Discovering minimum energy pathways via distortion symmetry groups
Physical systems evolve from one state to another along paths of least energy barrier. Without a priori knowledge of the energy landscape, multidimensional search methods aim to find such minimum energy pathways between the initial and final states of a kinetic process. However, in many cases, the u...
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Veröffentlicht in: | Physical review. B 2018-08, Vol.98 (8), p.085107 |
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creator | Munro, Jason M Akamatsu, Hirofumi Padmanabhan, Haricharan Liu, Vincent S Shi, Yin Chen, Long-Qing VanLeeuwen, Brian K Dabo, Ismaila Gopalan, Venkatraman |
description | Physical systems evolve from one state to another along paths of least energy barrier. Without a priori knowledge of the energy landscape, multidimensional search methods aim to find such minimum energy pathways between the initial and final states of a kinetic process. However, in many cases, the user has to repeatedly provide initial guess paths, thus implying that the reliability of the final result is heavily user-dependent. Recently, the idea of “distortion symmetry groups” as a complete description of the symmetry of a path has been introduced. Through this, a new framework is enabled that provides a powerful means of classifying the infinite collection of possible pathways into a finite number of symmetry equivalent subsets, and then exploring each of these subsets systematically using rigorous group theoretical methods. The method, which we name the distortion symmetry method, is shown to lead to the discovery of previously hidden pathways for the case studies of bulk ferroelectric switching and domain wall motion in proper and improper ferroelectrics, as well as in multiferroic switching. These provide novel physical insights into the nucleation of switching pathways at experimentally observed domain walls in Ca3Ti2O7, as well as how polarization switching can proceed without reversing magnetization in BiFeO3. Furthermore, we demonstrate how symmetry-breaking from a highly symmetric pathway can be used to probe the non-Ising (Bloch and Néel) polarization components integral to transient states involved in switching in PbTiO3. The distortion symmetry method is applicable to a wide variety of physical phenomena ranging from structural, electronic and magnetic distortions, diffusion, and phase transitions in materials. |
doi_str_mv | 10.1103/PhysRevB.98.085107 |
format | Article |
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Without a priori knowledge of the energy landscape, multidimensional search methods aim to find such minimum energy pathways between the initial and final states of a kinetic process. However, in many cases, the user has to repeatedly provide initial guess paths, thus implying that the reliability of the final result is heavily user-dependent. Recently, the idea of “distortion symmetry groups” as a complete description of the symmetry of a path has been introduced. Through this, a new framework is enabled that provides a powerful means of classifying the infinite collection of possible pathways into a finite number of symmetry equivalent subsets, and then exploring each of these subsets systematically using rigorous group theoretical methods. The method, which we name the distortion symmetry method, is shown to lead to the discovery of previously hidden pathways for the case studies of bulk ferroelectric switching and domain wall motion in proper and improper ferroelectrics, as well as in multiferroic switching. These provide novel physical insights into the nucleation of switching pathways at experimentally observed domain walls in Ca3Ti2O7, as well as how polarization switching can proceed without reversing magnetization in BiFeO3. Furthermore, we demonstrate how symmetry-breaking from a highly symmetric pathway can be used to probe the non-Ising (Bloch and Néel) polarization components integral to transient states involved in switching in PbTiO3. 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The method, which we name the distortion symmetry method, is shown to lead to the discovery of previously hidden pathways for the case studies of bulk ferroelectric switching and domain wall motion in proper and improper ferroelectrics, as well as in multiferroic switching. These provide novel physical insights into the nucleation of switching pathways at experimentally observed domain walls in Ca3Ti2O7, as well as how polarization switching can proceed without reversing magnetization in BiFeO3. Furthermore, we demonstrate how symmetry-breaking from a highly symmetric pathway can be used to probe the non-Ising (Bloch and Néel) polarization components integral to transient states involved in switching in PbTiO3. The distortion symmetry method is applicable to a wide variety of physical phenomena ranging from structural, electronic and magnetic distortions, diffusion, and phase transitions in materials.