{"id":4833,"date":"2021-11-05T15:48:18","date_gmt":"2021-11-05T07:48:18","guid":{"rendered":"http:\/\/43.135.177.8\/?p=4833"},"modified":"2021-11-05T15:50:35","modified_gmt":"2021-11-05T07:50:35","slug":"complex-3d-microfluidic-architectures-formed-by-mechanically-guided-compressive-buckling","status":"publish","type":"post","link":"https:\/\/whmicro.com\/?p=4833","title":{"rendered":"Complex 3D microfluidic architectures formed by mechanically guided compressive buckling"},"content":{"rendered":"<p>[vc_row rt_row_background_width=&#8221;default&#8221; rt_row_style=&#8221;default-style&#8221; rt_row_borders=&#8221;&#8221; rt_row_paddings=&#8221;true&#8221; rt_bg_effect=&#8221;classic&#8221; rt_bg_image_repeat=&#8221;repeat&#8221; rt_bg_size=&#8221;cover&#8221; rt_bg_position=&#8221;right top&#8221; rt_bg_attachment=&#8221;scroll&#8221; rt_bg_video_format=&#8221;self-hosted&#8221;][vc_column width=&#8221;4\/5&#8243; rt_wrp_col_paddings=&#8221;false&#8221; rt_border_top=&#8221;&#8221; rt_border_bottom=&#8221;&#8221; rt_border_left=&#8221;&#8221; rt_border_right=&#8221;&#8221; rt_border_top_mobile=&#8221;&#8221; rt_border_bottom_mobile=&#8221;&#8221; rt_border_left_mobile=&#8221;&#8221; rt_border_right_mobile=&#8221;&#8221; rt_bg_image_repeat=&#8221;repeat&#8221; rt_bg_size=&#8221;auto auto&#8221; rt_bg_position=&#8221;right top&#8221; rt_bg_attachment=&#8221;scroll&#8221;][vc_column_text]<\/p>\n<section id=\"sec-2-1\">\n<h3>Mechanically guided assembly of 3D microfluidic architectures<\/h3>\n<div role=\"paragraph\">The platforms described in the following, which we refer to as 3D microvascular systems due to their micro\/millimeter scale geometries and soft mechanical properties, transform from lithographically fabricated 2D precursor structures through compressive buckling, following concepts previously demonstrated in various thin-film materials and devices in areas other than microfluidics (<a id=\"body-ref-R41-2\" role=\"doc-biblioref\" href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#pill-R41\" data-xml-rid=\"R41\"><i>41<\/i><\/a>,\u00a0<a id=\"body-ref-R42-1\" role=\"doc-biblioref\" href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#pill-R42\" data-xml-rid=\"R42\"><i>42<\/i><\/a>,\u00a0<a id=\"body-ref-R44-1\" role=\"doc-biblioref\" href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#pill-R44\" data-xml-rid=\"R44\"><i>44<\/i><\/a>,\u00a0<a id=\"body-ref-R50-1\" role=\"doc-biblioref\" href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#pill-R50\" data-xml-rid=\"R50\"><i>50<\/i><\/a>,\u00a0<a id=\"body-ref-R52-1\" role=\"doc-biblioref\" href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#pill-R52\" data-xml-rid=\"R52\"><i>52<\/i><\/a>,\u00a0<a id=\"body-ref-R53-2\" role=\"doc-biblioref\" href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#pill-R53\" data-xml-rid=\"R53\"><i>53<\/i><\/a>). This assembly approach applies across a wide range of length scales, from nanometers to meters, and it is compatible with nearly any class of material, hard or soft, organic or inorganic. Recent publications on these schemes highlight various capabilities and applications in areas ranging from microelectromechanical systems, to electronic and optoelectronic devices, to energy harvesters, and to cell scaffolds (<a id=\"body-ref-R41-3\" role=\"doc-biblioref\" href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#pill-R41\" data-xml-rid=\"R41\"><i>41<\/i><\/a>\u2013<a id=\"body-ref-R53-3\" role=\"doc-biblioref\" href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#pill-R53\" data-xml-rid=\"R53\"><i>53<\/i><\/a>).