Penn ; Heqing Huang ; Roderic P. Quirk ; Tae H. Cheong16:
Applications of Polymer Brushes and Other Surface-Attached Polymers / Kenneth C. Caster16.1:
Surface Modification and Functionalization / 17.1:
Future Prospects / 17.3:
Appendix
Polymer Brushes: Towards Applications / Gregory L. Whiting ; Tamer Farhan ; Wilhelm T. S. Huck18:
Polymerization, Nanopatterning and Characterization of Surface-Confined, Stimulus-Responsive Polymer Brushes / Marian Kaholek ; Woo-Kyung Lee ; Bruce LaMattina ; Stefan Zauscher18.1:
Mixed Polymer Brushes: Switching of Surface Behavior and Chemical Patterning at the Nanoscale / Sergiy Minko ; Marcus Muller ; Valeriy Luchnikov ; Mikhail Motornov ; Denys Usov ; Leonid Ionov ; Manfred Stamm19.1:
Theory of Mixed Polymer Brushes / 20.1:
Synthesis of Mixed Brushes / 20.3:
Experimental Study of Phase Segregation in Mixed Brushes / 20.4:
Adaptive Responsive Behavior: Regulation of Wetting and Adhesion / 20.5:
Patterning of Mixed Brushes / 20.6:
Local Chain Organization of Switchable Binary Polymer Brushes in Selective Solvents / Melbs C. LeMieux ; Vladimir V. Tsukruk21:
Motion of Nano-Objects Induced by a Switchable Polymer Carpet / Svetlana Prokhorova ; Alexey Kopyshev ; Ayothi Ramakrishnan21.1:
Materials / 22.1:
Photochemical Strategies for the Preparation and Microstructuring of Densely Grafted Polymer Brushes on Planar Surfaces / Oswald Prucker ; Martin Schimmel ; Jorg Habicht ; In-Jun Park22.3:
General Features of Surface-Initiated Polymerization from Monolayers of Azo Initiators / 23.1:
Photolithographic Procedures for the Generation of Microstructured Polymer Brushes on Planar Surfaces / 23.3:
Multifunctional Patterns / 23.4:
Applications of Photostructured Polymer Brushes / 23.5:
Index
Preface
Polymer Brushes: On the Way to Tailor-Made Surfaces / Jurgen RuheList of Contributors:
Growth of Polymer Molecules at Surfaces: Introductory Remarks / 1:
8.

電子ブック

EB
edited by S. Thomas, Y. Grohens and P. Jyotishkumar
出版情報: Wiley Online Library Online Books, 2015 , Weinheim, Germany : Wiley-VCH, c2015
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9.

電子ブック

EB
Rüdiger Memming
出版情報: Wiley Online Library Online Books, 2015 , Weinheim : Wiley-VCH, c2015
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目次情報: 続きを見る
Principles of Semiconductor Physics / 1:
Crystal Structure / 1.1:
Energy Levels in Solids / 1.2:
Optical Properties / 1.3:
Density of States and Carrier Concentrations / 1.4:
Intrinsic Semiconductors / 1.4.1:
Doped Semiconductors / 1.4.2:
Carrier Transport Phenomena / 1.5:
Excitation and Recombination of Charge Carriers / 1.6:
Fermi Levels under Non-Equilibrium Conditions / 1.7:
Semiconductor Surfaces and Solid-Solid Junctions / 2:
Metal and Semiconductor Surfaces in a Vacuum / 2.1:
Metal-Semiconductor Contacts (Schottky Junctions) / 2.2:
Barrier Heights / 2.2.1:
Majority Carrier Transfer Processes / 2.2.2:
Minority Carrier Transfer Processes / 2.2.3:
p-n Junctions / 2.3:
Ohmic Contacts / 2.4:
Photovoltages and Photocurrents / 2.5:
Surface Recombination / 2.6:
Electrochemical Systems / 3:
Electrolytes / 3.1:
Ion Transport in Solutions / 3.1.1:
Interaction between Ions and Solvent / 3.1.2:
