P.G. de Gennes' impact in science.: Volume I, Solid state and liquid crystals /
This publication, in two volumes, is devoted to the scientific impact of the work of Nobel Laureate, Pierre-Gilles de Gennes, one of the greatest scientists of the 20th century. It covers the important fields for which de Gennes was renowned : solid state (magnetism and superconductivity), macroscop...
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Weitere Verfasser: | , , |
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Format: | Elektronisch E-Book |
Sprache: | English |
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Singapore :
World Scientific Pub. Co.,
©2009.
|
Schriftenreihe: | Series on directions in condensed matter physics ;
v. 18. |
Schlagworte: | |
Online-Zugang: | Volltext |
Zusammenfassung: | This publication, in two volumes, is devoted to the scientific impact of the work of Nobel Laureate, Pierre-Gilles de Gennes, one of the greatest scientists of the 20th century. It covers the important fields for which de Gennes was renowned : solid state (magnetism and superconductivity), macroscopic random media and percolation, supersolids, liquid crystals, polymers, adhesion and friction, and biophysics. The book brings together internationally renowned experts to contribute their perspectives on the significance of de Gennes' works. They have each selected a definitive paper, which gives the state of the field at the time the paper was published, highlights the paper's importance and provides an analysis of the development of the field right up to the modern day. The insightful perspectives of these scientists make the book both unique and intriguing. This is the first volume devoted to solid state and liquid crystals. |
Beschreibung: | 1 online resource (xvi, 184 pages :) |
Bibliographie: | Includes bibliographical references. |
ISBN: | 9789814273817 9814273813 |
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505 | 0 | |a 1. Crystal structures of insulating surfaces. 1.1. Halide surfaces. 1.2. Oxide surfaces -- 2. Preparation techniques of insulating surfaces. 2.1. Ultra high vacuum. 2.2. Preparation of bulk insulating surfaces. 2.3. Deposition of insulating films, metals and organic molecules -- 3. Scanning probe microscopy in ultra high vacuum. 3.1. Atomic force microscopy. 3.2. Scanning tunneling microscopy. 3.3. Atomistic modeling of SPM -- 4. Scanning probe microscopy on bulk insulating surfaces. 4.1. Halide surfaces. 4.2. Oxide surfaces. 4.3. Modeling AFM on bulk insulating surfaces -- 5. Scanning probe microscopy on thin insulating films. 5.1. Halide films on metals. 5.2. Halide films on semiconductors. 5.3. Heteroepitaxial growth of alkali halide films. 5.4. Oxide films. 5.5. Modeling AFM on thin insulating films -- 6. Interaction of ions, electrons and photons with halide surfaces. 6.1. Ion bombardment of alkali halides. 6.2. Electron and photon stimulated desorption -- 7. Surface patterning with electrons and photons. 7.1. Surface topography modification by electronic excitations. 7.2. Nanoscale pits on alkali halide surfaces -- 8. Surface patterning with ions. 8.1. Ripple formation by ion bombardment. 8.2. A case study : ion beam modifications of KBr surfaces -- 9. Metal deposition on insulating surfaces. 9.1. Metals on halide surfaces. 9.2. Metals on oxide surfaces. 9.3. Metals on thin insulating films. 9.4. Modeling AFM on metal clusters on insulators -- 10. Organic molecules on insulating surfaces. 10.1. Chemical structures of organic molecules. 10.2. Organic molecules on halide surfaces. 10.3. Organic molecules on oxide surfaces. 10.4. Organic molecules on thin insulating films. 10.5. Modeling AFM on organic molecules on insulators -- 11. Scanning probe spectroscopy on insulating surfaces. 11.1. Force spectroscopy on insulating surfaces. 11.2. Tunneling spectroscopy on thin insulating films. 11.3. Tunneling spectroscopy on metal clusters. 11.4. Tunneling spectroscopy on organic molecules -- 12. Nanotribology on insulating surfaces. 12.1. Friction mechanisms at the atomic scale. 12.2. Friction on halide surfaces. 12.3. Nanowear processes on insulating surfaces. 12.4. Modeling nanotribology on insulating surfaces -- 13. Nanomanipulation on insulating surfaces. 13.1. Nanomanipulation experiments on insulating surfaces. 13.2. Modeling nanomanipulation on insulating surfaces. | |
