Novel electrochemical energy storage devices: materials, architectures and future trends
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Hauptverfasser: | , , |
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Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Weinheim, Germany
Wiley-VCH
2021
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Schlagworte: | |
Online-Zugang: | http://www.wiley-vch.de/publish/dt/books/ISBN978-3-527-34579-3/ Inhaltsverzeichnis |
Beschreibung: | 310 Seiten 24.4 cm x 17 cm |
ISBN: | 9783527345793 3527345795 |
Internformat
MARC
LEADER | 00000nam a22000008c 4500 | ||
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005 | 20211116 | ||
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015 | |a 20,N51 |2 dnb | ||
016 | 7 | |a 1223197115 |2 DE-101 | |
020 | |a 9783527345793 |c : circa EUR 139.00 (DE) (freier Preis) |9 978-3-527-34579-3 | ||
020 | |a 3527345795 |9 3-527-34579-5 | ||
024 | 3 | |a 9783527345793 | |
028 | 5 | 2 | |a Bestellnummer: 1134579 000 |
035 | |a (OCoLC)1263283082 | ||
035 | |a (DE-599)DNB1223197115 | ||
040 | |a DE-604 |b ger |e rda | ||
041 | 0 | |a eng | |
044 | |a gw |c XA-DE-BW | ||
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084 | |a ZN 8730 |0 (DE-625)157644: |2 rvk | ||
084 | |8 1\p |a 540 |2 23sdnb | ||
100 | 1 | |a Li, Feng |e Verfasser |4 aut | |
245 | 1 | 0 | |a Novel electrochemical energy storage devices |b materials, architectures and future trends |c Feng Li, Lei Wen, Hu-ming Cheng |
264 | 1 | |a Weinheim, Germany |b Wiley-VCH |c 2021 | |
300 | |a 310 Seiten |c 24.4 cm x 17 cm | ||
336 | |b txt |2 rdacontent | ||
337 | |b n |2 rdamedia | ||
338 | |b nc |2 rdacarrier | ||
650 | 0 | 7 | |a Lithium-Ionen-Akkumulator |0 (DE-588)7681721-0 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Elektrochemische Energiequelle |0 (DE-588)4151755-6 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Energiespeicher |0 (DE-588)4152230-8 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Elektrolytkondensator |0 (DE-588)4132068-2 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Elektrochemische Energieumwandlung |0 (DE-588)4151758-1 |2 gnd |9 rswk-swf |
653 | |a Chemie | ||
653 | |a Chemistry | ||
653 | |a Electrochemistry | ||
653 | |a Elektrochemie | ||
653 | |a Energie | ||
653 | |a Energy | ||
653 | |a Hydrogen, Batteries & Fuel Cells | ||
653 | |a Materialien f. Energiesysteme | ||
653 | |a Materials for Energy Systems | ||
653 | |a Materials Science | ||
653 | |a Materialwissenschaften | ||
653 | |a Wasserstoff, Batterien u. Brennstoffzellen | ||
653 | |a CHA0: Elektrochemie | ||
653 | |a EG32: Wasserstoff, Batterien u. Brennstoffzellen | ||
653 | |a MSL0: Materialien f. Energiesysteme | ||
689 | 0 | 0 | |a Elektrochemische Energiequelle |0 (DE-588)4151755-6 |D s |
689 | 0 | 1 | |a Elektrochemische Energieumwandlung |0 (DE-588)4151758-1 |D s |
689 | 0 | |5 DE-604 | |
689 | 1 | 0 | |a Energiespeicher |0 (DE-588)4152230-8 |D s |
689 | 1 | 1 | |a Elektrochemische Energiequelle |0 (DE-588)4151755-6 |D s |
689 | 1 | 2 | |a Elektrochemische Energieumwandlung |0 (DE-588)4151758-1 |D s |
689 | 1 | 3 | |a Lithium-Ionen-Akkumulator |0 (DE-588)7681721-0 |D s |
689 | 1 | 4 | |a Elektrolytkondensator |0 (DE-588)4132068-2 |D s |
689 | 1 | |5 DE-604 | |
700 | 1 | |a Wen, Lei |e Verfasser |0 (DE-588)1237274087 |4 aut | |
