Self-organized morphology in nanostructured materials

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Weitere Verfasser: Shamery, Katharina al- 1958- (HerausgeberIn)
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Sprache:English
Veröffentlicht: Berlin ; Heidelberg Springer 2008
Schriftenreihe:Springer series in materials science 99
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Datensatz im Suchindex

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adam_text K. AL-SHAMERY J. PARISI (EDS.) SELF-ORGANIZED MORPHOLOGY IN NANOSTRUCTURED MATERIALS WITH 8 4 FIGURES SPRIN ER CONTENTS 1 ORGANIC CRYSTALLINE NANOFIBERS 1.1 INTRODUCTION 1 1.2 GROWTH OF ULTRATHIN FILMS: MOLECULAR ORIENTATION CONTROL 2 1.3 NEEDLE FILMS ON DEDICATED TEMPLATES: MUTUAL ORIENTATION AND MORPHOLOGY CONTROL OF NANOAGGREGATES 6 1.3.1 PIAIN MICA 6 1.3.2 AU-MODIFIED MICA 8 1.3.3 WATER-TREATED MICA 9 1.4 SELECTED APPLICATIONS IN NANO- AND MICROOPTICS 9 1.5 SUMMARY AND OUTLOOK: FUTURE DEVICES FROM ORGANIC NANOFIBERS ... 14 REFERENCES 15 2 TITANIUM-BASED MOLECULAR ARCHITECTURES FORMED BY SELF-ASSEMBLED REACTIONS 2.1 INTRODUCTION 17 2.1.1 RESULTS AND DISCUSSION 19 2.2 FORMATION OF MOLECULAR ARCHITECTURES 19 2.3 MOLECULAR ARCHITECTURES ACCOMPANIED BY RADICAL INDUCED C-C COUPLING REACTIONS 33 2.4 MOLECULAR ARCHITECTURES BASED ON C-C COUPLING REACTIONS INITIATED BY C-H BOND ACTIVATION REACTIONS 38 2.5 CONCLUSION AND FUTURE DIRECTIONS 42 REFERENCES 43 3 SELF-ASSEMBLIES OF ORGANIC AND INORGANIC MATERIALS 3.1 INTRODUCTION 47 3.2 STRUCTURE OF COLLOIDAL SELF-ASSEMBLIES MADE OF SURFACTANTS AND USED AS TEMPLATES 49 3.3 PRODUCTION OF NANOCRYSTALS BY USING COLLOIDAL SOLUTIONS AS TEMPLATES AND THEIR LIMITATIONS 51 3.4 SELF-ORGANIZATION OF NANOCRYSTALS 55 X CONTENTS 3.5 COLLOIDAL NANOLITHOGRAPHY BY USING NANOCRYSTALS ORGANIZED IN A GIVEN STRUCTURE AS MASKS [83] 61 3.6 CONCLUSION 64 REFERENCES 64 4 SELF-ASSEMBLED NANOPARTICLE RINGS 4.1 INTRODUCTION 67 4.2 EXPERIMENTAL FORMATION OF NANOPARTICLE RINGS 68 4.2.1 SPREADING OF POLYMER SOLUTION ON WATER SURFACE 68 4.2.2 HDA PANCAKE STRUKTURES 69 4.2.3 COPT 3 NANOPARTICLE RINGS 72 4.3 MODEL FOR THE FORMATION OF HDA PANCAKES 74 4.3.1 PHASE SEPARATION OF BINARY SOLUTION 74 4.3.2 RUPTURE OF THIN HDA FILM INTO MICROMETER-SIZE PANCAKES ... 78 4.4 FORMATION OF A NANOPARTICLE RING AT THE EDGE OF AN HDA PANCAKE 81 4.4.1 PINNING OF AN HDA MICROMETER-SIZE PANCAKE 81 4.4.2 FORCES ACTING ON THE NANOPARTICLE LOCATED IN THE INFERIOR OF PANCAKE 82 4.4.3 FORCES ACTING ON THE NANOPARTICLE LOCATED AT THE EDGE OF PANCAKE 84 4.5 SUMMARY AND CONCLUSIONS 85 REFERENCES 86 5 PATTERNS OF NANODROPLETS: THE BELOUSOV*ZHABOTINSKY- AEROSOL OT-MICROEMULSION SYSTEM 5.1 INTRODUCTION 89 5.2 THE BZ-AOT SYSTEM 90 5.2.1 THE BZ REACTION 90 5.2.2 AOT MICROEMULSIONS 91 5.2.3 THE BZ-AOT SYSTEM 93 5.3 EXPERIMENTAL RESULTS 94 5.3.1 EXPERIMENTAL CONFIGURATION 94 5.3.2 TURING PATTERNS 95 5.3.3 PATTERNS ASSOCIATED WITH A FAST-DIFFUSING ACTIVATOR 97 5.3.4 COMPLEX PATTERNS - DASHES AND SEGMENTS 100 5.3.5 LOCALIZCD PATTERNS 101 5.4 THEORETICAL