520 | |a This publication, in two volumes, is devoted to the scientific impact of the work of Nobel Laureate, Pierre-Gilles de Gennes, one of the greatest scientists of the 20th century. It covers the important fields for which de Gennes was renowned : solid state (magnetism and superconductivity), macroscopic random media and percolation, supersolids, liquid crystals, polymers, adhesion and friction, and biophysics. The book brings together internationally renowned experts to contribute their perspectives on the significance of de Gennes' works. They have each selected a definitive paper, which gives the state of the field at the time the paper was published, highlights the paper's importance and provides an analysis of the development of the field right up to the modern day. The insightful perspectives of these scientists make the book both unique and intriguing. This is the first volume devoted to solid state and liquid crystals. | ||
600 | 1 | 0 | |a Gennes, Pierre-Gilles de. |0 http://id.loc.gov/authorities/names/n83828964 |
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650 | 0 | |a Condensed matter. |0 http://id.loc.gov/authorities/subjects/sh85030765 | |
650 | 0 | |a Solid state physics. |0 http://id.loc.gov/authorities/subjects/sh85124640 | |
650 | 0 | |a Liquid crystals. |0 http://id.loc.gov/authorities/subjects/sh85077357 | |
650 | 0 | |a Biophysics. |0 http://id.loc.gov/authorities/subjects/sh85014253 | |
650 | 2 | |a Liquid Crystals |0 https://id.nlm.nih.gov/mesh/D050866 | |
650 | 2 | |a Biophysics |0 https://id.nlm.nih.gov/mesh/D001703 | |
650 | 6 | |a Matière condensée. | |
650 | 6 | |a Physique de l'état solide. | |
650 | 6 | |a Cristaux liquides. | |
650 | 6 | |a Biophysique. | |
650 | 7 | |a SCIENCE |x Physics |x Condensed Matter. |2 bisacsh | |
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author2 | Bok, Julien, 1933- Prost, Jacques Brochard-Wyart, Françoise |
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contents | 1. Crystal structures of insulating surfaces. 1.1. Halide surfaces. 1.2. Oxide surfaces -- 2. Preparation techniques of insulating surfaces. 2.1. Ultra high vacuum. 2.2. Preparation of bulk insulating surfaces. 2.3. Deposition of insulating films, metals and organic molecules -- 3. Scanning probe microscopy in ultra high vacuum. 3.1. Atomic force microscopy. 3.2. Scanning tunneling microscopy. 3.3. Atomistic modeling of SPM -- 4. Scanning probe microscopy on bulk insulating surfaces. 4.1. Halide surfaces. 4.2. Oxide surfaces. 4.3. Modeling AFM on bulk insulating surfaces -- 5. Scanning probe microscopy on thin insulating films. 5.1. Halide films on metals. 5.2. Halide films on semiconductors. 5.3. Heteroepitaxial growth of alkali halide films. 5.4. Oxide films. 5.5. Modeling AFM on thin insulating films -- 6. Interaction of ions, electrons and photons with halide surfaces. 6.1. Ion bombardment of alkali halides. 6.2. Electron and photon stimulated desorption -- 7. Surface patterning with electrons and photons. 7.1. Surface topography modification by electronic excitations. 7.2. Nanoscale pits on alkali halide surfaces -- 8. Surface patterning with ions. 8.1. Ripple formation by ion bombardment. 8.2. A case study : ion beam modifications of KBr surfaces -- 9. Metal deposition on insulating surfaces. 9.1. Metals on halide surfaces. 9.2. Metals on oxide surfaces. 9.3. Metals on thin insulating films. 9.4. Modeling AFM on metal clusters on insulators -- 10. Organic molecules on insulating surfaces. 10.1. Chemical structures of organic molecules. 10.2. Organic molecules on halide surfaces. 10.3. Organic molecules on oxide surfaces. 10.4. Organic molecules on thin insulating films. 