Potentials and Thermodynamics of Electrochemical Cells / 3.2:
Chemical and Electrochemical Potentials / 3.2.1:
Cell Voltages / 3.2.2:
Reference Potentials / 3.2.3:
Standard Potential and Fermi Level of Redox Systems / 3.2.4:
Experimental Techniques / 4:
Electrode Preparation / 4.1:
Current-Voltage Measurements / 4.2:
Voltametry / 4.2.1:
Photocurrent Measurements / 4.2.2:
Rotating Ring Disc Electrodes / 4.2.3:
Scanning Electrochemical Microscopy (SECM) / 4.2.4:
Measurements of Surface Recombination and Minority Carrier Injection / 4.3:
Impedance Measurements / 4.4:
Basic Rules and Techniques / 4.4.1:
Evaluation of Impedance Spectra / 4.4.2:
Intensity-Modulated Photocurrent Spectroscopy (IMPS) / 4.5:
Flash Photolysis Investigations / 4.6:
Surface Science Techniques / 4.7:
Spectroscopic Methods / 4.7.1:
In Situ Surface Microscopy (STM and AFM) / 4.7.2:
Solid-Liquid Interface / 5:
Structure of the Interface and Adsorption / 5.1:
Charge and Potential Distribution at the Interface / 5.2:
The Helmholtz Double Layer / 5.2.1:
The Gouy Layer in the Electrolyte / 5.2.2:
The Space Charge Layer in the Semiconductor / 5.2.3:
Charge Distribution in Surface States / 5.2.4:
Analysis of the Potential Distribution / 5.3:
Germanium Electrodes / 5.3.1:
Silicon Electrodes / 5.3.2:
Compound Semiconductor Electrodes / 5.3.3:
Flatband Potential and Position of Energy Bands at the Interface / 5.3.4:
Unpinning of Energy Bands during Illumination / 5.3.5:
Electron Transfer Theories / 6:
The Theory of Marcus / 6.1:
Electron Transfer in Homogeneous Solutions / 6.1.1:
The Reorganization Energy / 6.1.2:
Adiabatic and Non-adiabatic Reactions / 6.1.3:
Electron Transfer Processes at Electrodes / 6.1.4:
The Gerischer Model / 6.2:
Energy States in Solution / 6.2.1:
Electron Transfer / 6.2.2:
Quantum Mechanical Treatments of Electron Transfer Processes / 6.3:
Introductory Comments / 6.3.1:
Non-adiabatic Reactions / 6.3.2:
Adiabatic Reactions / 6.3.3:
The Problem of Deriving Rate Constants / 6.4:
Comparison of Theories / 6.5:
Charge Transfer Processes at the Semiconductor-Liquid Interface / 7:
Charge Transfer Processes at Metal Electrodes / 7.1:
Kinetics of Electron Transfer at the Metal-Liquid Interface / 7.1.1:
Diffusion-controlled Processes / 7.1.2:
Investigations of Redox Reactions by Linear Sweep Voltametry / 7.1.3:
Criteria for Reversible and Irreversible Reactions / 7.1.4:
Qualitative Description of Current-Potential Curves at Semiconductor Electrodes / 7.2:
One-step Redox Reactions / 7.3:
The Energetics of Charge Transfer Processes / 7.3.1:
Quantitative Derivation of Current-Potential Curves / 7.3.2:
Light-induced Processes / 7.3.3:
Majority Carrier Reactions / 7.3.4:
Minority Carrier Reactions / 7.3.5:
Electron Transfer in the 'Inverted Region' / 7.3.6:
The Quasi-Fermi Level Concept / 7.4:
Basic Model / 7.4.1:
Application of the Concept to Photocurrents / 7.4.2:
Consequences for the Relation between Impedance and IMPS Spectra / 7.4.3:
Quasi-Fermi Level Positions under High Level Injections / 7.4.4:
Determination of the Reorganization Energy / 7.5:
Two-step Redox Processes / 7.6:
Photoluminescence and Electroluminescence / 7.7:
