Domains in ferroic crystals and thin films:
Gespeichert in:
Hauptverfasser: | , , |
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Format: | Buch |
Sprache: | English |
Veröffentlicht: |
New York, NY [u.a.]
Springer
2010
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Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis |
Beschreibung: | XV, 821 S. Ill., graph. Darst. |
ISBN: | 9781441914163 |
Internformat
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245 | 1 | 0 | |a Domains in ferroic crystals and thin films |c Alexander K. Tagantsev ; L. Eric Cross ; Jan Fousek |
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adam_text |
Titel: Domains in ferroic crystals and thin films
Autor: Tagancev, Aleksandr K
Jahr: 2010
Contents
1 A Preview of Concepts and Phenomena. 1
2 Fundamentals of Ferroic Domain Structures. 11
2.1 Structural Phase Transitions and Domain States: Basic
Concepts and Classifications. 11
2.1.1 Structural Changes at Phase Transitions:
Ferroics. 11
2.1.2 Ferroelectric Phase Transitions. 16
2.1.3 Ferroelastics and Ferrobielectrics. 19
2.1.4 Higher Order Ferroics. 28
2.1.5 Relation Between the Symmetries G and F: Order
Parameter. 32
2.1.6 Overview of Different Kinds of Phase Transitions:
Species. 35
2.1.7 Domain States. 36
2.1.8 Ferroic Species. 43
2.1.9 Ferroelectric Species. 47
2.2 Coexisting Domain States. 51
2.2.1 Twinning Operations. 52
2.2.2 Twin Laws for Nonferroelastic Domain Pairs. 53
2.2.3 Domain Wall Orientation: Electrical
Compatibility. 58
2.2.4 Domain Wall Orientation: Mechanical
Compatibility. 62
2.2.5 Ferroelastic Domains in Physical Contact. 66
2.2.6 Examples of Domain Wall Orientations:
Nonferroelastic Walls. 69
2.2.7 Examples of Domain Wall Orientations:
Ferroelastic Walls. 74
2.3 Thermodynamic Approach. 81
2.3.1 Single-Component Order Parameter. 81
2.3.2 Uniaxial Proper Ferroelectric (Nonferroelastic). 88
2.3.3 Uniaxial Proper Ferroelectric-Ferroelastic. 91
i Contents
2.3.4 Multiaxial Proper Ferroelectric-Improper
Ferroelastic. 92
2.3.5 Uniaxial Improper Ferroelastic-Ferroelectric. 97
2.3.6 Limitation of Traditional Thermodynamic Approach:
Pseudo-proper and Weak Ferroelectricity. 100
3 Ferroic Materials. 109
3.1 Sources of Information and Statistics. 109
3.2 Table of Selected Ferroic Materials. 110
4 Methods for Observation of Domains. 121
4.1 Introductory Remarks. 121
4.2 Surface Etching Techniques. 122
4.3 Other Methods Based on Surface Relief. 129
4.4 Surface Decoration Techniques. 131
4.4.1 Colloidal Suspensions. 132
4.4.2 Decoration by Sublimation and Vacuum
Evaporation. 134
4.4.3 Deposition in Liquids. 136
4.4.4 Condensation of Vapor. 136
4.4.5 Decoration by Liquid Crystal Layers. 137
4.5 Scanning Force Microscopy-Based Techniques. 142
4.5.1 Electrostatic Force Microscopy (EFM). 143
4.5.2 Scanning Surface Potential Microscopy (SSPM). 147
4.5.3 Contact Domain Imaging. 149
4.5.4 Lateral Force Microscopy (LFM). 150
4.5.5 Domain Imaging via Surface Topography. 151
4.5.6 Domain Imaging via Nonlinear Dielectric Response
(SNDM). 153
4.5.7 Domain Imaging via Static Piezoresponse. 155
4.5.8 Domain Imaging via Dynamic
Piezoresponse (PFM). 158
4.6 Polarized Light Microscopy Based on Unperturbed Linear
Optical Properties. 161
4.6.1 Birefringence. 161
4.6.2 Spatial Dispersion. 169
4.6.3 Optical Activity. 170
4.6.4 Optical Absorption and Observation
in Reflected Light. 172