10.5. Modeling AFM on organic molecules on insulators -- 11. Scanning probe spectroscopy on insulating surfaces. 11.1. Force spectroscopy on insulating surfaces. 11.2. Tunneling spectroscopy on thin insulating films. 11.3. Tunneling spectroscopy on metal clusters. 11.4. Tunneling spectroscopy on organic molecules -- 12. Nanotribology on insulating surfaces. 12.1. Friction mechanisms at the atomic scale. 12.2. Friction on halide surfaces. 12.3. Nanowear processes on insulating surfaces. 12.4. Modeling nanotribology on insulating surfaces -- 13. Nanomanipulation on insulating surfaces. 13.1. Nanomanipulation experiments on insulating surfaces. 13.2. Modeling nanomanipulation on insulating surfaces. |
ctrlnum | (OCoLC)696142789 |
dewey-full | 530.41 |
dewey-hundreds | 500 - Natural sciences and mathematics |
dewey-ones | 530 - Physics |
dewey-raw | 530.41 |
dewey-search | 530.41 |
dewey-sort | 3530.41 |
dewey-tens | 530 - Physics |
discipline | Physik |
format | Electronic eBook |
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Crystal structures of insulating surfaces. 1.1. Halide surfaces. 1.2. Oxide surfaces -- 2. Preparation techniques of insulating surfaces. 2.1. Ultra high vacuum. 2.2. Preparation of bulk insulating surfaces. 2.3. Deposition of insulating films, metals and organic molecules -- 3. Scanning probe microscopy in ultra high vacuum. 3.1. Atomic force microscopy. 3.2. Scanning tunneling microscopy. 3.3. Atomistic modeling of SPM -- 4. Scanning probe microscopy on bulk insulating surfaces. 4.1. Halide surfaces. 4.2. Oxide surfaces. 4.3. Modeling AFM on bulk insulating surfaces -- 5. Scanning probe microscopy on thin insulating films. 5.1. Halide films on metals. 5.2. Halide films on semiconductors. 5.3. Heteroepitaxial growth of alkali halide films. 5.4. Oxide films. 5.5. Modeling AFM on thin insulating films -- 6. Interaction of ions, electrons and photons with halide surfaces. 6.1. Ion bombardment of alkali halides. 6.2. Electron and photon stimulated desorption -- 7. Surface patterning with electrons and photons. 7.1. Surface topography modification by electronic excitations. 7.2. Nanoscale pits on alkali halide surfaces -- 8. Surface patterning with ions. 8.1. Ripple formation by ion bombardment. 8.2. A case study : ion beam modifications of KBr surfaces -- 9. Metal deposition on insulating surfaces. 9.1. Metals on halide surfaces. 9.2. Metals on oxide surfaces. 9.3. Metals on thin insulating films. 9.4. Modeling AFM on metal clusters on insulators -- 10. Organic molecules on insulating surfaces. 10.1. Chemical structures of organic molecules. 10.2. Organic molecules on halide surfaces. 10.3. Organic molecules on oxide surfaces. 10.4. Organic molecules on thin insulating films. 10.5. Modeling AFM on organic molecules on insulators -- 11. Scanning probe spectroscopy on insulating surfaces. 11.1. Force spectroscopy on insulating surfaces. 11.2. Tunneling spectroscopy on thin insulating films. 11.3. Tunneling spectroscopy on metal clusters. 11.4. Tunneling spectroscopy on organic molecules -- 12. Nanotribology on insulating surfaces. 12.1. Friction mechanisms at the atomic scale. 12.2. Friction on halide surfaces. 12.3. Nanowear processes on insulating surfaces. 12.4. Modeling nanotribology on insulating surfaces -- 13. Nanomanipulation on insulating surfaces. 13.1. Nanomanipulation experiments on insulating surfaces. 13.2. Modeling nanomanipulation on insulating surfaces.</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">This publication, in two volumes, is devoted to the scientific impact of the work of Nobel Laureate, Pierre-Gilles de Gennes, one of the greatest scientists of the 20th century. It covers the important fields for which de Gennes was renowned : solid state (magnetism and superconductivity), macroscopic random media and percolation, supersolids, liquid crystals, polymers, adhesion and friction, and biophysics. The book brings together internationally renowned experts to contribute their perspectives on the significance of de Gennes' works. They have each selected a definitive paper, which gives the state of the field at the time the paper was published, highlights the paper's importance and provides an analysis of the development of the field right up to the modern day. The insightful perspectives of these scientists make the book both unique and intriguing. 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id | ZDB-4-EBA-ocn696142789 |