700 | 1 | |a Cheng, Hui-ming |e Verfasser |0 (DE-588)1237274176 |4 aut | |
710 | 2 | |a Wiley-VCH |0 (DE-588)16179388-5 |4 pbl | |
776 | 0 | 8 | |i Erscheint auch als |n Online-Ausgabe, PDF |z 978-3-527-82104-4 |
776 | 0 | 8 | |i Erscheint auch als |n Online-Ausgabe, EPUB |z 978-3-527-82106-8 |
776 | 0 | 8 | |i Erscheint auch als |n Online-Ausgabe |z 978-3-527-82105-1 |
856 | 4 | 2 | |m X:MVB |u http://www.wiley-vch.de/publish/dt/books/ISBN978-3-527-34579-3/ |
856 | 4 | 2 | |m DNB Datenaustausch |q application/pdf |u http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=032763568&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |3 Inhaltsverzeichnis |
999 | |a oai:aleph.bib-bvb.de:BVB01-032763568 | ||
883 | 1 | |8 1\p |a vlb |d 20201211 |q DE-101 |u https://d-nb.info/provenance/plan#vlb |
Datensatz im Suchindex
_version_ | 1804182592990216192 |
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adam_text | CONTENTS
PREFACE
XIII
ABBREVIATIONS
XV
1
INTRODUCTION
I
1.1
ENERGY
CONVERSION
AND
STORAGE:
A
GLOBAL
CHALLENGE
1
1.2
DEVELOPMENT
HISTORY
OF
ELECTROCHEMICAL
ENERGY
STORAGE
3
1.3
CLASSIFICATION
OF
ELECTROCHEMICAL
ENERGY
STORAGE
4
1.4
LIBS
AND
ECS:
AN
APPROPRIATE
ELECTROCHEMICAL
ENERGY
STORAGE
6
1.5
SUMMARY
AND
OUTLOOK
10
REFERENCES
10
2
MATERIALS
AND
FABRICATION
15
2.1
MECHANISMS
AND
ADVANTAGES
OF
LIBS
15
2.1.1
PRINCIPLES
15
2.1.2
ADVANTAGES
AND
DISADVANTAGES
16
2.2
MECHANISMS
AND
ADVANTAGES
OF
ECS
18
2.2.1
CATEGORIES
18
2.2.2
EDLCS
18
2.2.3
PSEUDOCAPACITOR
20
2.2.4
HYBRID
CAPACITORS
21
2.3
ROADMAP
OF
CONVENTIONAL
MATERIALS
FOR
LIBS
22
2.4
TYPICAL
POSITIVE
MATERIALS
FOR
LIBS
23
2.4.1
LICOO
2
MATERIALS
23
2.4.2
LINIO
2
AND
ITS
DERIVATIVES
25
2.4.3
LIMN
2
O
4
MATERIAL
26
2.4.4
LIFEPO
4
MATERIAL
27
VI
CONTENTS
2.4.5
LITHIUM-MANGANESE-RICH
MATERIALS
28
2.4.6
COMMERCIAL
STATUS
OF
MAIN
POSITIVE
MATERIALS
28
2.5
TYPICAL
NEGATIVE
MATERIALS
FOR
LIBS
29
2.5.1
GRAPHITE
29
2.5.2
SOFT
AND
HARD
CARBON
31
2.6
NEW
MATERIALS
FOR
LIBS
33
2.6.1
NANOCARBON
MATERIALS
33
2.6.2
ALLOY-BASED
MATERIALS
35
2.6.3
METAL
LITHIUM
NEGATIVE
39
2.7
MATERIALS
FOR
CONVENTIONAL
ECS
39
2.7.1
POROUS
CARBON
MATERIALS
40
2.7.2
TRANSITION
METAL
OXIDES
41
2.7.3
CONDUCTING
POLYMERS
42
2.8
ELECTROLYTES
AND
SEPARATORS
42
2.8.1
ELECTROLYTES
42
2.8.2
SEPARATORS
45
2.9
EVALUATION
METHODS
46
2.9.1
EVALUATION
CRITERIA
FOR
LIBS
46
2.9.2
THEORETICAL
GRAVIMETRIC
AND
VOLUMETRIC
ENERGY
DENSITY
46
2.9.3
PRACTICAL
ENERGY
AND
POWER
DENSITY
OF
LIBS
47
2.9.4
CYCLE
LIFE
48
2.9.5
SAFETY
48
2.9.6
EVALUATION
METHODS
FOR
ECS
49
2.10
PRODUCTION
PROCESSES
FOR
THE
FABRICATION
50
2.10.1
DESIGN
50
2.10.2
MIXING,
COATING,
CALENDERING,
AND
WINDING
51
2.10.3
ELECTROLYTE
INJECTING
AND
FORMATION
51
2.11
PERSPECTIVES
51
REFERENCES
53
3
FLEXIBLE
CELLS:
THEORY
AND
CHARACTERIZATIONS
67
3.1
LIMITATIONS OF
THE
CONVENTIONAL
CELLS
67
3.1.1
MECHANICAL
PROPERTIES
OF
CONVENTIONAL
MATERIALS
67
3.1.2
LIMITATIONS
OF
CONVENTIONAL
ARCHITECTURES
68
3.1.3
LIMITATIONS
OF
ELECTROLYTES
69
CONTENTS
VII
3.2
MECHANICAL
PROCESS
FOR
BENDABLE
CELLS
69
3.2.1
EFFECT
OF
THICKNESS
70
3.2.2
EFFECT
OF
FLEXIBLE
SUBSTRATES
AND
NEUTRAL
PLANE
71
3.3
MECHANICS
OF
STRETCHABLE
CELLS
72
3.3.1
WAVY
ARCHITECTURES
BY
SMALL
DEFORMATION
BUCKLING
PROCESS
72
3.3.2
WAVY
ARCHITECTURES
BY
LARGE
DEFORMATION
BUCKLING
PROCESS
74
3.3.3
ISLAND
BRIDGE
ARCHITECTURES
75
3.4
STATIC
ELECTROCHEMICAL
PERFORMANCE
