{"id":45121,"date":"2022-12-13T11:48:27","date_gmt":"2022-12-13T19:48:27","guid":{"rendered":"https:\/\/silvaco.com\/%eb%b6%84%eb%a5%98%eb%90%98%ec%a7%80-%ec%95%8a%ec%9d%8c\/3d-tcad-simulation-of-gallium-nitride-tri-gate-junction-hemt\/"},"modified":"2023-03-09T12:14:51","modified_gmt":"2023-03-09T20:14:51","slug":"3d-tcad-simulation-of-gallium-nitride-tri-gate-junction-hemt","status":"publish","type":"post","link":"https:\/\/silvaco.com\/ko\/simulation-standard\/3d-tcad-simulation-of-gallium-nitride-tri-gate-junction-hemt\/","title":{"rendered":"3D TCAD Simulation of Gallium Nitride Tri-gate Junction HEMT"},"content":{"rendered":"<div id='template_overview'  class='avia-section main_color avia-section-small avia-no-border-styling  avia-bg-style-scroll  avia-builder-el-0  avia-builder-el-no-sibling   container_wrap fullsize' style='background-color: #ffffff;  margin-top:0px; margin-bottom:0px; '  ><div class='container' ><main  role=\"main\" itemprop=\"mainContentOfPage\"  class='template-page content  av-content-full alpha units'><div class='post-entry post-entry-type-page post-entry-45121'><div class='entry-content-wrapper clearfix'>\n<div class='flex_column_table av-equal-height-column-flextable -flextable' style='margin-top:20px; margin-bottom:0px; '><div class=\"flex_column av_three_fourth  flex_column_table_cell av-equal-height-column av-align-top first  avia-builder-el-1  el_before_av_one_fourth  avia-builder-el-first  \" style='padding:0px 0px 0px 0px ; border-radius:0px; '><section class=\"av_textblock_section \"  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/BlogPosting\" itemprop=\"blogPost\" ><div class='avia_textblock  '   itemprop=\"text\" ><h1>3D TCAD Simulation of Gallium Nitride Tri-gate Junction HEMT<\/h1>\n<p><em>Yunwei Ma, Yuhao Zhang<br \/>\n<\/em><em>Center for Power Electronics Systems, Virginia Tech<br \/>\nE-mail: yunwei@vt.edu; yhzhang@vt.edu <\/em><\/p>\n<h3>Introduction<\/h3>\n<p><img loading=\"lazy\" decoding=\"async\" class=\" wp-image-45055 alignright\" src=\"https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/HEMT_fig1-300x154.jpg\" alt=\"SS Dec2022 Fig 1\" width=\"240\" height=\"123\" srcset=\"https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/HEMT_fig1-300x154.jpg 300w, https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/HEMT_fig1-43x22.jpg 43w, https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/HEMT_fig1-63x32.jpg 63w, https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/HEMT_fig1-48x25.jpg 48w, https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/HEMT_fig1.jpg 414w\" sizes=\"(max-width: 240px) 100vw, 240px\" \/>The GaN high electron mobility transistor (HEMT) has been commercialized as a power device with performance superior to Si devices in the voltage classes from 15 V to 900 V [1]. Most of commercial enhancement-mode (E-mode) HEMTs comprise a planar p-GaN gate. Recently, 3-D gate stacks, such as FinFET and tri-gate structures, have been introduced to lateral GaN HEMTs. They can realize superior gate controllability and E-mode operation with a higher current on\/off ratio and lower gated channel resistance [2].<\/p>\n<p>On each facet of the tri-gate, the metal-insulator-semiconductor (MIS) gate stack has become a popular choice [3]. Despite good performance, some challenges of tri-gate GaN MIS-HEMTs (Tri-MISHEMTs) make their commercialization very slow. First, the E-mode device usually requires very narrow fins or an additional AlGaN recess [2]. Second, the MIS tri-gate produces parasitic MIS channels at the fin sidewalls, which increase the gate charge. In addition, the commonly seen interface states in the MIS structure could induce high-temperature instabilities [4].<\/p>\n<p>To address these challenges, we recently proposed a new type of tri-gate HEMTs, the tri-gate junction HEMT (Tri-JHEMT) [5]. In the Tri-JHEMT, the p-n junction wraps around the AlGaN\/GaN fins in the gate region. As compared to the MIS tri-gate, the junction tri-gate allows stronger depletion, thus relaxing the lithography requirement to realize the E-mode operation and avoiding the punch-through at high drain biases (VD) [5]. A GaN Tri-JHEMT is then experimentally demonstrated using the p-type NiO [5], which exhibits the E-mode operation, high breakdown voltage, and excellent thermal stability (e.g., a breakdown voltage near 2000 V at 150 oC) [6].<\/p>\n<p>Following the experimental demonstration, we studied the physics and performance space of Tri-JHEMTs using the 3D TCAD simulation [7]. In this study, we used the NiO-based Tri-JHEMT data to calibrate the 3D TCAD simulation model, followed by the simulation of p-GaN based Tri-JHEMT. The p-GaN based junction tri-gate is expected to provide a stronger depletion as compared to the NiO-based tri-gate, due to the higher built-in potential of the GaN p-n junction as compared to the GaN\/NiO junction. In addition, the p-GaN based Tri-JHEMT can be potentially fabricated using the current foundry process. 