ソフトマター・ナノテクノロジー<br>Soft Matter Nanotechnology : From Structure to Function (1. Auflage. 2015. 456 S. 120 SW-Abb., 30 Farbabb. 244 mm)

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ソフトマター・ナノテクノロジー
Soft Matter Nanotechnology : From Structure to Function (1. Auflage. 2015. 456 S. 120 SW-Abb., 30 Farbabb. 244 mm)

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  • 製本 Hardcover:ハードカバー版
  • 商品コード 9783527337224

Full Description

Using the well-honed tools of nanotechnology, this book presents breakthrough results in soft matter research, benefitting from the synergies between the chemistry, physics, biology, materials science, and engineering communities.
The team of international authors delves beyond mere structure-making and places the emphasis firmly on imparting functionality to soft nanomaterials with a focus on devices and applications. Alongside reviewing the current level of knowledge, they also put forward novel ideas to foster research and development in such expanding fields as nanobiotechnology and nanomedicine. As such, the book covers DNA-induced nanoparticle assembly, nanostructured substrates for circulating tumor cell capturing, and organic nano field effect transistors, as well as advanced dynamic gels and self-healing electronic nanodevices.
With its interdisciplinary approach this book gives readers a complete picture of nanotechnology with soft matter.

Contents

List of Contributors XIII

Preface XIX

1 Chemical Reactions for the Synthesis of Organic Nanomaterials on Surfaces 1
Hong-Ying Gao, Oscar Díaz Arado, Harry Mönig, and Harald Fuchs

1.1 Introduction 1

1.1.1 Ullmann Coupling 2

1.1.2 Condensation Reactions 5

1.2 Alkane Polymerization 6

1.3 Azide-Alkyne Cycloaddition 6

1.4 Glaser Coupling 9

1.5 Decarboxylative Polymerization of Acids 13

1.6 Conclusions 16

Acknowledgments 17

References 17

2 Self-Assembly of Organic Molecules into Nanostructures 21
Long Qin, Kai Lv, Zhaocun Shen, and Minghua Liu

2.1 Introduction 21

2.2 Classification of Nanostructures 22

2.3 General Self-Assembly Method for the Construction of Nanostructures 23

2.3.1 Reprecipitation 24

2.3.2 Gelation 26

2.3.3 Langmuir-Blodgett Technique 27

2.3.4 Layer-by-Layer Assembly 29

2.3.5 Self-Assembly in Solution 31

2.4 Molecular Design and Building Blocks 33

2.4.1 Amphiphiles 33

2.4.1.1 Typical Amphiphiles 35

2.4.1.2 Bolaamphiphiles 35

2.4.1.3 Gemini Amphiphiles 37

2.4.1.4 Triangular Amphiphiles 38

2.4.1.5 Supra-amphiphiles 40

2.4.2 Gelators 41

2.4.2.1 Cholesterol-Based Gelators 41

2.4.2.2 Alkane- and Fatty Acid-Based Gelators 43

2.4.2.3 Nucleoside-Based Gelators 43

2.4.2.4 Amino Acid- and Peptide-Based Gelators 45

2.4.2.5 Carbohydrate-Based Gelators 50

2.4.3 π-Functionalized System 51

2.4.3.1 Porphyrin 51

2.4.3.2 Molecular Graphene 53

2.4.3.3 π-Conjugated Gelators 54

2.4.4 Dendrimers 55

2.5 Functions of Some Typical Nanostructures 56

2.5.1 Vesicles/Hollow Spheres 56

2.5.2 Nanotubes 62

2.5.2.1 Self-Assembled Lipid Nanotubes 62

2.5.2.2 Self-Assembled Peptide Nanotubes 65

2.5.2.3 Functionalization of Nanotubes 69

2.5.3 Nanofibers 74

2.6 Conclusions and Outlook 79

References 80

3 Supramolecular Nanotechnology: Soft Assembly of Hard Nanomaterials 95
Katsuhiko Ariga, Qingmin Ji, and Jonathan P. Hill

