{"id":24728,"date":"2024-01-23T22:21:01","date_gmt":"2024-01-23T16:36:01","guid":{"rendered":"https:\/\/www.revoscience.com\/en\/?p=24728"},"modified":"2024-01-23T22:21:15","modified_gmt":"2024-01-23T16:36:15","slug":"stripes-in-a-flowing-liquid-crystal-suggest-a-route-to-chiral-fluids","status":"publish","type":"post","link":"https:\/\/www.revoscience.com\/en\/stripes-in-a-flowing-liquid-crystal-suggest-a-route-to-chiral-fluids\/","title":{"rendered":"Stripes in a flowing liquid crystal suggest a route to \u201cchiral\u201d fluids"},"content":{"rendered":"<div class=\"wp-block-post-author\"><div class=\"wp-block-post-author__content\"><p class=\"wp-block-post-author__name\">Jennifer Chu<\/p><\/div><\/div>\n\n\n<div class=\"wp-block-cover\"><span aria-hidden=\"true\" class=\"wp-block-cover__background has-background-dim\"><\/span><img loading=\"lazy\" decoding=\"async\" width=\"900\" height=\"600\" sizes=\"auto, (max-width: 900px) 100vw, 900px\" class=\"wp-block-cover__image-background wp-image-24729\" alt=\"\" src=\"https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0.jpg\" data-object-fit=\"cover\" title=\"\" srcset=\"https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0.jpg 900w, https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-600x400.jpg 600w, https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-675x450.jpg 675w, https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-768x512.jpg 768w\" \/><div class=\"wp-block-cover__inner-container is-layout-flow wp-block-cover-is-layout-flow\">\n<p><\/p>\n\n\n\n<p><\/p>\n\n\n\n<p><\/p>\n\n\n\n<p><\/p>\n\n\n\n<p><\/p>\n\n\n\n<p class=\"has-text-align-right has-small-font-size\">MIT<\/p>\n<\/div><\/div>\n\n\n\n<p>CAMBRIDGE, Mass. &#8212; Hold your hands out in front of you, and no matter how you rotate them, it\u2019s impossible to superimpose one over the other. Our hands are a perfect example of chirality \u2014 a geometric configuration by which an object cannot be superimposed onto its mirror image.&nbsp;<\/p>\n\n\n\n<p>Chirality is everywhere in nature, from our hands to the arrangement of our internal organs to the spiral structure of DNA. Chiral molecules and materials have been the key to many drug therapies, optical devices, and functional metamaterials. Scientists have until now assumed that chirality begets chirality \u2014 that is, chiral structures emerge from chiral forces and building blocks. But that assumption may need some retuning.&nbsp;<\/p>\n\n\n\n<p>MIT engineers recently discovered that chirality can also emerge in an entirely nonchiral material, and through nonchiral means. In a study appearing in&nbsp;<a href=\"https:\/\/link.mediaoutreach.meltwater.com\/ls\/click?upn=kLuqYYBQiqEU1tC0k1-2Bxu5yTEj78BxscLFUx5IECraB-2BByOwq-2FupIwZ9VMuQcY-2FTDSQVpDUSqw3u7xO0hq7-2B5g-3D-3DczZF_atJWz-2F57UhGGlDNlsqnR2CS5p8HPplAuHRkThiVrBX405lh-2Ff7bClnJXaP1gR2z3ACI5vvdGlRvSogY5C0ZJM7rcpKsLVy9VkmVC5pehBx1o55OnhzJIXjxfP2L2cyNpKHFzQ5XppUa9ddBDQin4KFGDJm9aG-2FeAUK24KmSsREs50AWywftqbePKM-2F3fok11VgoJh1S72N9FGXp2eTp6knWH3nIPz69IdwPryDXuJFcXUQCgfDOLhQ2aA-2B-2FIKP-2B5B2sqaxV21HodCTwiXcOVwTakqWPu99jOWDPB0zgwBgXqR8h5Om89EV9quKMtmd-2BxVQw3wyDCL5NGm13tpzUvJ3IZIQ3X1n3Fwhgdw51RZGszrzVzilwcXjGnnahXzWin27-2FmMwI79h-2FYTM5wB5r3Pg-3D-3D\" target=\"_blank\" rel=\"noreferrer noopener\"><em>Nature Communications<\/em><\/a>, the team reports observing chirality in a liquid crystal \u2014 a material that flows like a liquid and has non ordered, crystal-like microstructure like a solid. They found that when the fluid flows slowly, its normally nonchiral microstructures spontaneously assemble into large, twisted, chiral structures. The effect is as if a conveyor belt of crayons, all symmetrically aligned, were to suddenly rearrange into large, spiral patterns once the belt reaches a certain speed.&nbsp;<\/p>\n\n\n\n<p>The geometric transformation is unexpected, given that the liquid crystal is naturally nonchiral, or \u201cachiral.\u201d The team\u2019s study thus opens a new path to generating chiral structures. The researchers envision that the structures, once formed, could serve as spiral scaffolds in which to assemble intricate molecular structures. The chiral liquid crystals could also be used as optical sensors, as their structural transformation would change the way they interact with light.