OF
FLEXIBLE
CELLS
76
3.5
DYNAMIC
PERFORMANCE
OF
FLEXIBLE
CELLS
77
3.5.1
BENDING
CHARACTERIZATION
78
3.5.2
STRETCHING
CHARACTERIZATION
78
3.5.3
CONFORMABILITY
TEST
79
3.5.4
STRESS
SIMULATION
BY
FINITE
ELEMENT
ANALYSIS
79
3.5.5
DYNAMIC
ELECTROCHEMICAL
PERFORMANCE
DURING
BENDING
83
3.5.6
DYNAMIC
ELECTROCHEMICAL
PERFORMANCE
DURING
STRETCHING
85
3.6
SUMMARY
AND
PERSPECTIVES
90
REFERENCES
90
4
FLEXIBLE
CELLS:
MATERIALS
AND
FABRICATION
TECHNOLOGIES
95
4.1
CONSTRUCTION
PRINCIPLES
OF
FLEXIBLE
CELLS
95
4.2
SUBSTRATE
MATERIALS
FOR
FLEXIBLE
CELLS
95
4.2.1
POLYMER
SUBSTRATES
96
4.2.2
PAPER
SUBSTRATE
97
4.2.3
TEXTILE
SUBSTRATE
98
4.3
ACTIVE
MATERIALS
FOR
FLEXIBLE
CELLS
98
4.3.1
CNTS
98
4.3.2
GRAPHENE
99
4.3.3
LOW-DIMENSIONAL
MATERIALS
99
4.4
ELECTROLYTES
FOR
FLEXIBLE
LIBS
101
4.4.1
INORGANIC
SOLID-STATE
ELECTROLYTES
FOR
FLEXIBLE
LIBS
102
4.4.2
SOLID-STATE
POLYMER
ELECTROLYTES
FOR
FLEXIBLE
LIBS
104
VIII
CONTENTS
4.5
ELECTROLYTES
FOR
FLEXIBLE
ECS
104
4.6
NONCONDUCTIVE
SUBSTRATES-BASED
FLEXIBLE
CELLS
107
4.6.1
PAPER-BASED
FLEXIBLE
CELLS
108
4.6.2
TEXTILES-BASED
FLEXIBLE
CELLS
112
4.6.3
POLYMER
SUBSTRATES-BASED
FLEXIBLE
CELLS
117
4.7
CNT
AND
GRAPHENE-BASED
FLEXIBLE
CELLS
121
4.7.1
FREE-STANDING
GRAPHENE
AND
CNTS
FILMS
FOR
SCS
121
4.7.2
FREE-STANDING
GRAPHENE
AND
CNT
FILMS
FOR
LIBS
122
4.7.3
FLEXIBLE
CNTS/GRAPHENE
COMPOSITE
FILMS
FOR
THE
CELLS
125
4.8
CONSTRUCTION
OF
STRETCHABLE
CELLS
BY
NOVEL
ARCHITECTURES
127
4.8.1
STRETCHABLE
CELLS
BASED
ON
WAVY
ARCHITECTURE
127
4.8.2
STRETCHABLE
CELLS
BASED
ON
ISLAND-BRIDGE
ARCHITECTURE
129
4.9
CONCLUSION
AND
PERSPECTIVES
130
4.9.1
MECHANICAL
PERFORMANCE
IMPROVEMENT
131
4.9.2
INNOVATIVE
ARCHITECTURE
FOR
STRETCHABLE
CELLS
132
4.9.3
ELECTROLYTES
DEVELOPMENT
132
4.9.4
PACKAGING
AND
TABS
132
4.9.5
INTEGRATED
FLEXIBLE
DEVICES
133
REFERENCES
133
5
ARCHITECTURES
DESIGN
FOR
CELLS
WITH
HIGH
ENERGY
DENSITY
147
5.1
STRATEGIES
FOR
HIGH
ENERGY
DENSITY
CELLS
147
5.2
GRAVIMETRIC
AND
VOLUMETRIC
ENERGY
DENSITY
OF
ELECTRODES
149
5.3
CLASSIFICATION
OF
THICK
ELECTRODES:
BULK
AND
FOAM
ELECTRODES
151
5.4
DESIGN
AND
FABRICATION
OF
BULK
ELECTRODES
153
5.4.1
ADVANTAGES
OF
BULK
ELECTRODES
153
5.4.2
LOW
TORTUOSITY:
THE
KEY
FOR
BULK
ELECTRODES
155
5.5
CHARACTERIZATION
AND
NUMERICAL
SIMULATION
OF
TORTUOSITY
157
5.5.1
CHARACTERIZATION
OF
TORTUOSITY
BY
X-RAY
TOMOGRAPHY
157
CONTENTS
IX
5.5.2
NUMERICAL
SIMULATION
OF
TORTUOSITY
ON
RATES
BY
COMMERCIAL
SOFTWARE
158
5.6
FABRICATION
METHODS
FOR
BULK
ELECTRODES
159
5.7
THICK
ELECTRODES
WITH
RANDOM
PORE
STRUCTURE
160
5.7.1
PRESSURE-LESS
HIGH-TEMPERATURE
SINTERING
PROCESS
160
5.7.2
COLD
SINTERING
PROCESS
161
5.7.3
SPARK
PLASMA
SINTERING
TECHNOLOGY
162
5.7.4
BRIEF
SUMMARY
FOR
SINTERING
TECHNOLOGIES
165
5.8
THICK
ELECTRODES
WITH
DIRECTIONAL
PORE
DISTRIBUTION
165
5.8.1
ITERATIVE
EXTRUSION METHOD
165
5.8.2
MAGNETIC-INDUCED
ALIGNMENT
METHOD
168
5.8.3
CARBONIZED
WOOD
TEMPLATE
METHOD
168
5.8.4
ICE
TEMPLATES
METHOD
172
5.8.5
3D-PRINTING
FOR
THICK
ELECTRODES
173
5.8.6
BRIEF
SUMMARY
FOR
BULK
ELECTRODES
175
5.9
CARBON-BASED
FOAM
ELECTRODES
WITH
HIGH
GRAVIMETRIC
ENERGY
DENSITY
178
5.9.1
GRAPHENE
FOAM
179
5.9.2
CNTS
FOAM
181
5.9.3
CNT/GRAPHENE
FOAM
181
5.10
CARBON-BASED
THICK
ELECTRODES
182
5.10.1
LOW
ELECTRONIC
CONDUCTIVE
MATERIAL/CARBON
FOAM
182
5.10.2
LARGE
VOLUME
VARIATION
MATERIALS/CARBON
FOAM
186
5.10.3
COMPACT GRAPHENE
ELECTRODES
188
5.10.4
SUMMARY
FOR
CARBON
FOAM