illustrated | Illustrated |
indexdate | 2024-10-25T16:17:56Z |
institution | BVB |
isbn | 9789814273817 9814273813 |
language | English |
oclc_num | 696142789 |
open_access_boolean | |
owner | MAIN |
owner_facet | MAIN |
physical | 1 online resource (xvi, 184 pages :) |
psigel | ZDB-4-EBA |
publishDate | 2009 |
publishDateSearch | 2009 |
publishDateSort | 2009 |
publisher | World Scientific Pub. Co., |
record_format | marc |
series | Series on directions in condensed matter physics ; |
series2 | Series on directions in condensed matter physics ; |
spelling | P.G. de Gennes' impact in science. Volume I, Solid state and liquid crystals / editors, Julien Bok, Jacques Prost, Françoise Brochard-Wyart ; assistant editor, Jacqueline Bouvier. Solid state and liquid crystals Singapore : World Scientific Pub. Co., ©2009. 1 online resource (xvi, 184 pages :) text txt rdacontent computer c rdamedia online resource cr rdacarrier Series on directions in condensed matter physics ; v. 18 Includes bibliographical references. Print version record. 1. Crystal structures of insulating surfaces. 1.1. Halide surfaces. 1.2. Oxide surfaces -- 2. Preparation techniques of insulating surfaces. 2.1. Ultra high vacuum. 2.2. Preparation of bulk insulating surfaces. 2.3. Deposition of insulating films, metals and organic molecules -- 3. Scanning probe microscopy in ultra high vacuum. 3.1. Atomic force microscopy. 3.2. Scanning tunneling microscopy. 3.3. Atomistic modeling of SPM -- 4. Scanning probe microscopy on bulk insulating surfaces. 4.1. Halide surfaces. 4.2. Oxide surfaces. 4.3. Modeling AFM on bulk insulating surfaces -- 5. Scanning probe microscopy on thin insulating films. 5.1. Halide films on metals. 5.2. Halide films on semiconductors. 5.3. Heteroepitaxial growth of alkali halide films. 5.4. Oxide films. 5.5. Modeling AFM on thin insulating films -- 6. Interaction of ions, electrons and photons with halide surfaces. 6.1. Ion bombardment of alkali halides. 6.2. Electron and photon stimulated desorption -- 7. Surface patterning with electrons and photons. 7.1. Surface topography modification by electronic excitations. 7.2. Nanoscale pits on alkali halide surfaces -- 8. Surface patterning with ions. 8.1. Ripple formation by ion bombardment. 8.2. A case study : ion beam modifications of KBr surfaces -- 9. Metal deposition on insulating surfaces. 9.1. Metals on halide surfaces. 9.2. Metals on oxide surfaces. 9.3. Metals on thin insulating films. 9.4. Modeling AFM on metal clusters on insulators -- 10. Organic molecules on insulating surfaces. 10.1. Chemical structures of organic molecules. 10.2. Organic molecules on halide surfaces. 10.3. Organic molecules on oxide surfaces. 10.4. Organic molecules on thin insulating films. 10.5. Modeling AFM on organic molecules on insulators -- 11. Scanning probe spectroscopy on insulating surfaces. 11.1. Force spectroscopy on insulating surfaces. 11.2. Tunneling spectroscopy on thin insulating films. 11.3. Tunneling spectroscopy on metal clusters. 11.4. Tunneling spectroscopy on organic molecules -- 12. Nanotribology on insulating surfaces. 12.1. Friction mechanisms at the atomic scale. 12.2. Friction on halide surfaces. 12.3. Nanowear processes on insulating surfaces. 12.4. Modeling nanotribology on insulating surfaces -- 13. Nanomanipulation on insulating surfaces. 13.1. Nanomanipulation experiments on insulating surfaces. 