<\/div>\n<div role=\"paragraph\"><a href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#pill-F1\">Figure 1<\/a>\u00a0presents a schematic illustration of the process as implemented here, beginning with the soft lithographic preparation of 2D microfluidic precursors (geometries in fig. S1) and the subsequent controlled buckling mechanisms that convert them into 3D systems (see Materials and Methods for details; movie S1). This structure is a double-layered 3D architecture that has geometrical features comparable to those of basic biological vascular networks (<a href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#F1\">Fig. 1, A and B<\/a>). Specifically, the layout involves a stepwise change in the widths of the arrays of microchannels (from 100 \u03bcm to 30 \u03bcm and 10 \u03bcm, and then back to 30 \u03bcm and 100 \u03bcm) and a three-level branching configuration (<a href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#F1\">Fig. 1C<\/a>\u00a0and figs. S2 and S3) to mimic a collection of arteries, arterioles, capillaries, venules, and veins. The narrowest channels have widths of 10 \u03bcm, comparable to the sizes of capillaries in human body. The overall 3D shape approximates a spheroid, with an enclosed internal cavity between the top and bottom layers, in resemblance to biological constructs like glomeruli and alveoli. This spheroidal configuration follows from a computationally guided design approach that includes contributions from constituent structural components bonded at a collection of sites (<a href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#F1\">Fig. 1D<\/a>) to an underlying elastomer substrate with a biaxial prestrain of 50% (figs. S1, S2, and S4). Note S1 (and fig. S4) summarizes key mechanical considerations in design choices.<\/div>\n<div class=\"figure-wrap\" data-specific-use=\"distribute\" data-type=\"graphic\">\n<figure id=\"F1\" class=\"graphic\"><img decoding=\"async\" src=\"https:\/\/www.science.org\/cms\/10.1126\/sciadv.abj3686\/asset\/261978a6-7c0f-4096-8fcf-294975001956\/assets\/images\/large\/sciadv.abj3686-f1.jpg\" \/><figcaption>\n<div class=\"caption\"><span class=\"heading\">Fig. 1<\/span>. Schematic illustration of a 3D microvascular system formed by mechanically guided assembly.<\/div>\n<div class=\"notes\">\n<div role=\"doc-footnote\">A double-layer 3D microvascular network, with an enclosed internal cavity between the top and bottom layers, features a stepwise change in the width of the microchannels (from 100 \u03bcm, to 30 \u03bcm, to 10 \u03bcm, and then back to 30 \u03bcm and 100 \u03bcm) and a three-level branching structure. The narrowest microfluidic channel branches have widths of 10 \u03bcm, comparable to the sizes of capillaries in human vasculature. (<b>A<\/b>\u00a0and\u00a0<b>B<\/b>) Optical images and FEA predictions [with rendering in (A)] of the spheroid-shaped 3D microvascular network from a 3D view (A) and an approximate side view (B). (<b>C<\/b>) Magnified view of the blue dashed rectangle in (B). (<b>D<\/b>) Schematic illustration showing the selective locations to bond the microfluidic double layers to a prestretched elastomer substrate. (<b>E<\/b>) Procedures to fabricate 2D precursors of the microvascular network. Scale bars, 5 mm (A and B) and 2 mm (C). Photo credit: H. Luan, Northwestern University.<\/div>\n<\/div>\n<\/figcaption><a class=\"btn btn-dark open-in-viewer figure-pop-btn\" href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#F1\">OPEN IN VIEWER<\/a><\/figure>\n<\/div>\n<div role=\"paragraph\">As described in detail in Materials and Methods, fabrication of this construct begins with formation of a 2D microfluidic system in PDMS (<a href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#F1\">Fig. 1E<\/a>) by casting and curing a layer of this material against a mold that consists of photodefined patterns of microchannel geometries on a silicon wafer. A laser cutting process defines inlets and outlets for fluid introduction and removal, respectively. Peeling this PDMS structure from the mold and bonding it to a flat layer of PDMS cast and cured against an unpatterned silicon wafer form a sealed 2D microchannel network. Another laser cutting process yields an open 2D architecture that follows the geometry of the microfluidic channels. Peeling this system (i.e., 2D