ELECTRODES
189
5.11
THICK
ELECTRODES
BASED
ON
THE
CONDUCTIVE
POLYMER
GELS
191
5.12
SUMMARY
AND
PERSPECTIVES
193
REFERENCES
195
6
MINIATURIZED
CELLS
205
6.1
INTRODUCTION
205
6.1.1
DEFINITION
OF
THE
MINIATURIZED
CELLS
AND
THEIR
APPLICATIONS
205
6.1.2
CLASSIFICATION
OF
MINIATURIZED
CELLS
206
6.1.3
DEVELOPMENT
TRENDS
OF
THE
MINIATURIZED
CELLS
207
6.2
EVALUATION
METHODS
FOR
THE
MINIATURIZED
CELLS
209
X
CONTENTS
6.2.1
EVALUATION METHODS
FOR
ELECTRIC
DOUBLE-LAYER
M-ECS
210
6.2.2
EVALUATION
METHODS
FOR
M-LIBS
AND
M-ECS
211
6.3
ARCHITECTURES
OFVARIOUS
MINIATURIZED
CELLS
212
6.4
MATERIALS
FOR
THE
MINIATURIZED
CELLS
213
6.4.1
ELECTRODE
MATERIALS
213
6.4.2
ELECTROLYTES
FOR
THE
MINIATURIZED
CELLS
214
6.5
FABRICATION
TECHNOLOGIES
FOR
MINIATURIZED
CELLS
215
6.5.1
FABRICATION
OF
MINIATURIZED
CELLS
WITH
2D
PARALLEL
PLATE
CONFIGURATION
216
6.6
FABRICATION
TECHNOLOGIES
FOR
2D
INTERDIGITATED
CELLS
220
6.7
PRINTING
TECHNOLOGIES
FOR
2D
INTERDIGITATED
CELLS
222
6.7.1
ADVANTAGES
OF
PRINTING
TECHNOLOGIES
222
6.7.2
CLASSIFICATION
OF
PRINTING
TECHNIQUES
222
6.7.3
SCREEN
PRINTING
FOR
MINIATURIZED
CELLS
224
6.7.4
INKJET
PRINTING
228
6.8
ELECTROCHEMICAL
DEPOSITION
METHOD
FOR
2D
INTERDIGITATED
CELLS
228
6.9
LASER
SCRIBING
FOR
2D
INTERDIGITATED
CELLS
231
6.10
IN
SITU
ELECTRODE
CONVERSION
FOR
2D
INTERDIGITATED
CELLS
234
6.11
FABRICATION
TECHNOLOGIES
FOR
3D
IN-PLANE
MINIATURIZED
CELLS
236
6.11.1
3D
PRINTING
FOR
3D
INTERDIGITATED
CONFIGURATION
CELLS
236
6.11.2
3D
INTERDIGITATED
CONFIGURATION
BY
ELECTRODEPOSITION
239
6.12
FABRICATION
OF
MINIATURIZED
CELLS
WITH
3D
STACKED
CONFIGURATION
240
6.12.1
3D
STACKED
CONFIGURATION
BY
TEMPLATE
DEPOSITION
241
6.12.2
3D
STACKED
CONFIGURATION
BY
MICROCHANNEL-PLATED
DEPOSITION
METHODS
245
6.13
INTEGRATED
SYSTEMS
247
6.14
SUMMARY
AND
PERSPECTIVES
249
REFERENCES
250
7
SMART
CELLS
263
7.1
DEFINITION
OF
SMART
MATERIALS
AND
CELLS
263
7.1.1
DEFINITION
OF
SMART
CELLS
263
CONTENTS
XI
7.1.2
DEFINITION
OF
SMART
MATERIALS
263
7.2
TYPE
OF
SMART
MATERIALS
264
7.2.1
SELF-HEALING
MATERIALS
264
7.2.2
SHAPE-MEMORY
ALLOYS
265
7.2.3
THERMAL-RESPONDING
PTC
THERMISTORS
266
7.2.4
ELECTROCHROMIC MATERIALS
267
7.3
CONSTRUCTION
OF
SMART
CELLS
268
7.3.1
SELF-HEALING
SILICON
ANODES
268
7.3.2
AQUEOUS
SELF-HEALING
ELECTRODES
271
7.3.3
LIQUID-ALLOY
SELF-HEALING
ELECTRODE
MATERIALS
273
7.3.4
THERMAL-RESPONDING
LAYER
274
7.3.5
THERMAL-RESPONDING
ELECTRODES
BASED
ON
THE
PTC
EFFECT
276
7.3.6
IONIC
BLOCKING
EFFECT-BASED
THERMAL-RESPONDING
ELECTRODES
278
7.4
APPLICATION OF
SHAPE-MEMORY
MATERIALS
IN
LIBS
AND
ECS
280
7.4.1
SELF-ADAPTING
CELLS
280
7.4.2
SHAPE-MEMORY
ALLOY-BASED
THERMAL
REGULATOR
281
7.5
SELF-HEATING
AND
SELF-MONITORING
DESIGNS
282
7.5.1
SELF-HEATING
283
7.5.2
SELF-MONITORING
285
7.6
INTEGRATED
ELECTROCHROMIC
ARCHITECTURES
FOR
ENERGY
STORAGE
286
7.6.1
INTEGRATION
POSSIBILITIES
286
7.6.2
INTEGRATED
ELECTROCHROMIC
ECS
287
7.6.3
INTEGRATED
ELECTROCHROMIC
LIBS
289
7.7
SUMMARY
AND
PERSPECTIVES
291
REFERENCES
292
INDEX
301
|
adam_txt |
CONTENTS
PREFACE
XIII
ABBREVIATIONS
XV
1
INTRODUCTION
I
1.1
ENERGY
CONVERSION
AND
STORAGE:
A
GLOBAL
CHALLENGE
1
1.2
DEVELOPMENT
HISTORY
OF
ELECTROCHEMICAL
ENERGY
STORAGE
3
1.3
CLASSIFICATION
OF
ELECTROCHEMICAL
ENERGY
STORAGE
4
1.4
LIBS
AND
ECS:
AN
APPROPRIATE
ELECTROCHEMICAL
ENERGY
STORAGE
6
1.5
SUMMARY
AND
OUTLOOK
10
REFERENCES
10
2
MATERIALS
AND
FABRICATION
15
2.1
MECHANISMS
AND
ADVANTAGES
