Electrochemical engineering across scales: from molecules to processes
Gespeichert in:
Weitere Verfasser: | |
---|---|
Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Weinheim
Wiley-VCH
2015
|
Schriftenreihe: | Advances in Electrochemical Science and Engineering
15 |
Schlagworte: | |
Online-Zugang: | Inhaltstext Inhaltsverzeichnis |
Beschreibung: | XIX, 328 S. Ill., graph. Darst. |
ISBN: | 9783527333455 9783527690633 |
Internformat
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Datensatz im Suchindex
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adam_text |
CONTENTS
SERIES PREFACE XI
PREFACE XIII
LIST OF CONTRIBUTORS XVII
1 THE ROLE OF ELECTROCHEMICAL ENGINEERING IN OUR ENERGY FUTURE 1
L LOUIS HEGEDUS
REFERENCES 5
2 THE PATH FROM INVENTION TO PRODUCT FOR THE MAGNETIC THIN FILM
HEAD 7
LUBOMYR T. ROMANKIW AND SOL KRONGELB
2.1 INTRODUCTION 7
2.2 THE STATE OF THE ART IN THE 1960S
8
2.2.1 THE PROCESSOR 10
2.2.2 MEMORY 10
2.2.3 DATASTORAGE 11
2.2.4 ELECTROPLATING TECHNOLOGY 14
2.3 FINDING THE RIGHT PATH TO PRODUCTION 14
2.3.1 FIRST DEMONSTRATIONS OF A THIN FILM HEAD 14
2.3.2 INTERDISCIPLINARY DESIGN OF A FUNCTIONAL HEAD 16
2.3.3 EARLY TIE-IN TO MANUFACTURING 18
2.3.4 THE INTEGRATION OF MANY INVENTIONS 21
2.4 KEY INVENTIONS FOR THIN FILM HEAD PRODUCTION 22
2.4.1 DEVICE STRUCTURES 24
2.4.2 THE PLATING PROCESS 24
2.4.2.1 THE PADDLE CELL 25
2.4.2.2 THE ELECTROPLATING BATH, DEPOSITION PARAMETERS, AND CONTROLS 29
2.4.3 PATTERNING 33
2.4.3.1 THROUGH-MASK PLATING 33
2.4.3.2 FRAME PLATING 37
2.4.3.3 ANCILLARY ISSUES IN PATTERN PLATING 41
2.4.4 MATERIALS 44
2.4.4.1 MAGNETIC MATERIALS STUDIES 44
HTTP://D-NB.INFO/1058702815
VI CONTENTS
2.4.4.2 HARD-BAKED RESIST AS INSULATION 45
2.5 CONCLUDING THOUGHTS SO
2.5.1 FABRICATION TECHNOLOGY - THE KEY TO A MANUFACTURED PRODUCT 50
2.5.2 MATCHING PRODUCT AND PROCESS 51
2.5.3 AN INTERDISCIPLINARY COMBINATION OF SCIENCE, ENGINEERING, AND
INTUITION 52
ACKNOWLEDGMENTS 55
REFERENCES 55
3 ELECTROCHEMICAL SURFACE PROCESSES AND OPPORTUNITIES FOR MATERIAL
SYNTHESIS
59
STANKO R. BRANKOVIC AND GIOVANNI ZANGARI
3.1 INTRODUCTION 59
3.2 UNDERPOTENTIAL DEPOSITION (UPD) 60
3.3 METAL DEPOSITION VIA SURFACE-LIMITED REDOX REPLACEMENT
OF UNDERPOTENTIALLY DEPOSITED METAL LAYER 63
3.3.1 GENERAL DESCRIPTION 63
3.3.2 STOICHIOMETRY OF SLRR REACTIONS AND DEPOSITION PROCESS 64
3.3.3 DRIVING FORCE FOR SLRR REACTION AND NUCLEATION RATE OF DEPOSITING
METAL 66
3.3.4 REACTION KINETICS OF SURFACE-LIMITED REDOX REPLACEMENT 69
3.3.5 FUTURE DIRECTIONS 74
3.4 UNDERPOTENTIAL CODEPOSITION (UPCD) 76
3.4.1 ENERGETICS: BEYOND THE THERMODYNAMIC APPROXIMATION 78
3.4.1.1 ION ADSORPTION AT THE ELECTRODE/ELECTROLYTE INTERFACE 78