Kinetic Studies by Photoluminescence Measurement / 7.7.1:
Electroluminescence Induced by Minority Carrier Injection / 7.7.2:
Hot Carrier Processes / 7.8:
Catalysis of Electrode Reactions / 7.9:
Electrochemical Decomposition of Semiconductors / 8:
Anodic Dissolution Reactions / 8.1:
Germanium / 8.1.1:
Silicon / 8.1.2:
Anodic Formation of Amorphous (Porous) Silicon / 8.1.3:
Compound Semiconductors / 8.1.4:
Cathodic Decomposition / 8.2:
Dissolution under Open Circuit Conditions / 8.3:
Energetics and Thermodynamics of Corrosion / 8.4:
Competition between Redox Reaction and Anodic Dissolution / 8.5:
Photoreactions at Semiconductor Particles / 9:
Quantum Size Effects / 9.1:
Quantum Dots / 9.1.1:
Single Crystalline Quantum Films and Superlattices / 9.1.2:
Size Quantized Nanocrystalline Films / 9.1.3:
Charge Transfer Processes at Semiconductor Particles / 9.2:
Reactions in Suspensions and Colloidal Solutions / 9.2.1:
Photoelectron Emission / 9.2.2:
Comparison between Reactions at Semiconductor Particles and at Compact Electrodes / 9.2.3:
The Role of Surface Chemistry / 9.2.4:
Enhanced Redox Chemistry in Quantized Colloids / 9.2.5:
Reaction Routes at Small and Big Particles / 9.2.6:
Sandwich Formation between Different Particles and between Particle and Electrode / 9.2.7:
Charge Transfer Processes at Quantum Well Electrodes (MQW, SQW) / 9.3:
Photoelectrochemical Reactions at Nanocrystalline Semiconductor Layers / 9.4:
Electron Transfer Processes between Excited Molecules and Semiconductor Electrodes / 10:
Energy Levels of Excited Molecules / 10.1:
Reactions at Semiconductor Electrodes / 10.2:
Spectra of Sensitized Photocurrents / 10.2.1:
Dye Molecules Adsorbed on the Electrode and in Solution / 10.2.2:
Potential Dependence of Sensitization Currents / 10.2.3:
Sensitization Processes at Semiconductor Surfaces Modified by Dye Monolayers / 10.2.4:
Quantum Efficiencies, Regeneration and Supersensitization / 10.2.5:
Kinetics of Electron Transfer between Dye and Semiconductor Electrode / 10.2.6:
Sensitization Processes at Nanocrystalline Semiconductor Electrodes / 10.2.7:
Comparison with Reactions at Metal Electrodes / 10.3:
Production of Excited Molecules by Electron Transfer / 10.4:
Applications / 11:
Photoelectrochemical Solar Energy Conversion / 11.1:
Electrochemical Photovoltaic Cells / 11.1.1:
Analysis of Systems / 11.1.1.1:
Dye-Sensitized Solar Cells / 11.1.1.2:
Conversion Efficiencies / 11.1.1.3:
Photoelectrolysis / 11.1.2:
Two-Electrode Configurations / 11.1.2.1:
Photochemical Diodes / 11.1.2.2:
Photoelectrolysis Driven by Photovoltaics / 11.1.2.3:
Efficiency / 11.1.2.4:
Production of Other Fuels / 11.1.3:
Photoelectrolysis of H[subscript 2]S / 11.1.3.1:
Photoelectrolysis of Halides / 11.1.3.2:
Photoreduction of CO[subscript 2] / 11.1.4:
Photocatalytic Reactions / 11.2:
Photodegradation of Pollutants / 11.2.1:
Light-Induced Chemical Reactions / 11.2.2:
Etching of Semiconductors / 11.3:
Light-Induced Metal Deposition / 11.4:
Appendices
References
Subject Index
Principles of Semiconductor Physics / 1:
Crystal Structure / 1.1:
Energy Levels in Solids / 1.2:
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