OF
LIBS
15
2.1.1
PRINCIPLES
15
2.1.2
ADVANTAGES
AND
DISADVANTAGES
16
2.2
MECHANISMS
AND
ADVANTAGES
OF
ECS
18
2.2.1
CATEGORIES
18
2.2.2
EDLCS
18
2.2.3
PSEUDOCAPACITOR
20
2.2.4
HYBRID
CAPACITORS
21
2.3
ROADMAP
OF
CONVENTIONAL
MATERIALS
FOR
LIBS
22
2.4
TYPICAL
POSITIVE
MATERIALS
FOR
LIBS
23
2.4.1
LICOO
2
MATERIALS
23
2.4.2
LINIO
2
AND
ITS
DERIVATIVES
25
2.4.3
LIMN
2
O
4
MATERIAL
26
2.4.4
LIFEPO
4
MATERIAL
27
VI
CONTENTS
2.4.5
LITHIUM-MANGANESE-RICH
MATERIALS
28
2.4.6
COMMERCIAL
STATUS
OF
MAIN
POSITIVE
MATERIALS
28
2.5
TYPICAL
NEGATIVE
MATERIALS
FOR
LIBS
29
2.5.1
GRAPHITE
29
2.5.2
SOFT
AND
HARD
CARBON
31
2.6
NEW
MATERIALS
FOR
LIBS
33
2.6.1
NANOCARBON
MATERIALS
33
2.6.2
ALLOY-BASED
MATERIALS
35
2.6.3
METAL
LITHIUM
NEGATIVE
39
2.7
MATERIALS
FOR
CONVENTIONAL
ECS
39
2.7.1
POROUS
CARBON
MATERIALS
40
2.7.2
TRANSITION
METAL
OXIDES
41
2.7.3
CONDUCTING
POLYMERS
42
2.8
ELECTROLYTES
AND
SEPARATORS
42
2.8.1
ELECTROLYTES
42
2.8.2
SEPARATORS
45
2.9
EVALUATION
METHODS
46
2.9.1
EVALUATION
CRITERIA
FOR
LIBS
46
2.9.2
THEORETICAL
GRAVIMETRIC
AND
VOLUMETRIC
ENERGY
DENSITY
46
2.9.3
PRACTICAL
ENERGY
AND
POWER
DENSITY
OF
LIBS
47
2.9.4
CYCLE
LIFE
48
2.9.5
SAFETY
48
2.9.6
EVALUATION
METHODS
FOR
ECS
49
2.10
PRODUCTION
PROCESSES
FOR
THE
FABRICATION
50
2.10.1
DESIGN
50
2.10.2
MIXING,
COATING,
CALENDERING,
AND
WINDING
51
2.10.3
ELECTROLYTE
INJECTING
AND
FORMATION
51
2.11
PERSPECTIVES
51
REFERENCES
53
3
FLEXIBLE
CELLS:
THEORY
AND
CHARACTERIZATIONS
67
3.1
LIMITATIONS OF
THE
CONVENTIONAL
CELLS
67
3.1.1
MECHANICAL
PROPERTIES
OF
CONVENTIONAL
MATERIALS
67
3.1.2
LIMITATIONS
OF
CONVENTIONAL
ARCHITECTURES
68
3.1.3
LIMITATIONS
OF
ELECTROLYTES
69
CONTENTS
VII
3.2
MECHANICAL
PROCESS
FOR
BENDABLE
CELLS
69
3.2.1
EFFECT
OF
THICKNESS
70
3.2.2
EFFECT
OF
FLEXIBLE
SUBSTRATES
AND
NEUTRAL
PLANE
71
3.3
MECHANICS
OF
STRETCHABLE
CELLS
72
3.3.1
WAVY
ARCHITECTURES
BY
SMALL
DEFORMATION
BUCKLING
PROCESS
72
3.3.2
WAVY
ARCHITECTURES
BY
LARGE
DEFORMATION
BUCKLING
PROCESS
74
3.3.3
ISLAND
BRIDGE
ARCHITECTURES
75
3.4
STATIC
ELECTROCHEMICAL
PERFORMANCE
OF
FLEXIBLE
CELLS
76
3.5
DYNAMIC
PERFORMANCE
OF
FLEXIBLE
CELLS
77
3.5.1
BENDING
CHARACTERIZATION
78
3.5.2
STRETCHING
CHARACTERIZATION
78
3.5.3
CONFORMABILITY
TEST
79
3.5.4
STRESS
SIMULATION
BY
FINITE
ELEMENT
ANALYSIS
79
3.5.5
DYNAMIC
ELECTROCHEMICAL
PERFORMANCE
DURING
BENDING
83
3.5.6
DYNAMIC
ELECTROCHEMICAL
PERFORMANCE
DURING
STRETCHING
85
3.6
SUMMARY
AND
PERSPECTIVES
90
REFERENCES
90
4
FLEXIBLE
CELLS:
MATERIALS
AND
FABRICATION
TECHNOLOGIES
95
4.1
CONSTRUCTION
PRINCIPLES
OF
FLEXIBLE
CELLS
95
4.2
SUBSTRATE
MATERIALS
FOR
FLEXIBLE
CELLS
95
4.2.1
POLYMER
SUBSTRATES
96
4.2.2
PAPER
SUBSTRATE
97
4.2.3
TEXTILE
SUBSTRATE
98
4.3
ACTIVE
MATERIALS
FOR
FLEXIBLE
CELLS
98
4.3.1
CNTS
98
4.3.2
GRAPHENE
99
4.3.3
LOW-DIMENSIONAL
MATERIALS
99
4.4
ELECTROLYTES
FOR
FLEXIBLE
LIBS
101
4.4.1
INORGANIC
SOLID-STATE
ELECTROLYTES
FOR
FLEXIBLE
LIBS
102
4.4.2
SOLID-STATE
POLYMER
ELECTROLYTES
FOR
FLEXIBLE
LIBS
104
VIII
CONTENTS
4.5
ELECTROLYTES
FOR
FLEXIBLE
ECS
104
4.6
NONCONDUCTIVE
SUBSTRATES-BASED
FLEXIBLE
CELLS
107
4.6.1
PAPER-BASED
FLEXIBLE
CELLS
108
4.6.2
TEXTILES-BASED
FLEXIBLE
CELLS
112
4.6.3
POLYMER
SUBSTRATES-BASED
FLEXIBLE
CELLS
117
4.7
CNT
AND
GRAPHENE-BASED
FLEXIBLE
CELLS
121
4.7.1
FREE-STANDING
GRAPHENE
AND
CNTS
FILMS
FOR
SCS
121
4.7.2
FREE-STANDING
GRAPHENE
AND
CNT
FILMS
FOR
LIBS
122
4.7.3
FLEXIBLE
CNTS/GRAPHENE
COMPOSITE