13.2. Modeling nanomanipulation on insulating surfaces. This publication, in two volumes, is devoted to the scientific impact of the work of Nobel Laureate, Pierre-Gilles de Gennes, one of the greatest scientists of the 20th century. It covers the important fields for which de Gennes was renowned : solid state (magnetism and superconductivity), macroscopic random media and percolation, supersolids, liquid crystals, polymers, adhesion and friction, and biophysics. The book brings together internationally renowned experts to contribute their perspectives on the significance of de Gennes' works. They have each selected a definitive paper, which gives the state of the field at the time the paper was published, highlights the paper's importance and provides an analysis of the development of the field right up to the modern day. The insightful perspectives of these scientists make the book both unique and intriguing. This is the first volume devoted to solid state and liquid crystals. Gennes, Pierre-Gilles de. http://id.loc.gov/authorities/names/n83828964 Gennes, Pierre-Gilles de fast https://id.oclc.org/worldcat/entity/E39PBJqqtcYvJVPcckdYxDt7pP Condensed matter. http://id.loc.gov/authorities/subjects/sh85030765 Solid state physics. http://id.loc.gov/authorities/subjects/sh85124640 Liquid crystals. http://id.loc.gov/authorities/subjects/sh85077357 Biophysics. http://id.loc.gov/authorities/subjects/sh85014253 Liquid Crystals https://id.nlm.nih.gov/mesh/D050866 Biophysics https://id.nlm.nih.gov/mesh/D001703 Matière condensée. Physique de l'état solide. Cristaux liquides. Biophysique. SCIENCE Physics Condensed Matter. bisacsh Biophysics fast Condensed matter fast Liquid crystals fast Solid state physics fast Bok, Julien, 1933- https://id.oclc.org/worldcat/entity/E39PBJrwWrfQYHYrHtMJwPTyh3 http://id.loc.gov/authorities/names/n86004669 Prost, Jacques. http://id.loc.gov/authorities/names/n90679015 Brochard-Wyart, Françoise. http://id.loc.gov/authorities/names/n2003042431 has work: P.G. de Gennes' impact on science (Text) https://id.oclc.org/worldcat/entity/E39PCFQKVV6gCm8MyByCFrkKq3 https://id.oclc.org/worldcat/ontology/hasWork Print version: P.G. de Gennes' impact in science. Volume I, Solid state and liquid crystals. Singapore : World Scientific Pub. Co., ©2009 9789814280655 (OCoLC)661016169 Series on directions in condensed matter physics ; v. 18. http://id.loc.gov/authorities/names/no99039867 FWS01 ZDB-4-EBA FWS_PDA_EBA https://search.ebscohost.com/login.aspx?direct=true&scope=site&db=nlebk&AN=340511 Volltext CBO01 ZDB-4-EBA FWS_PDA_EBA https://search.ebscohost.com/login.aspx?direct=true&scope=site&db=nlebk&AN=340511 Volltext |
spellingShingle | P.G. de Gennes' impact in science. Series on directions in condensed matter physics ; 1. Crystal structures of insulating surfaces. 1.1. Halide surfaces. 1.2. Oxide surfaces -- 2. Preparation techniques of insulating surfaces. 2.1. Ultra high vacuum. 2.2. Preparation of bulk insulating surfaces. 2.3. Deposition of insulating films, metals and organic molecules -- 3. Scanning probe microscopy in ultra high vacuum. 3.1. Atomic force microscopy. 3.2. Scanning tunneling microscopy. 3.3. Atomistic modeling of SPM -- 4. Scanning probe microscopy on bulk insulating surfaces. 4.1. Halide surfaces. 4.2. Oxide surfaces. 4.3. Modeling AFM on bulk insulating surfaces -- 5. Scanning probe microscopy on thin insulating films. 5.1. Halide films on metals. 5.2. Halide films on semiconductors. 5.3. Heteroepitaxial growth of alkali halide films. 5.4. Oxide films. 5.5. Modeling AFM on thin insulating films -- 6. Interaction of ions, electrons and photons with halide surfaces. 6.1. Ion bombardment of alkali halides. 6.2. Electron and photon stimulated desorption -- 7. Surface patterning with electrons and photons. 7.1. Surface topography modification by electronic excitations. 7.2. Nanoscale pits on alkali halide surfaces -- 8. Surface patterning with ions. 8.1. Ripple formation by ion bombardment. 8.2. A case study : ion beam modifications of KBr surfaces -- 9. Metal deposition on insulating surfaces. 9.1. Metals on halide surfaces. 9.2. Metals on oxide surfaces. 9.3. Metals on thin insulating films. 9.4. Modeling AFM on metal clusters on insulators -- 10. Organic molecules on insulating surfaces. 10.1. Chemical structures of organic molecules. 