3.1 Introduction 95

3.2 Soft Cell-Like Structures with Hard Nanomaterials 96

3.2.1 Cerasome: Inorganic Surface Cell 96

3.2.2 Flake-Shell Capsule 98

3.2.3 Metallic Cells 100

3.3 For Hierarchical Assembly: LbL and Others 101

3.3.1 Mesoporous Carbon in Hierarchical Assembly 101

3.3.2 Mesoporous Carbon Capsule in Layer-by-Layer Film 103

3.3.3 Layer-by-Layer Assembly of Graphene and Ionic Liquids 104

3.3.4 LbL Films of Mesoporous Silica Capsule for Controlled Release 105

3.4 Summary 107

Acknowledgments 107

References 107

4 Nanoparticles: Important Tools to Overcome the Blood-Brain Barrier and Their Use for Brain Imaging 109
Ruirui Qiao, Mingyuan Gao, and Hans-Joachim Galla

4.1 Introduction 109

4.2 Physiology of the Blood-Brain Barrier 110

4.2.1 The Endothelial Blood-Brain Barrier 110

4.2.2 The Blood-CSF Barrier 111

4.2.3 Regulation of the Barrier Tightness 112

4.2.4 Transport Routes and Drug Permeability across the Blood-Brain Barrier 112

4.2.5 In vitro Models of the BBB and Blood-CSF Barrier 114

4.3 Definition and Type of Nanoparticles and Nanocarriers for Brain Uptake 115

4.3.1 Organic Nanoparticles 115

4.3.1.1 Polymeric Nanoparticles 116

4.3.1.2 Liposomes and Lipidic Nanoparticles 117

4.3.1.3 Nanomeric Emulsions, Micelles, and Nanogels 117

4.3.1.4 Carbohydrates 118

4.3.2 Inorganic Nanoparticles 118

4.3.2.1 Magnetic Nanoparticles 119

4.3.2.2 Semiconductor Nanoparticles 119

4.3.2.3 Gold Nanoparticles 120

4.3.3 Surface Functionalization of Nanoparticles for BBB Transport 120

4.4 Nanoparticles and Imaging 122

4.4.1 Magnetic Resonance Imaging (MRI) 122

4.4.2 Optical Imaging 123

4.5 Conclusion and Outlook 124

Acknowledgment 124

References 125

5 Organic Nanophotonics: Controllable Assembly of Optofunctional Molecules toward Low-Dimensional Materials with Desired Photonic Properties 131
Yongli Yan and Yong Sheng Zhao

5.1 Introduction 131

5.2 From Molecules to Assembly 132

5.2.1 Inherent Intermolecular Interactions 133

5.2.2 Influences of External Factors 137

5.2.2.1 Solvent Effect in Assembly 137

5.2.2.2 Site-Selected Assembly on Specific Substrates 138

5.3 From Assembly to Structures 139

5.3.1 Structure Control through Intermolecular Interactions 140

5.3.1.1 Controlling the Structures via Molecular Design 140

5.3.1.2 Structures Obtained from the Synergistic Assembly of Different Compounds 141

5.3.2 Structure Modulation through External Factors 143

5.3.2.1 Structures versus Aging Time 143

5.3.2.2 Heterostructures through Site-Specific Epitaxial Growth 144

5.4 From Structures to Photonic Properties 145

5.4.1 Nanowire Heterojunctions 145

5.4.1.1 Dendritic Heterostructures as Optical Routers 146

5.4.1.2 Nanowire p-n Junctions as Photoelectric Transducers 146

5.4.2 Doped Nanostructures 149

5.4.2.1 Uniformly Doped Structures 149

5.4.2.2 Gradiently Doped Structures 151

5.4.2.3 Core/Sheath Structures 153

5.5 Conclusions 154

Acknowledgments 157

References 157

6 Functional Lipid Assemblies by Dip-Pen Nanolithography and Polymer Pen Lithography 161
Michael Hirtz, Sylwia Sekula-Neuner, Ainhoa Urtizberea, and Harald Fuchs

