{"id":2039,"date":"2021-11-09T17:04:48","date_gmt":"2021-11-09T17:04:48","guid":{"rendered":"https:\/\/www.polariton.ch\/?p=2039"},"modified":"2025-06-02T15:57:18","modified_gmt":"2025-06-02T15:57:18","slug":"100-gbd-im-dd-transmission-over-14-km-smf-in-the-c-band-enabled-by-a-plasmonic-ssb-mzm","status":"publish","type":"page","link":"https:\/\/www.polariton.ch\/polarisandbox\/?page_id=2039","title":{"rendered":"100 GBd IM\/DD transmission over 14\u2005km SMF in the C-band enabled by a plasmonic SSB MZM"},"content":{"rendered":"<h1>\n<h2><span style=\"color: #000000;\">100&nbsp;GBd IM\/DD transmission over 14\u2005km&nbsp;SMF in the C-band enabled by a plasmonic SSB MZM <\/span><\/h2>\n<\/h1>\n<hr>\n<div>\n<p style=\"padding-left: 40px;\">Benedikt Baeuerle, Claudia Hoessbacher, Wolfgang Heni, Yuriy Fedoryshyn, Ueli Koch, Arne Josten, Delwin L. Elder, Larry R. Dalton, and Juerg Leuthold, &#8220;100&nbsp;GBd IM\/DD transmission over 14&nbsp;km SMF in the C-band enabled by a plasmonic SSB MZM,&#8221; Opt. Express 28, 8601-8608 (2020)<\/p>\n<\/div>\n<hr>\n<blockquote>\n<p style=\"text-align: justify;\"><span style=\"color: #808080;\">Abstract:<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #808080;\">100 Gb\/s NRZ-OOK transmission over 14 km standard single mode fiber in the C-band is demonstrated with a simple intensity modulation and direct detection scheme. The transmission concept utilizes single sideband modulation and comprises a single differential digital-to-analog converter with adjustable phase offset, a new dual electrode plasmonic Mach-Zehnder modulator, a laser at 1537.5&nbsp;nm, standard single mode fibers, a photodiode, an analog-to-digital converter, and linear offline digital signal processing. The presented SSB concept requires no DSP and complex signaling at the transmitter. The demonstrated SSB transmitter increased the possible transmission distance by a factor of 4.6 compared to a DSB transmitter. We also investigated the equalization requirements. A T\/2-spaced feedforward equalizer requires 27 taps to achieve transmission over 10&nbsp;km with a BER below the HD-FEC limit. In comparison to a DSB transmitter, the SSB transmitter reduced the receiver DSP complexity by a factor of 13.7.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #808080;\">&copy; 2020 Optical Society of America under the terms of the OSA Open Access Publishing Agreement<\/span><\/p>\n<\/blockquote>\n<div>\n<p>    <img decoding=\"async\" data-src=\"\/wp-content\/uploads\/2021\/11\/100-GBd-IM.png\" alt=\"Optics Express\" src=\"data:image\/svg+xml;base64,PHN2ZyB3aWR0aD0iMSIgaGVpZ2h0PSIxIiB4bWxucz0iaHR0cDovL3d3dy53My5vcmcvMjAwMC9zdmciPjwvc3ZnPg==\" class=\"lazyload\"><\/p>\n<h3>100 GBd IM\/DD transmission over 14\u2005km SMF in the C-band enabled by a plasmonic SSB MZM<\/h3>\n<p><a href=\"\/wp-content\/uploads\/2021\/11\/100-GBd-IM.png\">Full Image<\/a><\/p>\n<\/div>\n<div>\n<p>Fig. 1. Colorized microscope picture of the dual-electrode plasmonic Mach-Zehnder modulator (P-MZM). It comprises MZ interferometer with silicon photonic (SiP) waveguides (WGs) and SiP multimode interference (MMI) couplers and two plasmonic phase modulators. Light is coupled to and from the chip via SiP grating couplers (GC). The electrical signal is contacted via two ground (G) signal (S) contact pads.