&nbsp;<\/p>\n\n\n\n<p>\u201cThis is exciting, because this gives us an easy way to structure these kinds of fluids,\u201d says study co-author Irmgard Bischofberger, associate professor of mechanical engineering at MIT. \u201cAnd from a fundamental level, this is a new way in which chirality can emerge.\u201d&nbsp;<\/p>\n\n\n\n<p>The study\u2019s co-authors include lead author Qing Zhang PhD \u201922, Weiqiang Wang and Rui Zhang of Hong Kong University of Science and Technology, and Shuang Zhou of the University of Massachusetts at Amherst.&nbsp;<\/p>\n\n\n\n<p><strong>Striking stripes<\/strong><\/p>\n\n\n\n<p>A liquid crystal is a phase of matter that embodies properties of both a liquid and a solid. Such in-between materials flow like liquid and are molecularly structured like solids. Liquid crystals are used\u00a0as the main element in pixels that make up LCD displays, as the symmetric alignment of their molecules can be uniformly switched with voltage to collectively create high-resolution images.\u00a0<\/p>\n\n\n\n<p>Bischofberger\u2019s group at MIT studies how fluids and soft materials spontaneously form patterns in nature and in the lab. The team seeks to understand the mechanics underlying fluid transformations, which could be used to create new, reconfigurable materials.<\/p>\n\n\n\n<p>In their new study, the researchers focused on a special type of nematic liquid crystal \u2014 a water-based fluid that contains microscopic, rod-like molecular structures. The rods normally align in the same direction throughout the fluid. Zhang was initially curious how the fluid would behave under various flow conditions.&nbsp;<\/p>\n\n\n\n<p>\u201cI tried this experiment for the first time at home, in 2020,\u201d Zhang recalls. \u201cI had samples of the fluid, and a small microscope, and one day I just set it to a low flow. When I came back, I saw this really striking pattern.\u201d<\/p>\n\n\n\n<p>She and her colleagues repeated her initial experiments in the lab. They fabricated a microfluidic channel out of two glass slides, separated by a very thin space, and connected to a main reservoir. The team slowly pumped samples of the liquid crystal through the reservoir and into the space between the plates, then took microscopy images of fluid as it flowed through.&nbsp;<\/p>\n\n\n\n<p>Like Zhang\u2019s initial experiments, the team observed an unexpected transformation: The normally uniform fluid began to form tiger-like stripes as it slowly moved through the channel.&nbsp;<\/p>\n\n\n\n<p>\u201cIt was surprising that it formed any structure, but even more surprising once we actually knew what type of structure it formed,\u201d Bischofberger says. \u201cThat\u2019s where chirality comes in.\u201d<\/p>\n\n\n\n<p><strong>Twist and flow<\/strong><\/p>\n\n\n\n<p>The team discovered that the fluid\u2019s stripes were unexpectedly chiral, by using various optical and modeling techniques to effectively retrace the fluid\u2019s flow. They observed that, when unmoving, the fluid\u2019s microscopic rods are normally aligned in near-perfect formation. When the fluid is pumped through the channel quickly, the rods are in complete disarray. But at a slower, in-between flow, the structures start to wiggle, then progressively twist like tiny propellers, each one turning slightly more than the next.&nbsp;<\/p>\n\n\n\n<p>If the fluid continues its slow flow, the twisting crystals assemble into large spiral structures that appear as stripes under the microscope.&nbsp;<\/p>\n\n\n\n<p>\u201cThere\u2019s this magic region, where if you just gently make them flow, they form these large spiral structures,\u201d Zhang says.<\/p>\n\n\n\n<p>The researchers modeled the fluid\u2019s dynamics and found that the large spiral patterns emerged when the fluid arrived at a balance between two forces: viscosity and elasticity. Viscosity describes how easily a material flows, while elasticity is essentially how likely a material is to deform (for instance, how easily the fluid\u2019s rods wiggle and twist).