6.1 Introduction 161

6.2 Techniques and Methods 161

6.2.1 Dip-Pen Nanolithography 161

6.2.2 Polymer Pen Lithography 163

6.3 Ink Transfer Models 164

6.3.1 DPN of Liquid Inks 165

6.3.2 DPN of Diffusive Inks 165

6.3.3 DPN of Lipid Inks 166

6.3.4 Ink Transfer in PPL 170

6.4 Applications 172

6.4.1 Applications in Sensing 172

6.4.2 Biological Applications 176

6.5 Conclusions 182

Acknowledgments 182

References 182

7 PEG-Based Antigen-Presenting Cell Surrogates for Immunological Applications 187
Ilia Platzman, Gerri Kannenberg, Jan-Willi Janiesch, Jovana Matic ì, and Joachim P. Spatz

7.1 Introduction 187

7.2 Elastic Nanopatterned and Specifically Biofunctionalized 2D PEG-DA Hydrogels: General Properties 189

7.2.1 Block Copolymer Micellar Nanolithography (BCML) 189

7.2.2 Fabrication and Characterization of Nanopatterned PEG-DA Hydrogels 191

7.2.3 Biofunctionalization 194

7.2.4 Cell Experiments 195

7.2.4.1 T-Cells Isolation 195

7.2.4.2 T-Cells Stimulation 195

7.2.4.3 T-Cells Proliferation 196

7.2.4.4 Results 196

7.3 Nanostructured PEG-DA Hydrogel Beads: General Properties 198

7.3.1 Surfactant Synthesis 200

7.3.2 Fabrication of Nanostructured PEG-DA Hydrogel Beads by Droplet-Based Microfluidics 201

7.3.3 Characterization of Nanostructured PEG-DA Hydrogel Beads 203

7.3.4 Biofunctionalization 204

7.4 Nanostructured and Specifically Biofunctionalized Droplets of Water-in-Oil Emulsion: General Properties 205

7.4.1 Surfactant Synthesis 207

7.4.2 Droplet-Based Microfluidics 209

7.4.3 Characterization of the Gold Nanostructured Droplets of Water-in-Oil Emulsion 209

7.4.4 Biofunctionalization of the Nanostructured Droplets 209

7.4.5 Cell Experiments 211

7.4.5.1 Cell Culture 211

7.4.5.2 Cell Recovery and Live/Dead Staining 212

7.4.5.3 Results 212

7.5 Summary and Outlook for the Future 213

Acknowledgments 213

References 213

8 Soft Matter Assembly for Atomically Precise Fabrication of Solid Oxide 217
Norifusa Satoh

8.1 Introduction 217

8.2 The Ultimate Goal of Nanotechnology: Atomically Precise Fabrication 217

8.3 Soft Mater Assembly for Atomically Precise Oxide Layers 220

8.4 Soft Matter Assembly for Atomically Precise Oxide Dots 221

8.5 Summary for the Future Works 224

References 225

9 Conductive Polymer Nanostructures 233
Lin Jiang, Carsten Hentschel, Bin Dong, and Lifeng Chi

9.1 Introduction 233

9.2 Solution-Based Synthesis of Conducting Polymer Nanostructures 234

9.2.1 Soft Template Synthesis 234

9.2.2 Hard Template Method 236

9.3 Substrate-Based Fabrication of Conducting Polymer Nanostructures 237

9.3.1 Add to Surface 237

9.3.1.1 Direct Writing 237

9.3.1.2 In Situ Synthesis or Assembly 238

9.3.2 Remove from Surface 242

9.3.2.1 Nanoscratching 242

9.3.2.2 Etching 243

9.4 Electrospinning Technique of Conducting Polymer 245

9.5 Summary and Outlook 250

References 251

10 DNA-Induced Nanoparticle Assembly 259
Anne Buchkremer and Ulrich Simon

10.1 Introduction 259

10.2 DNA as a Template Material 262

10.2.1 On Modified Linear DNA Strands 262

10.2.2 On DNA Origami Structures 265

