{"id":2244,"date":"2022-02-08T14:23:00","date_gmt":"2022-02-08T14:23:00","guid":{"rendered":"https:\/\/www.polariton.ch\/?p=2244"},"modified":"2025-10-01T11:32:34","modified_gmt":"2025-10-01T11:32:34","slug":"transparent-optical-thz-link-at-240-192-gbit-s-over-5-115-m-enabled-by-plasmonics","status":"publish","type":"page","link":"https:\/\/www.polariton.ch\/polarisandbox\/?page_id=2244","title":{"rendered":"Transparent Optical-THz Link at 240\/192 Gbit\/s over 5\/115 m Enabled by Plasmonics"},"content":{"rendered":"<h1>\n<h1><span style=\"color: #808080;\">Transparent Optical-THz-Optical Link at<br \/>\n240\/192 Gbit\/s over 5\/115 m Enabled<br \/>\nby Plasmonics<\/span><\/h1>\n<\/h1>\n<hr>\n<div>\n<p style=\"padding-left: 40px;\"><span>Yannik Horst, Tobias Blatter, Laurenz Kulmer, Bertold Ian Bitachon, Benedikt Baeuerle,<br \/>\nMarcel Destraz, Wolfgang Heni, Stefan Koepfli, Patrick Habegger, Marco Eppenberger, Eva De Leo,<br \/>\nClaudia Hoessbacher, Delwin L. Elder, Scott R. Hammond, Lewis E. Johnson,<br \/>\nLarry R. Dalton, Senior Member, IEEE, Yuriy Fedoryshyn, Yannick Salamin,<br \/>\nMaurizio Burla, Senior Member, IEEE, and Juerg Leuthold, Fellow, IEEE<\/span><b>25<\/b><span>, 1762-1768 (2017)<\/span><\/p>\n<\/div>\n<hr>\n<blockquote>\n<p class=\"article-heading\" id=\"Abstract\">Abstract<\/p>\n<p xmlns:mml=\"http:\/\/www.w3.org\/1998\/Math\/MathML\" xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\">A transparent Optical-subTHz-Optical link providing record-high single line rates of 240 Gbit\/s and 192 Gbit\/s on a single optical carrier over distances from 5 to 115 m is demonstrated. Besides a direct mapping of the optical to a 230 GHz subTHz-carrier frequency by means of a uni-traveling carrier (UTC) photodiode, we demonstrate direct conversion of data from the subTHz domain back to the optical domain by a <a href=\"https:\/\/www.polariton.ch\/polarisandbox\/products\">plasmonic modulator<\/a>. It is shown that the subTHz-to-optical upconversion can even be performed at good quality without any electrical amplifiers. Finally, at the receiver, the local oscillator is employed to directly map the optical signal back to the electrical baseband within a coherent receiver.<\/p>\n<\/blockquote>\n<div>\n<p>    <img decoding=\"async\" data-src=\"\/wp-content\/uploads\/2022\/02\/Transparent-Optical-THz-Optical-Link.jpg\" alt=\"Transparent Optical-THz-Optical Link at 240192 Gbits over 5115 m Enabled by Plasmonics\" src=\"data:image\/svg+xml;base64,PHN2ZyB3aWR0aD0iMSIgaGVpZ2h0PSIxIiB4bWxucz0iaHR0cDovL3d3dy53My5vcmcvMjAwMC9zdmciPjwvc3ZnPg==\" class=\"lazyload\"><\/p>\n<\/div>\n<div>\n<p>Fig. 1. (a) Vision of future communication networks, where THz links are transparently embedded in the fiber-optical network for backhauling and device-todevice applications.<\/p>\n<\/div>\n<p><p>\n        <a href=\"https:\/\/ieeexplore.ieee.org\/stamp\/stamp.jsp?tp=&#038;arnumber=9705059\">Transparent Optical-THz-Optical Link at 240\/192 Gbit\/s over 5\/115 m Enabled by Plasmonics<\/a>\n    <\/p>\n<\/p>\n<p><!--more--><br \/>\n<!