FILMS
FOR
THE
CELLS
125
4.8
CONSTRUCTION
OF
STRETCHABLE
CELLS
BY
NOVEL
ARCHITECTURES
127
4.8.1
STRETCHABLE
CELLS
BASED
ON
WAVY
ARCHITECTURE
127
4.8.2
STRETCHABLE
CELLS
BASED
ON
ISLAND-BRIDGE
ARCHITECTURE
129
4.9
CONCLUSION
AND
PERSPECTIVES
130
4.9.1
MECHANICAL
PERFORMANCE
IMPROVEMENT
131
4.9.2
INNOVATIVE
ARCHITECTURE
FOR
STRETCHABLE
CELLS
132
4.9.3
ELECTROLYTES
DEVELOPMENT
132
4.9.4
PACKAGING
AND
TABS
132
4.9.5
INTEGRATED
FLEXIBLE
DEVICES
133
REFERENCES
133
5
ARCHITECTURES
DESIGN
FOR
CELLS
WITH
HIGH
ENERGY
DENSITY
147
5.1
STRATEGIES
FOR
HIGH
ENERGY
DENSITY
CELLS
147
5.2
GRAVIMETRIC
AND
VOLUMETRIC
ENERGY
DENSITY
OF
ELECTRODES
149
5.3
CLASSIFICATION
OF
THICK
ELECTRODES:
BULK
AND
FOAM
ELECTRODES
151
5.4
DESIGN
AND
FABRICATION
OF
BULK
ELECTRODES
153
5.4.1
ADVANTAGES
OF
BULK
ELECTRODES
153
5.4.2
LOW
TORTUOSITY:
THE
KEY
FOR
BULK
ELECTRODES
155
5.5
CHARACTERIZATION
AND
NUMERICAL
SIMULATION
OF
TORTUOSITY
157
5.5.1
CHARACTERIZATION
OF
TORTUOSITY
BY
X-RAY
TOMOGRAPHY
157
CONTENTS
IX
5.5.2
NUMERICAL
SIMULATION
OF
TORTUOSITY
ON
RATES
BY
COMMERCIAL
SOFTWARE
158
5.6
FABRICATION
METHODS
FOR
BULK
ELECTRODES
159
5.7
THICK
ELECTRODES
WITH
RANDOM
PORE
STRUCTURE
160
5.7.1
PRESSURE-LESS
HIGH-TEMPERATURE
SINTERING
PROCESS
160
5.7.2
COLD
SINTERING
PROCESS
161
5.7.3
SPARK
PLASMA
SINTERING
TECHNOLOGY
162
5.7.4
BRIEF
SUMMARY
FOR
SINTERING
TECHNOLOGIES
165
5.8
THICK
ELECTRODES
WITH
DIRECTIONAL
PORE
DISTRIBUTION
165
5.8.1
ITERATIVE
EXTRUSION METHOD
165
5.8.2
MAGNETIC-INDUCED
ALIGNMENT
METHOD
168
5.8.3
CARBONIZED
WOOD
TEMPLATE
METHOD
168
5.8.4
ICE
TEMPLATES
METHOD
172
5.8.5
3D-PRINTING
FOR
THICK
ELECTRODES
173
5.8.6
BRIEF
SUMMARY
FOR
BULK
ELECTRODES
175
5.9
CARBON-BASED
FOAM
ELECTRODES
WITH
HIGH
GRAVIMETRIC
ENERGY
DENSITY
178
5.9.1
GRAPHENE
FOAM
179
5.9.2
CNTS
FOAM
181
5.9.3
CNT/GRAPHENE
FOAM
181
5.10
CARBON-BASED
THICK
ELECTRODES
182
5.10.1
LOW
ELECTRONIC
CONDUCTIVE
MATERIAL/CARBON
FOAM
182
5.10.2
LARGE
VOLUME
VARIATION
MATERIALS/CARBON
FOAM
186
5.10.3
COMPACT GRAPHENE
ELECTRODES
188
5.10.4
SUMMARY
FOR
CARBON
FOAM
ELECTRODES
189
5.11
THICK
ELECTRODES
BASED
ON
THE
CONDUCTIVE
POLYMER
GELS
191
5.12
SUMMARY
AND
PERSPECTIVES
193
REFERENCES
195
6
MINIATURIZED
CELLS
205
6.1
INTRODUCTION
205
6.1.1
DEFINITION
OF
THE
MINIATURIZED
CELLS
AND
THEIR
APPLICATIONS
205
6.1.2
CLASSIFICATION
OF
MINIATURIZED
CELLS
206
6.1.3
DEVELOPMENT
TRENDS
OF
THE
MINIATURIZED
CELLS
207
6.2
EVALUATION
METHODS
FOR
THE
MINIATURIZED
CELLS
209
X
CONTENTS
6.2.1
EVALUATION METHODS
FOR
ELECTRIC
DOUBLE-LAYER
M-ECS
210
6.2.2
EVALUATION
METHODS
FOR
M-LIBS
AND
M-ECS
211
6.3
ARCHITECTURES
OFVARIOUS
MINIATURIZED
CELLS
212
6.4
MATERIALS
FOR
THE
MINIATURIZED
CELLS
213
6.4.1
ELECTRODE
MATERIALS
213
6.4.2
ELECTROLYTES
FOR
THE
MINIATURIZED
CELLS
214
6.5
FABRICATION
TECHNOLOGIES
FOR
MINIATURIZED
CELLS
215
6.5.1
FABRICATION
OF
MINIATURIZED
CELLS
WITH
2D
PARALLEL
PLATE
CONFIGURATION
216
6.6
FABRICATION
TECHNOLOGIES
FOR
2D
INTERDIGITATED
CELLS
220
6.7
PRINTING
TECHNOLOGIES
FOR
2D
INTERDIGITATED
CELLS
222
6.7.1
ADVANTAGES
OF
PRINTING
TECHNOLOGIES
222
6.7.2
CLASSIFICATION
OF
PRINTING
TECHNIQUES
222
6.7.3
SCREEN
PRINTING
FOR
MINIATURIZED
CELLS
224
6.7.4
INKJET
PRINTING
228
6.8
ELECTROCHEMICAL
DEPOSITION
METHOD
FOR
2D
INTERDIGITATED
CELLS
228
6.9
LASER
SCRIBING
FOR
2D
INTERDIGITATED
CELLS
231
6.10
IN
SITU
ELECTRODE
CONVERSION
FOR
2D
INTERDIGITATED
CELLS
234
6.11
FABRICATION