<\/p>\n<\/div>\n<p>\n    <a href=\"https:\/\/www.osapublishing.org\/oe\/fulltext.cfm?uri=oe-28-6-8601&#038;id=428909\">READ FULL ARTICLE<\/a>\n<\/p>\n<ul>\n<li>\n<p><a href=\"https:\/\/www.polariton.ch\/polarisandbox\/categoria\/knowledge-center\"><\/p>\n<p class=\"el-title uk-margin-top uk-margin-remove-bottom\"><strong><a class=\"el-link\" href=\"https:\/\/www.polariton.ch\/polarisandbox\/categoria\/knowledge-center?customize_changeset_uuid=afa8203b-3adc-40bb-bff0-bc973588e0a9&amp;customize_autosaved=on&amp;customize_messenger_channel=preview-3\">Knowledge Center<\/a><\/strong><\/p>\n<p><\/a><\/p>\n<\/li>\n<li>\n<\/li>\n<\/ul>\n<p><!--more--><br \/>\n<!-- {\"type\":\"layout\",\"children\":[{\"type\":\"section\",\"props\":{\"style\":\"muted\",\"width\":\"default\",\"vertical_align\":\"middle\",\"title_position\":\"top-left\",\"title_rotation\":\"left\",\"title_breakpoint\":\"xl\",\"image_position\":\"center-center\"},\"children\":[{\"type\":\"row\",\"children\":[{\"type\":\"column\",\"props\":{\"image_position\":\"center-center\",\"media_overlay_gradient\":\"\",\"position_sticky_breakpoint\":\"m\"},\"children\":[{\"type\":\"headline\",\"props\":{\"title_element\":\"h1\",\"content\":\"\n\n<h2><span style=\\\"color: #000000;\\\">100&nbsp;GBd IM\\\/DD transmission over 14\\u2005km&nbsp;SMF in the C-band enabled by a plasmonic SSB MZM <\\\/span><\\\/h2>\",\"title_style\":\"h1\",\"title_font_family\":\"primary\",\"title_color\":\"emphasis\",\"position\":\"relative\"}}]}]}],\"modified\":\"2021-11-05T14:26:13.085Z\",\"name\":\"All-plasmonic Mach Zehnder modulator enabling optical high-speed communication at the microscale\"},{\"type\":\"section\",\"props\":{\"style\":\"default\",\"width\":\"default\",\"vertical_align\":\"middle\",\"title_position\":\"top-left\",\"title_rotation\":\"left\",\"title_breakpoint\":\"xl\",\"image_position\":\"center-center\"},\"children\":[{\"type\":\"row\",\"children\":[{\"type\":\"column\",\"props\":{\"image_position\":\"center-center\",\"media_overlay_gradient\":\"\",\"position_sticky_breakpoint\":\"m\"},\"children\":[{\"type\":\"divider\",\"props\":{\"divider_element\":\"hr\"}},{\"type\":\"text\",\"props\":{\"margin\":\"default\",\"column_breakpoint\":\"m\",\"content\":\"\n\n<p style=\\\"padding-left: 40px;\\\">Benedikt Baeuerle, Claudia Hoessbacher, Wolfgang Heni, Yuriy Fedoryshyn, Ueli Koch, Arne Josten, Delwin L. Elder, Larry R. Dalton, and Juerg Leuthold, \\\"100&nbsp;GBd IM\\\/DD transmission over 14&nbsp;km SMF in the C-band enabled by a plasmonic SSB MZM,\\\" Opt. Express 28, 8601-8608 (2020)<\\\/p>\"}},{\"type\":\"divider\",\"props\":{\"divider_element\":\"hr\"}}]}]},{\"type\":\"row\",\"children\":[{\"type\":\"column\",\"props\":{\"image_position\":\"center-center\",\"media_overlay_gradient\":\"\",\"width_medium\":\"3-4\",\"position_sticky_breakpoint\":\"m\"},\"children\":[{\"type\":\"quotation\",\"props\":{\"content\":\"\n\n<p style=\\\"text-align: justify;\\\"><span style=\\\"color: #808080;\\\">Abstract:<\\\/span><\\\/p>\\n\n\n<p style=\\\"text-align: justify;\\\"><span