3.4.1.2 POTENTIAL OF ZERO CHARGE (PZC) 79
3.4.1.3 SURFACE DEFECTS, RECONSTRUCTION, AND SEGREGATION 79
3.4.1.4 ATOMISTIC DESCRIPTION OF THE GROWTH PROCESS 80
3.4.2 KINETICS 80
3.4.3 EQUILIBRIUM ALLOY STRUCTURE AND PHASE FORMATION 85
3.4.3.1 BINARY ALLOYS FORMING SOLID SOLUTIONS AND ORDERED COMPOUNDS 86
3.4.3.2 INTERMETALLIC COMPOUNDS 87
3.4.3.3 ALLOYS IMMISCIBLE IN THE BULK 90
3.4.4 STRUCTURE AND MORPHOLOGY OF UPCD ALLOY FILMS 92
3.4.4.1 CRYSTALLOGRAPHIC STRUCTURE AND MICROSTRUCTURE 92
3.4.4.2 FILM MORPHOLOGY 94
3.4.5 APPLICATIONS OF UPCD GROWTH METHODS 95
3.4.5.1 CATALYSIS AND ELECTROCATALYSIS 96
3.4.5.2 PHOTOVOLTAICS 97
3.4.5.3 MAGNETIC RECORDING AND MICROSYSTEMS 99
ACKNOWLEDGMENTS 101
REFERENCES 101
CONTENTS I VII
4 MATHEMATICAL MODELING OF SELF-ORGANIZED POROUS ANODIC OXIDE
FILMS
107
KURTR.HEBERT
4.1 INTRODUCTION 107
4.2 PHENOMENOLOGY OF POROUS ANODIC OXIDE FORMATION 108
4.3 MECHANISMS FOR POROUS ANODIC OXIDE FORMATION 118
4.4 ELEMENTS OF POROUS ANODIC OXIDE MODELS 120
4.4.1 IONIC MIGRATION FLUXES AND FIELD EQUATIONS 120
4.4.2 BULK MOTION OF OXIDE 122
4.4.3 INTERFACIAL REACTIONS 123
4.4.4 BOUNDARY CONDITIONS 125
4.4.5 INTERFACE MOTION 126
4.5 MODELING RESULTS 128
4.5.1 STEADY-STATE POROUS LAYER GROWTH 128
4.5.2 LINEAR STABILITY ANALYSIS 130
4.5.3 MORPHOLOGY EVOLUTION 133
4.6 SUMMARY AND OUTLOOK 141
REFERENCES 141
5 ENGINEERING OF SELF-ORGANIZING ELECTROCHEMISTRY: POROUS ALUMINA
AND TITANIA NANOTUBES
145
CHONG-YONG LEE AND PATRIK SCHMUKI
5.1 INTRODUCTION 145
5.2 FORMATION AND GROWTH OF TI0
2
AND AL
2
O
S
NANOTUBES/PORES 147
5.2.1 GENERAL ASPECTS OF ELECTROCHEMICAL ANODIZATION AND
SELF-ORGANIZATION 147
5.2.2 SOME CRITICAL FACTORS/ASPECTS IN THE SELF-ORGANIZATION
PHENOMENOLOGY 149
5.2.2.1 DUPLEX OR DOUBLE WALL STRUCTURE OF A1
2
0
3
AND TIO, 152
5.2.2.2 TUBES VERSUS PORES 153
5.2.2.3 GEOMETRY CONTROL 154
5.3 IMPROVED ORDERING VIA NANOPATTERNING 161
5.3.1 A1
2
0
3
162
5.3.2 TIO, 163
5.4 CRYSTALLINITY AND COMPOSITION 164
5.5 APPLICATIONS 165
5.5.1 ANODIC A1
2
0
3
AS TEMPLATE MATERIALS 166
5.5.2 ANODIC TIO, FOR DYE-SENSITIZED SOLAR CELLS 168
5.5.2.1 TUBE GEOMETRY 170
5.5.2.2 CRYSTALLINITY 173
5.5.2.3 APPROACHES TO ENHANCE THE SURFACE AREA 174
5.5.2.4 DOPING 175
5.5.2.5 SINGLE WALL MORPHOLOGY 177
5.5.3 PROSPECT FOR COMMERCIALIZATION 177
5.5.3.1 PROCESSING SPEED 177
VIII CONTENTS
5.5.3.2 DESIGN: BACKSIDE VERSUS FRONT-SIDE ILLUMINATION 178
5.5.3.3 FLEXIBLE SUBSTRATE 180
5.5.3.4 SCALE-UP 180
5.5.3.5 LONG-TERM STABILITY 181
5.6 CONCLUSIONS 181
REFERENCES 182
6 DIFFUSION-INDUCED STRESS WITHIN CORE-SHELL STRUCTURES AND
IMPLICATIONS FOR ROBUST ELECTRODE DESIGN AND MATERIALS
SELECTION
193
MARK W. VERBRUGGE, YUE QI,
DANIEL
FT.