10.2.3 On Geometrically Tailored DNA 266

10.3 DNA as Ligand 267

10.3.1 DNA Functionalization of Gold Nanoparticles and Network Formation 267

10.3.2 Extended Superstructures 271

10.3.3 Finite Size DNA-AuNP Assemblies 273

10.3.4 Aggregates Composed of Different Particle Geometries and Morphologies 279

10.4 Applications 282

10.5 Summary 286

References 287

11 Nanostructured Substrates for Circulating Tumor Cell Capturing 293
Jingxin Meng, Hongliang Liu, and Shutao Wang

11.1 Introduction 293

11.2 Nanostructured Substrates for CTC Capturing 294

11.2.1 Nanoparticles 295

11.2.2 Nanofractals 297

11.2.3 Nanowires 298

11.2.4 Nanoposts/pillars 300

11.2.5 Nanotubes 302

11.2.6 Nanofibers 303

11.2.7 Nanopores 304

11.3 Nanostructured Substrates for Other Cells Capturing 306

11.4 Conclusions and Perspectives 306

References 307

12 Organic Nano Field-Effect Transistor 309
Yonggang Zhen and Wenping Hu

12.1 Introduction 309

12.2 The Fabrication of Organic Semiconductor Nanostructures 310

12.2.1 Vapor-Phase Method 310

12.2.2 Solution Process 317

12.2.3 Other Methods 328

12.3 Device Structures of Organic Nano Field-Effect Transistor 332

12.4 The Preparation of Organic Nano Field-Effect Transistor 335

12.4.1 The Transfer of Organic Nanocrystals 335

12.4.2 Electrode of Organic Semiconductor Nanocrystal Field-Effect Transistor 339

12.5 Properties of Organic Nanoscale Field-Effect Transistor 345

12.6 Application of Organic Nano-FETs 347

12.7 Summary and Outlook 350

References 351

13 Advanced Dynamic Gels 357
Rekha G. Shrestha and Masanobu Naito

13.1 Introduction 357

13.2 Gels in Nature 358

13.3 Characterization of VEGs 359

13.3.1 Rheometer 359

13.3.2 Small-Angle Scattering 360

13.3.3 Transmission Electron Microscopy 361

13.4 Redox-Responsive VEGs 362

13.5 pH-Responsive VEGs 363

13.6 Temperature-Responsive VEGs 364

13.7 Photoresponsive VEGs 369

13.8 Applications 373

13.9 Conclusions 374

13.10 Theory 375

References 379

14 Micro/Nanocrystal Conversion beyond Inorganic Nanostructures 385
Jiansheng Wu, Li Junbo, and Qichun Zhang

14.1 Introduction 385

14.2 Micro/Nanostructure Conversion through Charge Transfer Complex Formation 385

14.3 Micro/Nanostructure Conversion through Ion and Ligand Exchange 388

14.4 Micro/Nanostructure Conversion through Reduction 391

14.5 Micro/Nanostructure Conversion through Photoinduced Reaction 392

14.6 Micro/Nanostructure Conversion through Thermal-induced Reaction 394

14.7 Properties and Applications 395

14.7.1 Optical Properties 395

14.7.2 Electronic Properties and Information Storage 396

14.7.3 Mechanical Properties and Photomechanical Actuator 397

14.8 Summary and Outlook 397

References 398

15 Self-Healing Electronic Nanodevices 401
Li Zhang, Bevita K. Chandran, and Xiaodong Chen

15.1 Introduction 401

15.2 Self-Healing Materials 402

15.3 Self-Healing Electrical Conductors 403

15.4 Self-Healing in Energy Storage Devices 408

15.5 Self-Healing Electronic Skin 414

15.6 Conclusive Remarks and Outlook 415

References 416

Index 419

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