</description><subject>Bismuth compounds</subject><subject>Broken symmetry</subject><subject>Distortion</subject><subject>Domain walls</subject><subject>Ferroelectric materials</subject><subject>Ferroelectricity</subject><subject>Ising model</subject><subject>Lead titanates</subject><subject>Multidimensional methods</subject><subject>Nucleation</subject><subject>Phase transitions</subject><subject>Polarization</subject><subject>Switching</subject><subject>Symmetry</subject><issn>2469-9950</issn><issn>2469-9969</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2018</creationdate><recordtype>article</recordtype><recordid>eNo9jV1LwzAYhYMoOOb-gFcBr1vfN2nT5NLNTxgooteja992GbapSTrpv3eieHXOA4fnMHaJkCKCvH7ZTeGVDsvU6BR0jlCcsJnIlEmMUeb0v-dwzhYh7AEAFZgCzIwtb22o3IG87Vve2d52Y8epJ99OfCjj7qucAj_Yktc2ROejdT0PU9dR9BNvvRuHcMHOmvIj0OIv5-z9_u5t9Zisnx-eVjfrZECUMWm2RE0psCzUVoPIdaOVlgRQZyiPAFUtMlQCZCGk1IYEFNXPICOp69zIObv69Q7efY4U4mbvRt8fLzcChclRq0zJb-Y3TsE</recordid><startdate>20180815</startdate><enddate>20180815</enddate><creator>Munro, Jason M</creator><creator>Akamatsu, Hirofumi</creator><creator>Padmanabhan, Haricharan</creator><creator>Liu, Vincent S</creator><creator>Shi, Yin</creator><creator>Chen, Long-Qing</creator><creator>VanLeeuwen, Brian K</creator><creator>Dabo, Ismaila</creator><creator>Gopalan, Venkatraman</creator><general>American Physical Society</general><scope>7SR</scope><scope>7U5</scope><scope>8BQ</scope><scope>8FD</scope><scope>H8D</scope><scope>JG9</scope><scope>L7M</scope></search><sort><creationdate>20180815</creationdate><title>Discovering minimum energy pathways via distortion symmetry groups</title><author>Munro, Jason M ; Akamatsu, Hirofumi ; Padmanabhan, Haricharan ; Liu, Vincent S ; Shi, Yin ; Chen, Long-Qing ; VanLeeuwen, Brian K ; Dabo, Ismaila ; Gopalan, Venkatraman</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-p113t-fbeefa21a76b80258f8683e00d4138f80cd2416203723389e207c83e04e38d593</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2018</creationdate><topic>Bismuth compounds</topic><topic>Broken symmetry</topic><topic>Distortion</topic><topic>Domain walls</topic><topic>Ferroelectric materials</topic><topic>Ferroelectricity</topic><topic>Ising model</topic><topic>Lead titanates</topic><topic>Multidimensional methods</topic><topic>Nucleation</topic><topic>Phase transitions</topic><topic>Polarization</topic><topic>Switching</topic><topic>Symmetry</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Munro, Jason M</creatorcontrib><creatorcontrib>Akamatsu, Hirofumi</creatorcontrib><creatorcontrib>Padmanabhan, Haricharan</creatorcontrib><creatorcontrib>Liu, Vincent S</creatorcontrib><creatorcontrib>Shi, Yin</creatorcontrib><creatorcontrib>Chen, Long-Qing</creatorcontrib><creatorcontrib>VanLeeuwen, Brian K</creatorcontrib><creatorcontrib>Dabo, Ismaila</creatorcontrib><creatorcontrib>Gopalan, Venkatraman</creatorcontrib><collection>Engineered Materials Abstracts</collection><collection>Solid State and Superconductivity Abstracts</collection><collection>METADEX</collection><collection>Technology Research Database</collection><collection>Aerospace Database</collection><collection>Materials Research Database</collection><collection>Advanced Technologies Database with Aerospace</collection><jtitle>Physical review. B</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Munro, Jason M</au><au>Akamatsu, Hirofumi</au><au>Padmanabhan, Haricharan</au><au>Liu, Vincent S</au><au>Shi, Yin</au><au>Chen, Long-Qing</au><au>VanLeeuwen, Brian K</au><au>Dabo, Ismaila</au><au>Gopalan, Venkatraman</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Discovering minimum energy pathways via distortion symmetry groups</atitle><jtitle>Physical review. B</jtitle><date>2018-08-15</date><risdate>2018</risdate><volume>98</volume><issue>8</issue><spage>085107</spage><pages>085107-</pages><issn>2469-9950</issn><eissn>2469-9969</eissn><abstract>Physical systems evolve from one state to another along paths of least energy barrier. Without a priori knowledge of the energy landscape, multidimensional search methods aim to find such minimum energy pathways between the initial and final states of a kinetic process. However, in many cases, the user has to repeatedly provide initial guess paths, thus implying that the reliability of the final result is heavily user-dependent. Recently, the idea of “distortion symmetry groups” as a complete description of the symmetry of a path has been introduced. Through this, a new framework is enabled that provides a powerful means of classifying the infinite collection of possible pathways into a finite number of symmetry equivalent subsets, and then exploring each of these subsets systematically using rigorous group theoretical methods. The method, which we name the distortion symmetry method, is shown to lead to the discovery of previously hidden pathways for the case studies of bulk ferroelectric switching and domain wall motion in proper and improper ferroelectrics, as well as in multiferroic switching. These provide novel physical insights into the nucleation of switching pathways at experimentally observed domain walls in Ca3Ti2O7, as well as how polarization switching can proceed without reversing magnetization in BiFeO3. Furthermore, we demonstrate how symmetry-breaking from a highly symmetric pathway can be used to probe the non-Ising (Bloch and Néel) polarization components integral to transient states involved in switching in PbTiO3. The distortion symmetry method is applicable to a wide variety of physical phenomena ranging from structural, electronic and magnetic distortions, diffusion, and phase transitions in materials.</abstract><cop>College Park</cop><pub>American Physical Society</pub><doi>10.1103/PhysRevB.98.085107</doi></addata></record> |
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subjects | Bismuth compounds Broken symmetry Distortion Domain walls Ferroelectric materials Ferroelectricity Ising model Lead titanates Multidimensional methods Nucleation Phase transitions Polarization Switching Symmetry |
title | Discovering minimum energy pathways via distortion symmetry groups |
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