BAKER, AND
YANG-TSE CHENG
6.1 INTRODUCTION 193
6.2 AB INITIO SIMULATIONS: INFORMING CONTINUUM MODELS 19S
6.3 GOVERNING EQUATIONS FOR THE CONTINUUM MODEL 198
6.3.1 THERMODYNAMICS 198
6.3.2 SOLUTE DIFFUSION 199
6.3.3 SOLID MECHANICS 200
6.3.4 ANALYTIC SOLUTION FOR INITIAL STRESS DISTRIBUTION 205
6.4 RESULTS AND DISCUSSION 208
6.4.1 INITIAL CONDITION 209
6.4.2 TRANSIENT BEHAVIOR 212
6.4.3 APPLICATION TO A HOST-SEI CORE-SHELL SYSTEM 215
6.5 SUMMARY AND CONCLUSIONS 221
REFERENCES 221
7 COST-BASED DISCOVERY FOR ENGINEERING SOLUTIONS
227
BRIAN L SPATOCCO AND DONALD R. SADOWAY
7.1 INTRODUCTION 227
7.1.1 THE WINDS OF CHANGE: INTEGRATING INTERMITTENT RENEWABLES 227
7.1.2 COST IS THE DETERMINING FACTOR 229
7.1.3 THE PATH FORWARD 230
7.2 THE LIQUID METAL BATTERY AS A GRID STORAGE SOLUTION 230
7.2.1 PRINCIPLES OF OPERATION 230
7.2.2 STRENGTHS AND WEAKNESSES 231
7.2.2.1 SCIENTIFIC ADVANTAGES 231
12.2.2 TECHNOLOGY SCALE-UP 232
7.2.2.3 MARKET FLEXIBILITY 233
7.2.3 REVIEW OF COMPETITIVE TECHNOLOGIES 234
7.2.4 DOWN-SELECTION 235
7.2.4.1 COST 235
7.2.4.2 TEMPERATURE 237
7.2.4.3 SCALABILITY 239
7.3 HISTORICAL ODYSSEY 241
7.3.1 MOLTEN SALTS IN SODIUM ELECTRODEPOSITION 241
7.3.2 MOLTEN SALTS IN NUCLEAR REACTOR DEVELOPMENT 245
CONTENTS IX
7.3.2.1 AGGREGATED PROPERTIES 245
7.3.2.2 CORROSION MECHANISMS 246
7.3.3 MOLTEN SALTS IN ENERGY STORAGE DEVICES 252
7.3.4 THE WINDOW OF OPPORTUNITY 255
7.4 PROJECT DESCRIPTION 256
7.5 CONCLUSION 257
REFERENCES 257
8 MULTISCALE STUDY OF ELECTROCHEMICAL ENERGY SYSTEMS
263
HANY EL-SAYED, ALOIS KNOLL,
AND ULRICH
STIMMING
8.1 INTRODUCTION 263
8.2 ARCHITECTURES OF ENERGY SYSTEMS 265
8.2.1 THE SYSTEM AND ITS BOUNDARY CONDITIONS 266
8.2.2 ARCHITECTURES OF MULTISCALE ENERGY SYSTEMS 268
8.2.3 AGENT-BASED APPROACHES FOR RUN-TIME SIMULATION AND
OPTIMIZATION 275
8.3 THE BIG PICTURE 281
8.3.1 CENTRALIZED VERSUS DECENTRALIZED SYSTEMS 281
8.3.2 DECENTRALIZED ENERGY SYSTEMS: A CLOSER LOOK 282
8.4 STORAGE COMPONENTS 285
8.4.1 HOW TO STORE ENERGY 285
8.4.2 SELECTED ENERGY STORAGE DEVICES 286
8.4.2.1 LI-ION BATTERIES 286
8.4.2.2 POST LI-ION BATTERIES 288
8.4.2.3 REDOX FLOW BATTERIES 290
8.4.3 APPLICATION TO A CITY BLOCK 291
8.5 CONVERSION COMPONENTS, DEFC 292
8.5.1 INTRODUCTION TO DEFC 292
8.5.2 ETHANOL VERSUS OTHER FUELS 295
8.5.3 INDIRECT VERSUS DIRECT ETHANOL FUEL CELL 295
8.5.3.1 EFFECT OF TEMPERATURE ON DEFC PERFORMANCE 297
8.5.3.2 STACK HARDWARE AND DESIGN 297
8.6 MATERIALS AND MOLECULAR PROCESSES 299
8.6.1 DEFC COMPONENTS 299
8.6.2 MEA AND ELECTRODES 300
8.6.3 DEFC PROCESSES 301
8.6.3.1 ETHANOL OXIDATION REACTION IN ACIDIC MEDIA 301
8.6.4 ANODE CATALYSTS 303
8.6.4.1 PT-SN AS DEFC ANODE CATALYST 304
8.6.4.2 ETHANOL OXIDATION REACTION IN ALKALINE MEDIA 305
8.6.4.3 ELEVATED TEMPERATURE DIRECT ETHANOL FUEL CELL MEMBRANES - PROS
AND CONS 305
8.6.5 MODEL CATALYSTS 308
8.6.5.1 CREATING NANOSTRUCTURED MODEL SURFACES 309
8.6.5.2 ACIDIC MEDIA 310
X | CONTENTS
8.6.5.3 ALKALINE MEDIA 313
8.6.5.4 A FEW WORDS ABOUT CATHODE CATALYSTS (CONVENTIONAL AND MEOH
TOLERANT CATALYSTS) 314
8.7 CONCLUSIONS - FOLDING IT BACK 315
ACKNOWLEDGMENTS 316
REFERENCES 316
INDEX
323 |
any_adam_object | 1 |
author2 | Alkire, Richard C. 1941- |
author2_role | edt |
author2_variant | r c a rc rca |
author_GND | (DE-588)136277446 |
author_facet | Alkire, Richard C. 1941- |
building | Verbundindex |
bvnumber | BV042482769 |
classification_rvk | VE 6300 |
ctrlnum | (OCoLC)909875625 (DE-599)DNB1058702815 |
dewey-full | 540 660.297 |