10.2. Organic molecules on halide surfaces. 10.3. Organic molecules on oxide surfaces. 10.4. Organic molecules on thin insulating films. 10.5. Modeling AFM on organic molecules on insulators -- 11. Scanning probe spectroscopy on insulating surfaces. 11.1. Force spectroscopy on insulating surfaces. 11.2. Tunneling spectroscopy on thin insulating films. 11.3. Tunneling spectroscopy on metal clusters. 11.4. Tunneling spectroscopy on organic molecules -- 12. Nanotribology on insulating surfaces. 12.1. Friction mechanisms at the atomic scale. 12.2. Friction on halide surfaces. 12.3. Nanowear processes on insulating surfaces. 12.4. Modeling nanotribology on insulating surfaces -- 13. Nanomanipulation on insulating surfaces. 13.1. Nanomanipulation experiments on insulating surfaces. 13.2. Modeling nanomanipulation on insulating surfaces. Gennes, Pierre-Gilles de. http://id.loc.gov/authorities/names/n83828964 Gennes, Pierre-Gilles de fast https://id.oclc.org/worldcat/entity/E39PBJqqtcYvJVPcckdYxDt7pP Condensed matter. http://id.loc.gov/authorities/subjects/sh85030765 Solid state physics. http://id.loc.gov/authorities/subjects/sh85124640 Liquid crystals. http://id.loc.gov/authorities/subjects/sh85077357 Biophysics. http://id.loc.gov/authorities/subjects/sh85014253 Liquid Crystals https://id.nlm.nih.gov/mesh/D050866 Biophysics https://id.nlm.nih.gov/mesh/D001703 Matière condensée. Physique de l'état solide. Cristaux liquides. Biophysique. SCIENCE Physics Condensed Matter. bisacsh Biophysics fast Condensed matter fast Liquid crystals fast Solid state physics fast |
subject_GND | http://id.loc.gov/authorities/names/n83828964 http://id.loc.gov/authorities/subjects/sh85030765 http://id.loc.gov/authorities/subjects/sh85124640 http://id.loc.gov/authorities/subjects/sh85077357 http://id.loc.gov/authorities/subjects/sh85014253 https://id.nlm.nih.gov/mesh/D050866 https://id.nlm.nih.gov/mesh/D001703 |
title | P.G. de Gennes' impact in science. |
title_alt | Solid state and liquid crystals |
title_auth | P.G. de Gennes' impact in science. |
title_exact_search | P.G. de Gennes' impact in science. |
title_full | P.G. de Gennes' impact in science. Volume I, Solid state and liquid crystals / editors, Julien Bok, Jacques Prost, Françoise Brochard-Wyart ; assistant editor, Jacqueline Bouvier. |
title_fullStr | P.G. de Gennes' impact in science. Volume I, Solid state and liquid crystals / editors, Julien Bok, Jacques Prost, Françoise Brochard-Wyart ; assistant editor, Jacqueline Bouvier. |
title_full_unstemmed | P.G. de Gennes' impact in science. Volume I, Solid state and liquid crystals / editors, Julien Bok, Jacques Prost, Françoise Brochard-Wyart ; assistant editor, Jacqueline Bouvier. |
title_short | P.G. de Gennes' impact in science. |
title_sort | p g de gennes impact in science solid state and liquid crystals |
topic | Gennes, Pierre-Gilles de. http://id.loc.gov/authorities/names/n83828964 Gennes, Pierre-Gilles de fast https://id.oclc.org/worldcat/entity/E39PBJqqtcYvJVPcckdYxDt7pP Condensed matter. http://id.loc.gov/authorities/subjects/sh85030765 Solid state physics. http://id.loc.gov/authorities/subjects/sh85124640 Liquid crystals. http://id.loc.gov/authorities/subjects/sh85077357 Biophysics. http://id.loc.gov/authorities/subjects/sh85014253 Liquid Crystals https://id.nlm.nih.gov/mesh/D050866 Biophysics https://id.nlm.nih.gov/mesh/D001703 Matière condensée. Physique de l'état solide. Cristaux liquides. Biophysique. SCIENCE Physics Condensed Matter. bisacsh Biophysics fast Condensed matter fast Liquid crystals fast Solid state physics fast |
topic_facet | Gennes, Pierre-Gilles de. Gennes, Pierre-Gilles de Condensed matter. Solid state physics. Liquid crystals. Biophysics. Liquid Crystals Biophysics Matière condensée. Physique de l'état solide. Cristaux liquides. Biophysique. SCIENCE Physics Condensed Matter. Condensed matter Liquid crystals Solid state physics |
url | https://search.ebscohost.com/login.aspx?direct=true&scope=site&db=nlebk&AN=340511 |
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