{"id":26,"date":"2014-03-11T08:32:23","date_gmt":"2014-03-11T06:32:23","guid":{"rendered":"http:\/\/phsites.technion.ac.il\/lindner\/?page_id=26"},"modified":"2022-01-26T10:52:18","modified_gmt":"2022-01-26T08:52:18","slug":"research","status":"publish","type":"page","link":"https:\/\/phsites.technion.ac.il\/lindner\/research\/","title":{"rendered":"Research Areas"},"content":{"rendered":"\n<h1 class=\"wp-block-heading\">Research Areas<\/h1>\n\n\n\n<div class=\"wp-block-ugb-spacer ugb-spacer ugb-e7995f2 ugb-spacer--v2 ugb-main-block\" id=\"\"><style>.ugb-e7995f2.ugb-spacer{height:50px}<\/style><div class=\"ugb-inner-block\"><div class=\"ugb-block-content\"><div class=\"ugb-spacer--inner\"><\/div><\/div><\/div><\/div>\n\n\n<section class=\"gb-block-post-grid featuredpage aligncenter\"><div class=\"gb-post-grid-items is-list\"><article id=\"post-89\" class=\"gb-post-grid-item post-89 page type-page status-publish has-post-thumbnail entry\"><div class=\"gb-block-post-grid-image\"><a href=\"https:\/\/phsites.technion.ac.il\/lindner\/non-abelian-topological-systems\/\" rel=\"bookmark\" aria-hidden=\"true\" tabindex=\"-1\"><img loading=\"lazy\" decoding=\"async\" width=\"223\" height=\"133\" src=\"https:\/\/phsites.technion.ac.il\/lindner\/wp-content\/uploads\/sites\/18\/2020\/08\/non-abelian.jpg\" class=\"attachment-featured size-featured\" alt=\"Non Abelian Topological Systems\" \/><\/a><\/div><div class=\"gb-block-post-grid-text\"><header class=\"gb-block-post-grid-header\"><h2 class=\"gb-block-post-grid-title\"><a href=\"https:\/\/phsites.technion.ac.il\/lindner\/non-abelian-topological-systems\/\" rel=\"bookmark\">Non Abelian Topological Systems<\/a><\/h2><\/header><div class=\"gb-block-post-grid-excerpt\"><p>Non Abelian Topological Systems A fascinating property of many topological phases are collective fractionalized excitations which are highly non-local in nature. These carry fractions of the quantum numbers of the underlying microscopic degrees of freedom; e.g., they can carry fractions of the electron charge. In two spatial dimensions, such emergent excitations can have exotic exchange&hellip;<\/p>\n<p><a class=\"gb-block-post-grid-more-link gb-text-link\" href=\"https:\/\/phsites.technion.ac.il\/lindner\/non-abelian-topological-systems\/\" rel=\"bookmark\">Read More <span class=\"screen-reader-text\">Non Abelian Topological Systems<\/span><\/a><\/p><\/div><\/div><\/article>\n<article id=\"post-92\" class=\"gb-post-grid-item post-92 page type-page status-publish has-post-thumbnail entry\"><div class=\"gb-block-post-grid-image\"><a href=\"https:\/\/phsites.technion.ac.il\/lindner\/topological-phenomena-non-equilibrium-systems\/\" rel=\"bookmark\" aria-hidden=\"true\" tabindex=\"-1\"><img loading=\"lazy\" decoding=\"async\" width=\"223\" height=\"133\" src=\"https:\/\/phsites.technion.ac.il\/lindner\/wp-content\/uploads\/sites\/18\/2020\/08\/topological.jpg\" class=\"attachment-featured size-featured\" alt=\"Topological Phenomena in Non-equilibrium Systems\" \/><\/a><\/div><div class=\"gb-block-post-grid-text\"><header class=\"gb-block-post-grid-header\"><h2 class=\"gb-block-post-grid-title\"><a href=\"https:\/\/phsites.technion.ac.il\/lindner\/topological-phenomena-non-equilibrium-systems\/\" rel=\"bookmark\">Topological Phenomena in Non-equilibrium Systems<\/a><\/h2><\/header><div class=\"gb-block-post-grid-excerpt\"><p>Topological Phenomena in Non-equilibrium Systems The efforts to realize new topological phases have focused mostly on equilibrium systems at zero temperature. The exciting possibility of realizing topological phenomena in out-of-equilibrium systems has been recently proposed in the context systems subjected to periodic external driving forces. A major advantage of this setup is the wider range&hellip;<\/p>\n<p><a class=\"gb-block-post-grid-more-link gb-text-link\" href=\"https:\/\/phsites.technion.ac.il\/lindner\/topological-phenomena-non-equilibrium-systems\/\" rel=\"bookmark\">Read More <span class=\"screen-reader-text\">Topological