TECHNOLOGIES
FOR
3D
IN-PLANE
MINIATURIZED
CELLS
236
6.11.1
3D
PRINTING
FOR
3D
INTERDIGITATED
CONFIGURATION
CELLS
236
6.11.2
3D
INTERDIGITATED
CONFIGURATION
BY
ELECTRODEPOSITION
239
6.12
FABRICATION
OF
MINIATURIZED
CELLS
WITH
3D
STACKED
CONFIGURATION
240
6.12.1
3D
STACKED
CONFIGURATION
BY
TEMPLATE
DEPOSITION
241
6.12.2
3D
STACKED
CONFIGURATION
BY
MICROCHANNEL-PLATED
DEPOSITION
METHODS
245
6.13
INTEGRATED
SYSTEMS
247
6.14
SUMMARY
AND
PERSPECTIVES
249
REFERENCES
250
7
SMART
CELLS
263
7.1
DEFINITION
OF
SMART
MATERIALS
AND
CELLS
263
7.1.1
DEFINITION
OF
SMART
CELLS
263
CONTENTS
XI
7.1.2
DEFINITION
OF
SMART
MATERIALS
263
7.2
TYPE
OF
SMART
MATERIALS
264
7.2.1
SELF-HEALING
MATERIALS
264
7.2.2
SHAPE-MEMORY
ALLOYS
265
7.2.3
THERMAL-RESPONDING
PTC
THERMISTORS
266
7.2.4
ELECTROCHROMIC MATERIALS
267
7.3
CONSTRUCTION
OF
SMART
CELLS
268
7.3.1
SELF-HEALING
SILICON
ANODES
268
7.3.2
AQUEOUS
SELF-HEALING
ELECTRODES
271
7.3.3
LIQUID-ALLOY
SELF-HEALING
ELECTRODE
MATERIALS
273
7.3.4
THERMAL-RESPONDING
LAYER
274
7.3.5
THERMAL-RESPONDING
ELECTRODES
BASED
ON
THE
PTC
EFFECT
276
7.3.6
IONIC
BLOCKING
EFFECT-BASED
THERMAL-RESPONDING
ELECTRODES
278
7.4
APPLICATION OF
SHAPE-MEMORY
MATERIALS
IN
LIBS
AND
ECS
280
7.4.1
SELF-ADAPTING
CELLS
280
7.4.2
SHAPE-MEMORY
ALLOY-BASED
THERMAL
REGULATOR
281
7.5
SELF-HEATING
AND
SELF-MONITORING
DESIGNS
282
7.5.1
SELF-HEATING
283
7.5.2
SELF-MONITORING
285
7.6
INTEGRATED
ELECTROCHROMIC
ARCHITECTURES
FOR
ENERGY
STORAGE
286
7.6.1
INTEGRATION
POSSIBILITIES
286
7.6.2
INTEGRATED
ELECTROCHROMIC
ECS
287
7.6.3
INTEGRATED
ELECTROCHROMIC
LIBS
289
7.7
SUMMARY
AND
PERSPECTIVES
291
REFERENCES
292
INDEX
301 |
any_adam_object | 1 |
any_adam_object_boolean | 1 |
author | Li, Feng Wen, Lei Cheng, Hui-ming |
author_GND | (DE-588)1237274087 (DE-588)1237274176 |
author_facet | Li, Feng Wen, Lei Cheng, Hui-ming |
author_role | aut aut aut |
author_sort | Li, Feng |
author_variant | f l fl l w lw h m c hmc |
building | Verbundindex |
bvnumber | BV047361598 |
classification_rvk | ZP 4120 ZN 8730 |
ctrlnum | (OCoLC)1263283082 (DE-599)DNB1223197115 |
discipline | Energietechnik Elektrotechnik / Elektronik / Nachrichtentechnik |
discipline_str_mv | Energietechnik Elektrotechnik / Elektronik / Nachrichtentechnik |
format | Book |
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id | DE-604.BV047361598 |
illustrated | Not Illustrated |
index_date | 2024-07-03T17:41:23Z |
indexdate | 2024-07-10T09:10:00Z |
institution | BVB |
institution_GND | (DE-588)16179388-5 |
isbn | 9783527345793 3527345795 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-032763568 |
oclc_num | 1263283082 |
open_access_boolean | |
owner | DE-83 DE-703 |
owner_facet | DE-83 DE-703 |
physical | 310 Seiten 24.4 cm x 17 cm |
publishDate | 2021 |
publishDateSearch | 2021 |
publishDateSort | 2021 |
publisher | Wiley-VCH |
record_format | marc |
spelling | Li, Feng Verfasser aut Novel electrochemical energy storage devices materials, architectures and future trends Feng Li, Lei Wen, Hu-ming Cheng Weinheim, Germany Wiley-VCH 2021 310 Seiten 24.4 cm x 17 cm txt rdacontent n rdamedia nc rdacarrier Lithium-Ionen-Akkumulator (DE-588)7681721-0 gnd rswk-swf Elektrochemische Energiequelle (DE-588)4151755-6 gnd rswk-swf Energiespeicher (DE-588)4152230-8 gnd rswk-swf Elektrolytkondensator (DE-588)4132068-2 gnd rswk-swf Elektrochemische Energieumwandlung (DE-588)4151758-1 gnd rswk-swf Chemie Chemistry Electrochemistry Elektrochemie Energie Energy Hydrogen, Batteries & Fuel Cells Materialien f. Energiesysteme Materials for Energy Systems Materials Science Materialwissenschaften Wasserstoff, Batterien u. Brennstoffzellen CHA0: Elektrochemie EG32: Wasserstoff, Batterien u. Brennstoffzellen MSL0: Materialien f. Energiesysteme Elektrochemische Energiequelle (DE-588)4151755-6 s Elektrochemische Energieumwandlung (DE-588)4151758-1 s DE-604 Energiespeicher (DE-588)4152230-8 s Lithium-Ionen-Akkumulator (DE-588)7681721-0 s Elektrolytkondensator (DE-588)4132068-2 s Wen, Lei Verfasser (DE-588)1237274087 aut Cheng, Hui-ming Verfasser (DE-588)1237274176 aut Wiley-VCH (DE-588)16179388-5 pbl Erscheint auch als Online-Ausgabe, PDF 978-3-527-82104-4 Erscheint auch als Online-Ausgabe, EPUB 978-3-527-82106-8 Erscheint auch als Online-Ausgabe 978-3-527-82105-1 X:MVB http://www.wiley-vch.de/publish/dt/books/ISBN978-3-527-34579-3/ DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=032763568&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis 1\p vlb 20201211 DE-101 https://d-nb.info/provenance/plan#vlb |
spellingShingle | Li, Feng Wen, Lei Cheng, Hui-ming Novel electrochemical energy storage devices materials, architectures and future trends Lithium-Ionen-Akkumulator (DE-588)7681721-0 gnd Elektrochemische Energiequelle (DE-588)4151755-6 gnd Energiespeicher (DE-588)4152230-8 gnd Elektrolytkondensator (DE-588)4132068-2 gnd Elektrochemische Energieumwandlung (DE-588)4151758-1 gnd |
subject_GND | (DE-588)7681721-0 (DE-588)4151755-6 (DE-588)4152230-8 (DE-588)4132068-2 (DE-588)4151758-1 |
title | Novel electrochemical energy storage devices materials, architectures and future trends |
title_auth | Novel electrochemical energy storage devices materials, architectures and future trends |
title_exact_search | Novel electrochemical energy storage devices materials, architectures and future trends |
title_exact_search_txtP | Novel electrochemical energy storage devices materials, architectures and future trends |
title_full | Novel electrochemical energy storage devices materials, architectures and future trends Feng Li, Lei Wen, Hu-ming Cheng |
title_fullStr | Novel electrochemical energy storage devices materials, architectures and future trends Feng Li, Lei Wen, Hu-ming Cheng |
title_full_unstemmed | Novel electrochemical energy storage devices materials, architectures and future trends Feng Li, Lei Wen, Hu-ming Cheng |
title_short | Novel electrochemical energy storage devices |
title_sort | novel electrochemical energy storage devices materials architectures and future trends |
title_sub | materials, architectures and future trends |
topic | Lithium-Ionen-Akkumulator (DE-588)7681721-0 gnd Elektrochemische Energiequelle (DE-588)4151755-6 gnd Energiespeicher (DE-588)4152230-8 gnd Elektrolytkondensator (DE-588)4132068-2 gnd Elektrochemische Energieumwandlung (DE-588)4151758-1 gnd |
topic_facet | Lithium-Ionen-Akkumulator Elektrochemische Energiequelle Energiespeicher Elektrolytkondensator Elektrochemische Energieumwandlung |
url | http://www.wiley-vch.de/publish/dt/books/ISBN978-3-527-34579-3/ http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=032763568&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
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