style=\\\"color: #808080;\\\">100 Gb\\\/s NRZ-OOK transmission over 14 km standard single mode fiber in the C-band is demonstrated with a simple intensity modulation and direct detection scheme. The transmission concept utilizes single sideband modulation and comprises a single differential digital-to-analog converter with adjustable phase offset, a new dual electrode plasmonic Mach-Zehnder modulator, a laser at 1537.5&nbsp;nm, standard single mode fibers, a photodiode, an analog-to-digital converter, and linear offline digital signal processing. The presented SSB concept requires no DSP and complex signaling at the transmitter. The demonstrated SSB transmitter increased the possible transmission distance by a factor of 4.6 compared to a DSB transmitter. We also investigated the equalization requirements. A T\\\/2-spaced feedforward equalizer requires 27 taps to achieve transmission over 10&nbsp;km with a BER below the HD-FEC limit. In comparison to a DSB transmitter, the SSB transmitter reduced the receiver DSP complexity by a factor of 13.7.<\\\/span><\\\/p>\\n\n\n<p style=\\\"text-align: justify;\\\"><span style=\\\"color: #808080;\\\">&copy; 2020 Optical Society of America under the terms of the OSA Open Access Publishing Agreement<\\\/span><\\\/p>\"}},{\"type\":\"gallery\",\"props\":{\"show_title\":false,\"show_meta\":false,\"show_content\":false,\"show_link\":true,\"show_hover_image\":true,\"grid_default\":\"1\",\"grid_medium\":\"3\",\"filter_style\":\"tab\",\"filter_all\":true,\"filter_position\":\"top\",\"filter_align\":\"left\",\"filter_grid_width\":\"auto\",\"filter_grid_breakpoint\":\"m\",\"overlay_mode\":\"cover\",\"overlay_hover\":true,\"overlay_style\":\"\",\"text_color\":\"light\",\"overlay_position\":\"center\",\"overlay_transition\":\"fade\",\"title_hover_style\":\"reset\",\"title_element\":\"h3\",\"meta_style\":\"meta\",\"meta_align\":\"below-title\",\"meta_element\":\"div\",\"link_text\":\"Read more\",\"link_style\":\"default\",\"text_align\":\"center\",\"margin\":\"default\",\"item_animation\":true,\"lightbox\":true,\"overlay_transition_background\":false,\"text_color_hover\":true,\"overlay_padding\":\"small\",\"overlay_link\":false},\"children\":[{\"type\":\"gallery_item\",\"props\":{\"title\":\"100 GBd IM\\\/DD transmission over 14\\u2005km SMF in the C-band enabled by a plasmonic SSB MZM\",\"image\":\"wp-content\\\/uploads\\\/2021\\\/11\\\/100-GBd-IM.png\",\"link\":\"wp-content\\\/uploads\\\/2021\\\/11\\\/100-GBd-IM.png\",\"link_text\":\"Full Image\",\"hover_image\":\"\",\"image_alt\":\"Optics Express\"}}]},{\"type\":\"text\",\"props\":{\"margin\":\"default\",\"column_breakpoint\":\"m\",\"content\":\"\n\n<p>Fig. 1. Colorized microscope picture of the dual-electrode plasmonic Mach-Zehnder modulator (P-MZM). It comprises MZ interferometer with silicon photonic (SiP) waveguides (WGs) and SiP multimode interference (MMI) couplers and two plasmonic phase modulators. Light is coupled to and from the chip via SiP grating couplers (GC). The electrical signal is contacted via two ground (G) signal (S) contact pads.