4.7 Optical Methods Based on Higher Order Optical
Properties. 173
4.7.1 Perturbed Linear Optical Properties: Electro-optics
and Elasto-optics. 173
4.7.2 Nonlinear Optical Properties. 176
4.7.3 Photorefractive Properties. 179
Contents xi
4.8 Electron Microscopy. 182
4.8.1 Scanning Electron Microscopy. 182
4.8.2 Transmission Electron Microscopy. 186
4.8.3 Electron Mirror Microscopy. 193
4.9 Methods Based on Interactions with X-Rays. 194
4.10 Pyroelectric Mapping. 197
4.11 Scanning Optical Microscopy. 200
4.12 Additional Methods and Concluding Remarks. 203
5 Static Domain Patterns. 207
5.1 Introductory Remarks and Scheme of the Chapter. 207
5.2 Equilibrium 180° Domain Patterns in a Ferroelectric
Plate: Theories. 208
5.3 Domain Patterns Connected with Phase Boundaries. 220
5.3.1 Perfect Matching. 220
5.3.2 Matching on Average. 222
5.4 Selected Observations of Domains in Crystalline Ferroic
Samples. 224
5.4.1 Uniaxial Ferroelectrics (Nonferroelastic) with the
Second-Order Transition. 225
5.4.2 Ferroelastics with a Small Number of Domain
States. 235
5.4.3 Perovskite Ferroics. 253
5.4.4 R Cases. 262
5.4.5 Quartz. 265
5.4.6 Tweed Patterns. 267
6 Domain Walls at Rest. 271
6.1 Thickness and Structure of Domain Walls: Methods
and Data. 272
.1 Direct Optical Observations. 273
.2 X-Ray and Neutron Scattering. 278
.3 X-Ray Topography. 281
.4 Raman Scattering. 282
.5 Electron Holography. 283
.6 Transmission Electron Microscopy. 285
1.7 Surface Methods. 288
Comments on Available Data. 291
6.2 Macroscopic Theories of Domain Walls. 291
6.2.1 Order Parameter Profile in Domain Walls. 292
6.2.2 Effects of Strain Induced by the Order
Parameter. 300
6.2.3 Domain Walls in Selected Ferroics. 305
6.2.4 Concluding Remarks. 314
6.3 Microscopic Theories of Domain Walls. 315
xii Contents
6.4 How Flat Is the Wall?. 319
6.4.1 Mathematical Problem. 321
6.4.2 Nonferroelectric/Nonferroelastic Walls. 322
6.4.3 Walls in Ferroelectrics and Ferroelastics. 325
6.4.4 Experimental Data on Roughening of Ferroic
Domain Walls and Experimental Observations. 328
7 Switching Properties: Basic Methods and Characteristics. 331
7.1 Introduction. 331
7.2 Ferroelectric Hysteresis Loop. 332
7.3 TANDEL Effect. 339
7.4 Pulse Switching. 340
7.5 Ferroelastic Hysteresis Loops. 344
7.6 More Involved Methods. 349
8 Switching Phenomena and Small-Signal Response. 351
8.1 Introduction and Overview of Switching Mechanisms. 351
8.2 Basics of Domain State Reorientation. 354
8.2.1 Driving Force for Processes of Domain State
Reorientation. 354
8.2.2 Pressure Acting on a Domain Wall. 357
8.3 Single Domain Wall in Motion. 360
8.3.1 Experimental Techniques Used to Measure Domain
Wall Velocity. 360
8.3.2 Motion of Ferroelectric Nonferroelastic Walls. 364
8.3.3 Motion of Ferroelastic Walls in Ferroelectrics. 382
8.4 Theories of Single Wall Motion. 391
8.4.1 Two Regimes of Wall Motion. 392
8.4.2 Wall Mobility in Activated Regime. Miller-Weinreich
Theory. 394
8.4.3 Wall Mobility in Activated Regime. Advanced Theories
and Present Understanding of the Problem. 397
8.4.4 Domain Wall Motion in Non-activated Regime. 404
8.4.5 Domain Wall Motion Influenced by the Ferroelectric/
Electrode Interface. 410
8.4.6 Motion of Curved Domain Walls. 415
8.5 Defect Pinning and Creep of Domain Walls. 418
8.5.1 Non-thermally Assisted Regime, Weak and Strong
Pinning. 419
8.5.2 Finite Temperatures: Weak Pinning and Creep. 422