-- {\"type\":\"layout\",\"children\":[{\"type\":\"section\",\"props\":{\"image_position\":\"center-center\",\"style\":\"default\",\"title_breakpoint\":\"xl\",\"title_position\":\"top-left\",\"title_rotation\":\"left\",\"vertical_align\":\"\",\"width\":\"default\"},\"children\":[{\"type\":\"row\",\"children\":[{\"type\":\"column\",\"props\":{\"image_position\":\"center-center\",\"position_sticky_breakpoint\":\"m\"},\"children\":[{\"type\":\"headline\",\"props\":{\"content\":\"\n\n<h1><span style=\\\"color: #808080;\\\">Transparent Optical-THz-Optical Link at\\n240\\\/192 Gbit\\\/s over 5\\\/115 m Enabled\\nby Plasmonics<\\\/span><\\\/h1>\",\"position\":\"relative\",\"title_color\":\"emphasis\",\"title_element\":\"h1\",\"title_font_family\":\"primary\",\"title_style\":\"h1\"}},{\"type\":\"divider\",\"props\":{\"divider_element\":\"hr\"}},{\"type\":\"text\",\"props\":{\"column_breakpoint\":\"m\",\"content\":\"\n\n<p style=\\\"padding-left: 40px;\\\"><span>Yannik Horst, Tobias Blatter, Laurenz Kulmer, Bertold Ian Bitachon, Benedikt Baeuerle,\\nMarcel Destraz, Wolfgang Heni, Stefan Koepfli, Patrick Habegger, Marco Eppenberger, Eva De Leo,\\nClaudia Hoessbacher, Delwin L. Elder, Scott R. Hammond, Lewis E. Johnson,\\nLarry R. Dalton, Senior Member, IEEE, Yuriy Fedoryshyn, Yannick Salamin,\\nMaurizio Burla, Senior Member, IEEE, and Juerg Leuthold, Fellow, IEEE<\\\/span><b>25<\\\/b><span>, 1762-1768 (2017)<\\\/span><\\\/p>\",\"margin\":\"default\"}},{\"type\":\"divider\",\"props\":{\"divider_element\":\"hr\"}}]}]},{\"type\":\"row\",\"children\":[{\"type\":\"column\",\"props\":{\"image_position\":\"center-center\",\"position_sticky_breakpoint\":\"m\",\"width_medium\":\"3-4\"},\"children\":[{\"type\":\"quotation\",\"props\":{\"content\":\"\n\n<p class=\\\"article-heading\\\" id=\\\"Abstract\\\">Abstract<\\\/p>\\n\n\n<p xmlns:mml=\\\"http:\\\/\\\/www.w3.org\\\/1998\\\/Math\\\/MathML\\\" xmlns:xlink=\\\"http:\\\/\\\/www.w3.org\\\/1999\\\/xlink\\\">A transparent Optical-subTHz-Optical link providing record-high single line rates of 240 Gbit\\\/s and 192 Gbit\\\/s on a single optical carrier over distances from 5 to 115 m is demonstrated. Besides a direct mapping of the optical to a 230 GHz subTHz-carrier frequency by means of a uni-traveling carrier (UTC) photodiode, we demonstrate direct conversion of data from the subTHz domain back to the optical domain by a <a href=\\\"https:\\\/\\\/www.polariton.ch\\\/polarisandbox\\\/products\\\">plasmonic modulator<\\\/a>. It is shown that the subTHz-to-optical upconversion can even be performed at good quality without any electrical amplifiers. Finally, at the receiver, the local oscillator is employed to directly map the optical signal back to the electrical baseband within a coherent receiver.<\\\/p>\"}},{\"type\":\"gallery\",\"props\":{\"filter_align\":\"left\",\"filter_all\":true,\"filter_grid_breakpoint\":\"m\",\"filter_grid_width\":\"auto\",\"filter_position\":\"top\",\"filter_style\":\"tab\",\"grid_default\":\"1\",\"grid_medium\":\"3\",\"item_animation\":true,\"item_maxwidth\":\"medium\",\"lightbox\":true,\"lightbox_bg_close\":true,\"link_style\":\"default\",\"link_text\":\"Read