<\\\/p>\"}},{\"type\":\"button\",\"props\":{\"grid_column_gap\":\"small\",\"grid_row_gap\":\"small\",\"margin\":\"medium\",\"fullwidth\":false,\"margin_remove_bottom\":false,\"margin_remove_top\":false},\"children\":[{\"type\":\"button_item\",\"props\":{\"button_style\":\"default\",\"icon_align\":\"left\",\"link\":\"https:\\\/\\\/www.osapublishing.org\\\/oe\\\/fulltext.cfm?uri=oe-28-6-8601&id=428909\",\"link_title\":\"100 GBd IM\\\/DD transmission over 14\\u2005km SMF in the C-band enabled by a plasmonic SSB MZM\",\"content\":\"READ FULL ARTICLE\",\"link_target\":\"blank\",\"icon\":\"git-fork\"}}]}]},{\"type\":\"column\",\"props\":{\"image_position\":\"center-center\",\"media_overlay_gradient\":\"\",\"width_medium\":\"1-4\",\"position_sticky_breakpoint\":\"m\"},\"children\":[{\"name\":\"list all  articles dynamic \",\"type\":\"list\",\"children\":[{\"type\":\"list_item\",\"props\":{\"content\":\"\n\n<p class=\\\"el-title uk-margin-top uk-margin-remove-bottom\\\"><strong><a class=\\\"el-link\\\" href=\\\"https:\\\/\\\/www.polariton.ch\\\/polarisandbox\\\/categoria\\\/knowledge-center?customize_changeset_uuid=afa8203b-3adc-40bb-bff0-bc973588e0a9&amp;customize_autosaved=on&amp;customize_messenger_channel=preview-3\\\">Knowledge Center<\\\/a><\\\/strong><\\\/p>\",\"link\":\"https:\\\/\\\/www.polariton.ch\\\/polarisandbox\\\/categoria\\\/knowledge-center\",\"icon\":\"home\",\"icon_color\":\"primary\"}},{\"type\":\"list_item\",\"source\":{\"query\":{\"name\":\"posts.customPosts\",\"arguments\":{\"terms\":[13],\"category_operator\":\"IN\",\"post_tag_operator\":\"IN\",\"users\":[],\"users_operator\":\"IN\",\"offset\":0,\"limit\":13,\"order\":\"date\",\"order_direction\":\"DESC\"}},\"props\":{\"content\":{\"filters\":{\"search\":\"\"},\"name\":\"title\"},\"link\":{\"filters\":{\"search\":\"\"},\"name\":\"link\"}}}}],\"props\":{\"show_image\":true,\"show_link\":true,\"list_type\":\"vertical\",\"list_element\":\"ul\",\"list_horizontal_separator\":\", \",\"column_breakpoint\":\"m\",\"image_svg_color\":\"emphasis\",\"image_align\":\"left\",\"image_vertical_align\":true}}]}],\"props\":{\"layout\":\"3-4,1-4\"}}]}],\"version\":\"2.7.17\"} --><\/p>\n","protected":false},"excerpt":{"rendered":"<p>100&nbsp;GBd IM\/DD transmission over 14\u2005km&nbsp;SMF in the C-band enabled by a plasmonic SSB MZM Benedikt Baeuerle, Claudia Hoessbacher, Wolfgang Heni, Yuriy Fedoryshyn, Ueli Koch, Arne Josten, Delwin L. Elder, Larry R. Dalton, and Juerg Leuthold, &#8220;100&nbsp;GBd IM\/DD transmission over 14&nbsp;km SMF in the C-band enabled by a plasmonic SSB MZM,&#8221; Opt. Express 28, 8601-8608 (2020) [&hellip;]<\/p>\n","protected":false},"author":2,"featured_media":2042,"parent":4006,"menu_order":14,"comment_status":"closed","ping_status":"open","template":"","meta":{"_acf_changed":false,"footnotes":""},"categories":[13],"tags":[],"class_list":["post-2039","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>100 GBd IM\/DD transmission over 14\u2005km SMF in the C-band enabled by a plasmonic SSB MZM<\/title>\n<meta name=\"description\" content=\"100 Gb\/s NRZ-OOK transmission over 14 km standard single mode fiber in the C-band is demonstrated with a simple intensity modulation.\" \/>\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 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