dewey-hundreds | 500 - Natural sciences and mathematics 600 - Technology (Applied sciences) |
dewey-ones | 540 - Chemistry and allied sciences 660 - Chemical engineering |
dewey-raw | 540 660.297 |
dewey-search | 540 660.297 |
dewey-sort | 3540 |
dewey-tens | 540 - Chemistry and allied sciences 660 - Chemical engineering |
discipline | Chemie / Pharmazie |
format | Book |
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indexdate | 2024-08-03T02:17:04Z |
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isbn | 9783527333455 9783527690633 |
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physical | XIX, 328 S. Ill., graph. Darst. |
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record_format | marc |
series | Advances in Electrochemical Science and Engineering |
series2 | Advances in Electrochemical Science and Engineering |
spelling | Electrochemical engineering across scales from molecules to processes ed. by Richard C. Alkire ... Weinheim Wiley-VCH 2015 XIX, 328 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Advances in Electrochemical Science and Engineering 15 Angewandte Chemie (DE-588)4216597-0 gnd rswk-swf Elektrochemie (DE-588)4014241-3 gnd rswk-swf Chemische Verfahrenstechnik Elektrochemie (DE-588)4143413-4 Aufsatzsammlung gnd-content Elektrochemie (DE-588)4014241-3 s Angewandte Chemie (DE-588)4216597-0 s DE-604 Alkire, Richard C. 1941- (DE-588)136277446 edt Erscheint auch als Online-Ausgabe, EPUB 978-3-527-69212-5 Erscheint auch als Online-Ausgabe, MOBI 978-3-527-69213-2 Erscheint auch als Online-Ausgabe, PDF 978-3-527-69214-9 Advances in Electrochemical Science and Engineering 15 (DE-604)BV004176465 15 X:MVB text/html http://deposit.dnb.de/cgi-bin/dokserv?id=4783426&prov=M&dok_var=1&dok_ext=htm Inhaltstext DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=027917719&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Electrochemical engineering across scales from molecules to processes Advances in Electrochemical Science and Engineering Angewandte Chemie (DE-588)4216597-0 gnd Elektrochemie (DE-588)4014241-3 gnd |
subject_GND | (DE-588)4216597-0 (DE-588)4014241-3 (DE-588)4143413-4 |
title | Electrochemical engineering across scales from molecules to processes |
title_auth | Electrochemical engineering across scales from molecules to processes |
title_exact_search | Electrochemical engineering across scales from molecules to processes |
title_full | Electrochemical engineering across scales from molecules to processes ed. by Richard C. Alkire ... |
title_fullStr | Electrochemical engineering across scales from molecules to processes ed. by Richard C. Alkire ... |
title_full_unstemmed | Electrochemical engineering across scales from molecules to processes ed. by Richard C. Alkire ... |
title_short | Electrochemical engineering across scales |
title_sort | electrochemical engineering across scales from molecules to processes |
title_sub | from molecules to processes |
topic | Angewandte Chemie (DE-588)4216597-0 gnd Elektrochemie (DE-588)4014241-3 gnd |
topic_facet | Angewandte Chemie Elektrochemie Aufsatzsammlung |
url | http://deposit.dnb.de/cgi-bin/dokserv?id=4783426&prov=M&dok_var=1&dok_ext=htm http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=027917719&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
volume_link | (DE-604)BV004176465 |
work_keys_str_mv | AT alkirerichardc electrochemicalengineeringacrossscalesfrommoleculestoprocesses |