8.5.3 Finite Temperatures: Strong-Pinning Regime. 426
8.5.4 Weak and Strong Pinning with Flexible
Defects. 427
8.5.5 Experimental Evidence on Weak Pinning and Creep
of Ferroelectric Domain Walls. 428
Contents xiii
8.6 Switching Process in Selected Materials. 429
8.6.1 BaTiO3. 430
8.6.2 TGSandTGFB. 438
8.6.3 LiTaO3 and LiNbO3. 443
8.6.4 KDP and Isomorphous Crystals. 446
8.7 Theory and Modeling of Switching. 448
8.7.1 Introduction. 448
8.7.2 Domain Nucleation. 451
8.7.3 Domain Coalescence. 457
8.7.4 Pulse Switching. 459
8.7.5 Classical Polarization Hysteresis
Loops. 466
8.7.6 Rayleigh Loops. 470
8.7.7 Piezoelectric Hysteresis Loops. 475
8.7.8 Ferroelectric Breakdown. 481
8.8 Extrinsic Contribution to Small-Signal Dielectric
Response in Bulk Ferroelectrics. 483
8.8.1 Introduction. 483
8.8.2 Fully Immobile Domain Pattern. 485
8.8.3 Contributions from Moving Domain Walls
in Ideal Crystals. 490
8.8.4 Quasistatic Bending Contribution from "Firmly"
Pinned Domain Walls. 498
8.8.5 Limited Motion of Free Domain Wall. 501
8.8.6 Wall Motion in Random Potential and Dispersion
of the Dielectric Response (Experimental Findings
and Interpretation). 504
8.8.7 Domain Freezing. 511
8.8.8 Dielectric Response Associated with Mobile
Ferroelastic Domain Walls in a Clamped
Multidomain Ferroelectric. 515
9 Ferroelectric Thin Films. 521
9.1 Introduction. 521
9.2 Experimental Studies on the Static Domain Pattern
in Thin Films. 523
9.2.1 Domain Structure in (001) Thin Films of Tetragonal
Ferroelectric Perovskites. 523
9.2.2 Ferroelastic Domain Patterns in (001) Rhombohedral
and (111) Tetragonal Thin Films of Ferroelectric
Perovskites. 536
9.2.3 Domain Structure in Other Systems. 542
9.3 Domain Pattern and Elastic Effects. 544
9.3.1 Strained State of Ferroelectric Film
and Dislocation-Assisted Stress Release. 544
xiv Contents
9.3.2 Single-Domain State in a Strained Film. 553
9.3.3 Domain Formation Driven by Elastic Effects:
Basic Concepts. 560
9.3.4 Domain Formation Driven by Elastic Effects:
Advanced Theoretical Results. 573
9.3.5 Domain Formation Driven by Elastic Effects:
Theory vs. Experiment. 589
9.4 Domain Pattern and Electrostatic Effects. 599
9.4.1 Equilibrium Domain Pattern in Ferroelectric/
Dielectric Sandwich Structure. 599
9.4.2 Equilibrium Domain Pattern in Ferroelectric
Films on Insulating Substrates. 603
9.4.3 Limitations of Hard-Ferroelectric Approximation
and Results Obtained Beyond
This Approximation. 604
9.5 Switching and Polarization Hysteresis. 608
9.5.1 Pulse Switching. 608
9.5.2 Ferroelectric Hysteresis Loops; Size Effects. 613
9.5.3 Effects of Internal Bias and Imprint. 627
9.6 Small-Signal Response. 653
9.6.1 Intrinsic Contribution—Effect of Passive
Layer. 654
9.6.2 Intrinsic Contribution—Depletion Effect. 662
9.6.3 Intrinsic Contribution—Strain Effect. 664
9.6.4 Extrinsic Contribution—Mechanical Effects. 667
9.6.5 Extrinsic Contribution—Electrostatic Effects. 671
9.7 Polarization Fatigue in Thin Ferroelectric Films. 677
9.7.1 How Can Imperfections Influence
Polarization Switching in Ferroelectric
Capacitor?. 678
9.7.2 What Are These Imperfections and How Do They
Affect the Switching Performance of Ferroelectric
Capacitor?. 686
9.7.3 Overall Picture of Polarization Fatigue in PZT
Thin Films. 688
9.8 Scanning Force Microscopy Study of Polarization
Reversal. 690
9.8.1 Top-Electrode-Free PFM. 692
9.8.2 Through-Electrode PFM. 700
9.9 Films of Proper Ferroelectric-Ferroelastics. 704