precursor) from the wafer, bonding it at selected locations on a prestretched elastomer substrate, and then releasing this prestretch creates compressive forces that act at the bonding locations to trigger buckling processes and associated geometrical transformation into a 3D layout. The example highlighted here uses two such precursors transferred and selectively bonded to the prestretched substrate as an aligned multilayer assembly, at locations denoted as orange dots in\u00a0<a href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686#F1\">Fig. 1D<\/a>. The same processes can be applied to broad classes of materials, including not only materials for microfluidic systems but also those for electronic and photonic capabilities. On the basis of these straightforward procedures, 3D microchannel geometries with complexity and multifunctional integration are readily accessible, as described in the following sections.<\/div>\n<\/section>\n<div role=\"paragraph\"><\/div>\n<div role=\"paragraph\"><a href=\"https:\/\/www.science.org\/doi\/10.1126\/sciadv.abj3686\">Read the original articles:<\/a><\/div>\n<p>[\/vc_column_text][\/vc_column][vc_column width=&#8221;1\/5&#8243; rt_wrp_col_paddings=&#8221;false&#8221; rt_border_top=&#8221;&#8221; rt_border_bottom=&#8221;&#8221; rt_border_left=&#8221;&#8221; rt_border_right=&#8221;&#8221; rt_border_top_mobile=&#8221;&#8221; rt_border_bottom_mobile=&#8221;&#8221; rt_border_left_mobile=&#8221;&#8221; rt_border_right_mobile=&#8221;&#8221; rt_bg_image_repeat=&#8221;repeat&#8221; rt_bg_size=&#8221;auto auto&#8221; rt_bg_position=&#8221;right top&#8221; rt_bg_attachment=&#8221;scroll&#8221;][vc_widget_sidebar sidebar_id=&#8221;sidebar-for-portfolio&#8221;][\/vc_column][\/vc_row]<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Microfluidic technologies have wide-ranging applications in chemical analysis systems, drug delivery platforms, and artificial vascular networks. <\/p>\n","protected":false},"author":1,"featured_media":4834,"comment_status":"closed","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[1],"tags":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v18.0 - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Complex 3D microfluidic architectures formed by mechanically guided compressive buckling - WenHao<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/whmicro.com\/?p=4833\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Complex 3D microfluidic architectures formed by mechanically guided compressive buckling - WenHao\" \/>\n<meta property=\"og:description\" content=\"Microfluidic technologies have wide-ranging applications in chemical analysis systems, drug delivery platforms, and artificial vascular networks.\" \/>\n<meta property=\"og:url\" content=\"https:\/\/whmicro.com\/?p=4833\" \/>\n<meta property=\"og:site_name\" content=\"WenHao\" \/>\n<meta property=\"article:published_time\" content=\"2021-11-05T07:48:18+00:00\" \/>\n<meta property=\"article:modified_time\" content=\"2021-11-05T07:50:35+00:00\" \/>\n<meta property=\"og:image\" content=\"https:\/\/whmicro.com\/wp-content\/uploads\/2021\/11\/sciadv.abj3686-f1-scaled.jpg\" \/>\n\t<meta property=\"og:image:width\" content=\"2560\" \/>\n\t<meta property=\"og:image:height\" content=\"1862\" \/>\n\t<meta property=\"og:image:type\" content=\"image\/jpeg\" \/>\n<meta name=\"twitter:card\" content=\"summary_large_image\" \/>\n<meta name=\"twitter:label1\" content=\"Written by\" \/>\n\t<meta name=\"twitter:data1\" content=\"Happy\" \/>\n\t<meta name=\"twitter:label2\" content=\"Est. reading time\" \/>\n\t<meta name=\"twitter:data2\" content=\"5 minutes\" \/>\n<script type=\"application\/ld+json\" class=\"yoast-schema-graph\">{\"@context\":\"https:\/\/schema.org\",\"@graph\":[{\"@type\":\"WebSite\",\"@id\":\"https:\/\/whmicro.com\/#website\",\"url\":\"https:\/\/whmicro.com\/\",\"name\":\"WenHao\",\"description\":\"Microfluidic Chip &amp; 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