&nbsp;<\/p>\n\n\n\n<p>\u201cWhen these two forces are about the same, that\u2019s when we see these spiral structures,\u201d&nbsp;Bischofberger explains. \u201cIt\u2019s kind of amazing that individual structures, on the order of nanometers, can assemble into much larger, millimeter-scale structures that are very ordered, just by pushing them a little bit out of equilibrium.\u201d<\/p>\n\n\n\n<p>The team realized that the twisted assemblages have a chiral geometry: If a mirror image was made of one spiral, it would not be possible to superimpose it over the original, no matter how the spirals were rearranged. The fact that the chiral spirals emerged from a nonchiral material, and through nonchiral means, is a first and points to a relatively simple way to engineer structured fluids.<\/p>\n\n\n\n<p>\u201cWe now have some knobs to tune this structure,\u201d Bischofberger says. \u201cThis might give us a new optical sensor that interacts with light in certain ways. It could also be used as scaffolds to grow and transport molecules for drug delivery. We\u2019re excited to explore this whole new phase space.\u201d<\/p>\n\n\n\n<p>This research was supported, in part, by the U.S. National Science Foundation.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Hold your hands out in front of you, and no matter how you rotate them, it\u2019s impossible to superimpose one over the other.<\/p>\n","protected":false},"author":2,"featured_media":24729,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[17],"tags":[],"class_list":["post-24728","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-research"],"featured_image_urls":{"full":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0.jpg",900,600,false],"thumbnail":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-200x200.jpg",200,200,true],"medium":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-600x400.jpg",600,400,true],"medium_large":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-768x512.jpg",750,500,true],"large":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-675x450.jpg",675,450,true],"1536x1536":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0.jpg",900,600,false],"2048x2048":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0.jpg",900,600,false],"ultp_layout_landscape_large":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0.jpg",900,600,false],"ultp_layout_landscape":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-870x570.jpg",870,570,true],"ultp_layout_portrait":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-600x600.jpg",600,600,true],"ultp_layout_square":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-600x600.jpg",600,600,true],"newspaper-x-single-post":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-760x490.jpg",760,490,true],"newspaper-x-recent-post-big":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-550x360.jpg",550,360,true],"newspaper-x-recent-post-list-image":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0-95x65.jpg",95,65,true],"web-stories-poster-portrait":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0.jpg",640,427,false],"web-stories-publisher-logo":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0.jpg",96,64,false],"web-stories-thumbnail":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2024\/01\/MIT_Twisted-Liquid-01-PRESS_0.jpg",150,100,false]},"author_info":{"info":["Jennifer Chu"]},"category_info":"<a href=\"https:\/\/www.revoscience.com\/en\/category\/news\/research\/\" rel=\"category tag\">Research<\/a>","tag_info":"Research","comment_count":"0","_links":{"self":[{"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/posts\/24728","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/comments?post=24728"}],"version-history":[{"count":1,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/posts\/24728\/revisions"}],"predecessor-version":[{"id":24730,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/posts\/24728\/revisions\/24730"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/media\/24729"}],"wp:attachment":[{"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/media?parent=24728"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/categories?post=24728"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/tags?post=24728"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}