Appendix A. 713
Appendix B. 715
Contents xv
Appendix C. 721
Appendix D. 729
Appendix E. 775
Appendix F. 779
Transformation Laws for Tensors. 779
Voight Notations for Tensors. 779
Notation for Symmetry of Tensors. 780
References. 783
Index. 813 |
any_adam_object | 1 |
author | Tagancev, Aleksandr K. 1951- Cross, L. Eric 1923-2016 Fousek, Jan |
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author_facet | Tagancev, Aleksandr K. 1951- Cross, L. Eric 1923-2016 Fousek, Jan |
author_role | aut aut aut |
author_sort | Tagancev, Aleksandr K. 1951- |
author_variant | a k t ak akt l e c le lec j f jf |
building | Verbundindex |
bvnumber | BV039701749 |
classification_rvk | UP 4700 |
ctrlnum | (OCoLC)767778551 (DE-599)DNB996515941 |
discipline | Physik |
format | Book |
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illustrated | Illustrated |
indexdate | 2025-01-15T13:01:25Z |
institution | BVB |
isbn | 9781441914163 |
language | English |
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owner_facet | DE-703 DE-384 |
physical | XV, 821 S. Ill., graph. Darst. |
publishDate | 2010 |
publishDateSearch | 2010 |
publishDateSort | 2010 |
publisher | Springer |
record_format | marc |
spelling | Tagancev, Aleksandr K. 1951- Verfasser (DE-588)141042869 aut Domains in ferroic crystals and thin films Alexander K. Tagantsev ; L. Eric Cross ; Jan Fousek New York, NY [u.a.] Springer 2010 XV, 821 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Kristall (DE-588)4033209-3 gnd rswk-swf Dünne Schicht (DE-588)4136925-7 gnd rswk-swf Ferroelektrizität (DE-588)4154126-1 gnd rswk-swf Ferroelektrizität (DE-588)4154126-1 s Kristall (DE-588)4033209-3 s DE-604 Dünne Schicht (DE-588)4136925-7 s Cross, L. Eric 1923-2016 Verfasser (DE-588)141049111 aut Fousek, Jan Verfasser (DE-588)144024683 aut Erscheint auch als Online-Ausgabe 978-1-4419-1417-0 HBZ Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=024550279&sequence=000002&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Tagancev, Aleksandr K. 1951- Cross, L. Eric 1923-2016 Fousek, Jan Domains in ferroic crystals and thin films Kristall (DE-588)4033209-3 gnd Dünne Schicht (DE-588)4136925-7 gnd Ferroelektrizität (DE-588)4154126-1 gnd |
subject_GND | (DE-588)4033209-3 (DE-588)4136925-7 (DE-588)4154126-1 |
title | Domains in ferroic crystals and thin films |
title_auth | Domains in ferroic crystals and thin films |
title_exact_search | Domains in ferroic crystals and thin films |
title_full | Domains in ferroic crystals and thin films Alexander K. Tagantsev ; L. Eric Cross ; Jan Fousek |
title_fullStr | Domains in ferroic crystals and thin films Alexander K. Tagantsev ; L. Eric Cross ; Jan Fousek |
title_full_unstemmed | Domains in ferroic crystals and thin films Alexander K. Tagantsev ; L. Eric Cross ; Jan Fousek |
title_short | Domains in ferroic crystals and thin films |
title_sort | domains in ferroic crystals and thin films |
topic | Kristall (DE-588)4033209-3 gnd Dünne Schicht (DE-588)4136925-7 gnd Ferroelektrizität (DE-588)4154126-1 gnd |
topic_facet | Kristall Dünne Schicht Ferroelektrizität |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=024550279&sequence=000002&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT tagancevaleksandrk domainsinferroiccrystalsandthinfilms AT crossleric domainsinferroiccrystalsandthinfilms AT fousekjan domainsinferroiccrystalsandthinfilms |