3D TCAD simulations enable a direct comparison of the Tri-JHEMT with the planar p-GaN HEMT.<\/p>\n<p>This article describes the 3D TCAD simulation of GaN trigate HEMTs and showcases how 3D simulations unveil the Tri-JHEMT\u2019s unique physics as compared to the planar-gate HEMT or Tri-MISHEMT.<\/p>\n<\/div><\/section><\/div><div class='av-flex-placeholder'><\/div><div class=\"flex_column av_one_fourth  flex_column_table_cell av-equal-height-column av-align-top av-zero-column-padding   avia-builder-el-3  el_after_av_three_fourth  avia-builder-el-last  \" style='border-radius:0px; ' id=\"whitepaper\" ><p><div  class='avia-builder-widget-area clearfix  avia-builder-el-4  el_before_av_image  avia-builder-el-first '><div id=\"nav_menu-29\" class=\"widget clearfix widget_nav_menu\"><div class=\"menu-simulation-standard-side-menu-korean-container\"><ul id=\"menu-simulation-standard-side-menu-korean\" class=\"menu\"><li id=\"menu-item-25039\" class=\"menu-item menu-item-type-post_type menu-item-object-page menu-item-25039\"><a href=\"https:\/\/silvaco.com\/ko\/technical-library\/simulation-standard\/\">Simulation Standard<\/a><\/li>\n<\/ul><\/div><\/div><\/div><br \/>\n<div  class='avia-image-container  av-styling-    avia-builder-el-5  el_after_av_sidebar  el_before_av_button  avia-align-center '  itemprop=\"image\" itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/ImageObject\"  ><div class='avia-image-container-inner'><div class='avia-image-overlay-wrap'><a href=\"\/dynamicweb\/jsp\/downloads\/DownloadDocStepsAction.do?req=download&amp;nm=Q4_SS_Dec2022.pdf\" class='avia_image' target=\"_blank\" rel=\"noopener noreferrer\"><img decoding=\"async\" width=\"234\" height=\"300\" class='wp-image-48021 avia-img-lazy-loading-not-48021 avia_image' src=\"https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/Q4_SS_Dec2022_thumbnail-234x300.png\" alt='' title='Q4_SS_Dec2022_thumbnail'  itemprop=\"thumbnailUrl\" srcset=\"https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/Q4_SS_Dec2022_thumbnail-234x300.png 234w, https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/Q4_SS_Dec2022_thumbnail-29x37.png 29w, https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/Q4_SS_Dec2022_thumbnail-43x55.png 43w, https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/Q4_SS_Dec2022_thumbnail-37x48.png 37w, https:\/\/silvaco.com\/wp-content\/uploads\/2022\/12\/Q4_SS_Dec2022_thumbnail.png 250w\" sizes=\"(max-width: 234px) 100vw, 234px\" \/><\/a><\/div><\/div><\/div><br \/>\n<div  class='avia-button-wrap avia-button-center  avia-builder-el-6  el_after_av_image  avia-builder-el-last ' ><a href='\/dynamicweb\/jsp\/downloads\/DownloadDocStepsAction.do?req=download&amp;nm=Q4_SS_Dec2022.pdf' class='avia-button  avia-color-grey   avia-icon_select-yes-right-icon avia-size-small avia-position-center ' target=\"_blank\" rel=\"noopener noreferrer\"><span class='avia_iconbox_title' >Download Simulation Standard<\/span><span class='avia_button_icon avia_button_icon_right' aria-hidden='true' data-av_icon='\ue875' data-av_iconfont='entypo-fontello'><\/span><\/a><\/div><\/p><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n","protected":false},"excerpt":{"rendered":"<p>The GaN high electron mobility transistor (HEMT) has been commercialized as a power device with performance superior to Si devices in the voltage classes from 15 V to 900 V [1]. Most of commercial enhancement-mode (E-mode) HEMTs comprise a planar p-GaN gate. Recently, 3-D gate stacks, such as FinFET and tri-gate structures, have been introduced to lateral GaN HEMTs. They can realize superior gate controllability and E-mode operation with a higher current on\/off ratio and lower gated channel resistance [2].<\/p>\n","protected":false},"author":8,"featured_media":48021,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[7486],"tags":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO Premium plugin v24.0 (Yoast SEO v24.0) - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>3D TCAD Simulation of Gallium Nitride Tri-gate Junction HEMT<\/title>\n<meta name=\"description\" content=\"3D TCAD Simulation of Gallium Nitride Tri-gate Junction HEMT - The GaN high electron mobility transistor (HEMT) has been commercialized as\" \/>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/silvaco.com\/ko\/simulation-standard\/3d-tcad-simulation-of-gallium-nitride-tri-gate-junction-hemt\/\" \/>\n<meta property=\"og:locale\" content=\"ko_KR\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"3D TCAD Simulation of Gallium Nitride Tri-gate Junction HEMT\" \/>\n<meta property=\"og:description\" content=\"3D TCAD Simulation of Gallium Nitride Tri-gate Junction HEMT - 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