CONSIDERATIONS 103 5.5 CONSTRUCTING A MODEL 104 5.5.1 LINEAR STABILITY ANALYSIS AND TYPES OF BIFURCATIONS 106 5.5.2 RESULTS OF NUMERICAL SIMULATIONS 108 5.6 CONCLUSION AND FUTURE DIRECTIONS 109 REFERENCES 112 CONTENTS XI 6 HONEYCOMB CARBON NETWORKS: PREPARATION, STRUCTURE, AND TRANSPORT 6.1 INTRODUCTION 115 6.2 EXPERIMENTAL FORMATION OF POLYMER HONEYCOMB STRUCTURES 118 6.2.1 SPREADING OF ONE LIQUID ON ANOTHER 118 6.2.2 PRODUCTION OF POLYMER NETWORKS 119 6.2.3 STRUCTURAL FORMS OF NITROCELLULOSE NETWORKS 120 6.2.4 STRUCTURAL FORMS OF POLY(P-PHENYLCNCVINYLENE) AND POLY (3-OCTYLTHIOPHENE) NETWORKS 123 6.3 MODEL FOR THE FORMATION OF HONEYCOMB STRUCTURES IN POLYMER FILMS 125 6.3.1 WATER DROPLET ON THE FLUID POLYMER LAYER 125 6.4 NITROCELLULOSE NETWORKS AS PRECURSOR FOR CARBON NETWORKS 132 6.4.1 TEMPERATURE DEPENDENCE OF HOPPING TRANSPORT IN CARBON NETWORKS 133 6.4.2 ELECTRICAL FIELD DEPENDENCE OF HOPPING TRANSPORT IN CARBON NETWORKS 142 6.5 SUMMARY AND CONCLUSIONS 150 REFERENCES 151 7 CHEMICAL WAVES IN LIVING CELLS 7.1 INTRODUCTION 155 7.2 WAVES OF METABOLIE ACTIVITY 156 7.3 CALCIUM SIGNALING WAVES 160 7.4 CONCLUSIONS 164 REFERENCES 166 INDEX 169
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physical XI, 173 S. Ill., graph. Darst.
publishDate 2008
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publisher Springer
record_format marc
series Springer series in materials science
series2 Springer series in materials science
spellingShingle Self-organized morphology in nanostructured materials
Springer series in materials science
Nanostructured materials
Self-organizing systems
Nichtlineare Dynamik (DE-588)4126141-0 gnd
Nanostrukturiertes Material (DE-588)4342626-8 gnd
Selbstorganisation (DE-588)4126830-1 gnd
Strukturbildung (DE-588)4541700-3 gnd
subject_GND (DE-588)4126141-0
(DE-588)4342626-8
(DE-588)4126830-1
(DE-588)4541700-3
title Self-organized morphology in nanostructured materials
title_auth Self-organized morphology in nanostructured materials
title_exact_search Self-organized morphology in nanostructured materials
title_full Self-organized morphology in nanostructured materials K. Al-Shamery ... (ed.)
title_fullStr Self-organized morphology in nanostructured materials K. Al-Shamery ... (ed.)
title_full_unstemmed Self-organized morphology in nanostructured materials K. Al-Shamery ... (ed.)
title_short Self-organized morphology in nanostructured materials
title_sort self organized morphology in nanostructured materials
topic Nanostructured materials
Self-organizing systems
Nichtlineare Dynamik (DE-588)4126141-0 gnd
Nanostrukturiertes Material (DE-588)4342626-8 gnd
Selbstorganisation (DE-588)4126830-1 gnd
Strukturbildung (DE-588)4541700-3 gnd
topic_facet Nanostructured materials
Self-organizing systems
Nichtlineare Dynamik
Nanostrukturiertes Material
Selbstorganisation
Strukturbildung
url http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=016480100&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA
volume_link (DE-604)BV000683335
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