more\",\"margin\":\"default\",\"meta_align\":\"below-title\",\"meta_element\":\"div\",\"meta_style\":\"text-meta\",\"overlay_hover\":true,\"overlay_mode\":\"cover\",\"overlay_position\":\"center\",\"overlay_style\":\"overlay-primary\",\"overlay_transition\":\"fade\",\"parallax_easing\":\"1\",\"show_content\":true,\"show_hover_image\":true,\"show_hover_video\":true,\"show_link\":true,\"show_meta\":true,\"show_title\":true,\"text_align\":\"center\",\"text_color\":\"light\",\"title_element\":\"h3\",\"title_hover_style\":\"reset\"},\"children\":[{\"type\":\"gallery_item\",\"props\":{\"image\":\"wp-content\\\/uploads\\\/2022\\\/02\\\/Transparent-Optical-THz-Optical-Link.jpg\",\"image_alt\":\"Transparent Optical-THz-Optical Link at 240192 Gbits over 5115 m Enabled by Plasmonics\"}}]},{\"type\":\"text\",\"props\":{\"column_breakpoint\":\"m\",\"content\":\"\n\n<p>Fig. 1. (a) Vision of future communication networks, where THz links are transparently embedded in the fiber-optical network for backhauling and device-todevice applications.<\\\/p>\",\"margin\":\"default\"}},{\"type\":\"button\",\"props\":{\"fullwidth\":true,\"grid_column_gap\":\"small\",\"grid_row_gap\":\"small\",\"margin\":\"medium\",\"margin_remove_bottom\":false,\"margin_remove_top\":false},\"children\":[{\"type\":\"button_item\",\"props\":{\"button_style\":\"default\",\"content\":\"Transparent Optical-THz-Optical Link at 240\\\/192 Gbit\\\/s over 5\\\/115 m Enabled by Plasmonics\",\"dialog_layout\":\"modal\",\"dialog_offcanvas_flip\":true,\"icon\":\"git-fork\",\"icon_align\":\"left\",\"link\":\"https:\\\/\\\/ieeexplore.ieee.org\\\/stamp\\\/stamp.jsp?tp=&arnumber=9705059\",\"link_target\":\"blank\",\"link_title\":\"Transparent Optical-THz-Optical Link at 240\\\/192 Gbit\\\/s over 5\\\/115 m Enabled by Plasmonics\"}}]}]},{\"type\":\"column\",\"props\":{\"image_position\":\"center-center\",\"position_sticky_breakpoint\":\"m\",\"width_medium\":\"1-4\"}}],\"props\":{\"layout\":\"3-4,1-4\"}}],\"modified\":\"2021-08-10T13:36:50.897Z\",\"name\":\"articles plus images\"}],\"version\":\"4.5.28\"} --><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Transparent Optical-THz-Optical Link at 240\/192 Gbit\/s over 5\/115 m Enabled by Plasmonics Yannik Horst, Tobias Blatter, Laurenz Kulmer, Bertold Ian Bitachon, Benedikt Baeuerle, Marcel Destraz, Wolfgang Heni, Stefan Koepfli, Patrick Habegger, Marco Eppenberger, Eva De Leo, Claudia Hoessbacher, Delwin L. Elder, Scott R. Hammond, Lewis E. Johnson, Larry R. Dalton, Senior Member, IEEE, Yuriy Fedoryshyn, [&hellip;]<\/p>\n","protected":false},"author":2,"featured_media":2251,"parent":4006,"menu_order":16,"comment_status":"closed","ping_status":"open","template":"","meta":{"_acf_changed":false,"footnotes":""},"categories":[13],"tags":[],"class_list":["post-2244","page","type-page","status-publish","has-post-thumbnail","hentry","category-publications"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.5 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Transparent Optical Link enabled by Plasmonics<\/title>\n<meta name=\"description\" content=\"We demonstrate direct conversion of data from the subTHz domain back to the optical domain by a plasmonic modulator. Transparent Optical Link\" \/>\n<meta name=\"robots\" content=\"noindex, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Transparent Optical Link enabled by Plasmonics\" \/>\n<meta property=\"og:description\" content=\"We demonstrate direct conversion of data from the subTHz domain back to the optical domain by a plasmonic modulator. 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