Phenomena in Non-equilibrium Systems<\/span><\/a><\/p><\/div><\/div><\/article>\n<article id=\"post-104\" class=\"gb-post-grid-item post-104 page type-page status-publish has-post-thumbnail entry\"><div class=\"gb-block-post-grid-image\"><a href=\"https:\/\/phsites.technion.ac.il\/lindner\/transport-in-strongly-corelated-systems\/\" rel=\"bookmark\" aria-hidden=\"true\" tabindex=\"-1\"><img loading=\"lazy\" decoding=\"async\" width=\"223\" height=\"133\" src=\"https:\/\/phsites.technion.ac.il\/lindner\/wp-content\/uploads\/sites\/18\/2020\/08\/transport.jpg\" class=\"attachment-featured size-featured\" alt=\"Transport in Strongly Corelated Systems\" \/><\/a><\/div><div class=\"gb-block-post-grid-text\"><header class=\"gb-block-post-grid-header\"><h2 class=\"gb-block-post-grid-title\"><a href=\"https:\/\/phsites.technion.ac.il\/lindner\/transport-in-strongly-corelated-systems\/\" rel=\"bookmark\">Transport in Strongly Corelated Systems<\/a><\/h2><\/header><div class=\"gb-block-post-grid-excerpt\"><p>Transport in Strongly Corelated Systems Materials exhibiting strong electron-electron interactions pose some of the most outstanding puzzles in condensed matter physics. Notable examples are the cuprate high-temperature superconductors and heavy fermion metals. Transport measurements, and specifically the electronic conductivity tensor, are perhaps one of the most accessible probes for studying the properties of these materials.&hellip;<\/p>\n<p><a class=\"gb-block-post-grid-more-link gb-text-link\" href=\"https:\/\/phsites.technion.ac.il\/lindner\/transport-in-strongly-corelated-systems\/\" rel=\"bookmark\">Read More <span class=\"screen-reader-text\">Transport in Strongly Corelated Systems<\/span><\/a><\/p><\/div><\/div><\/article>\n<article id=\"post-100\" class=\"gb-post-grid-item post-100 page type-page status-publish has-post-thumbnail entry\"><div class=\"gb-block-post-grid-image\"><a href=\"https:\/\/phsites.technion.ac.il\/lindner\/photonic-quantum-computing\/\" rel=\"bookmark\" aria-hidden=\"true\" tabindex=\"-1\"><img loading=\"lazy\" decoding=\"async\" width=\"223\" height=\"133\" src=\"https:\/\/phsites.technion.ac.il\/lindner\/wp-content\/uploads\/sites\/18\/2020\/08\/semi.jpg\" class=\"attachment-featured size-featured\" alt=\"Semiconductor sources for photonic quantum computing\" \/><\/a><\/div><div class=\"gb-block-post-grid-text\"><header class=\"gb-block-post-grid-header\"><h2 class=\"gb-block-post-grid-title\"><a href=\"https:\/\/phsites.technion.ac.il\/lindner\/photonic-quantum-computing\/\" rel=\"bookmark\">Semiconductor sources for photonic quantum computing<\/a><\/h2><\/header><div class=\"gb-block-post-grid-excerpt\"><p>Semiconductor sources for photonic quantum computing Photonics has emerged as an arena which holds great potential for realizing a quantum computer. The advanced technology of optical circuits allows for precision measurements and manipulations which are a crucial ingredient in any realization. More importantly, since photons are very weakly interacting, they have little sensitivity to decoherence,&hellip;<\/p>\n<p><a class=\"gb-block-post-grid-more-link gb-text-link\" href=\"https:\/\/phsites.technion.ac.il\/lindner\/photonic-quantum-computing\/\" rel=\"bookmark\">Read More <span class=\"screen-reader-text\">Semiconductor sources for photonic quantum computing<\/span><\/a><\/p><\/div><\/div><\/article>\n<\/div><\/section>","protected":false},"excerpt":{"rendered":"<p>Research Areas<\/p>\n","protected":false},"author":2,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_genesis_hide_title":false,"_genesis_hide_breadcrumbs":false,"_genesis_hide_singular_image":false,"_genesis_hide_footer_widgets":false,"_genesis_custom_body_class":"","_genesis_custom_post_class":"","_genesis_layout":"","footnotes":""},"class_list":{"0":"post-26","1":"page","2":"type-page","3":"status-publish","5":"entry"},"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.3 - 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