{"id":6814,"date":"2015-11-25T06:07:03","date_gmt":"2015-11-25T06:07:03","guid":{"rendered":"http:\/\/revoscience.com\/en\/?p=6814"},"modified":"2015-11-25T06:07:03","modified_gmt":"2015-11-25T06:07:03","slug":"an-extreme-close-up-on-heat-transfer","status":"publish","type":"post","link":"https:\/\/www.revoscience.com\/en\/an-extreme-close-up-on-heat-transfer\/","title":{"rendered":"An extreme close-up on heat transfer"},"content":{"rendered":"<p style=\"text-align: justify;\"><span style=\"color: #000000;\"><em><strong style=\"color: #222222;\">New formula identifies limits to nanoscale heat transfer, may help optimize devices that convert heat to electricity.<\/strong><\/em><\/span><\/p>\n<figure id=\"attachment_6815\" aria-describedby=\"caption-attachment-6815\" style=\"width: 639px\" class=\"wp-caption alignnone\"><a href=\"http:\/\/revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg\" target=\"_blank\" rel=\"noopener\"><img loading=\"lazy\" decoding=\"async\" class=\"size-full wp-image-6815\" src=\"http:\/\/revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg\" alt=\"MIT mathematicians have identified the limits to heat flow at the nanoscale.\" width=\"639\" height=\"426\" title=\"\" srcset=\"https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg 639w, https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0-300x200.jpg 300w\" sizes=\"auto, (max-width: 639px) 100vw, 639px\" \/><\/a><figcaption id=\"caption-attachment-6815\" class=\"wp-caption-text\">MIT mathematicians have identified the limits to heat flow at the nanoscale.<\/figcaption><\/figure>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\"><strong>CAMBRIDGE, Mass.<\/strong> &#8212;\u00a0How much heat can two bodies exchange without touching? For over a century, scientists have been able to answer this question for virtually any pair of objects in the macroscopic world, from the rate at which a campfire can warm you up, to how much heat the Earth absorbs from the sun. But predicting such radiative heat transfer between extremely close objects has proven elusive for the past 50 years.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">Now, MIT mathematicians have derived a formula for determining the maximum amount of heat exchanged between two objects separated by distances shorter than the width of a single hair. For any two objects situated mere nanometers apart, the formula can be used to calculate the most heat one body may transmit to another, based on two parameters: what the objects are made of, and how far apart they are.<\/span><\/p>\n<p style=\"text-align: justify;\">[pullquote]Miller and his colleagues derived a formula for determining the maximum heat transfer between two extremely close objects.[\/pullquote]<\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">The formula may help engineers identify optimal materials and designs for tuning small, intricately patterned devices, such as thermophotovoltaic surfaces that convert thermal energy into electrical energy, and cooling systems for computer chips.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">As a demonstration, the scientists used their formula to calculate the maximum heat transfer between two nanometer-spaced metal plates, and found that the structures may be able to transmit orders of magnitude more heat than they currently achieve.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">\u201cThis [formula] provides a target to say, \u2018this is what we should be looking for,\u2019 and compared to what we\u2019ve seen so far in simple structures, there\u2019s orders of magnitude more room for improvement for this kind of heat transfer,\u201d says Owen Miller, a postdoc in the Department of Mathematics. \u201cIf that\u2019s practically achievable, that could make a huge difference in, for example, thermophotovoltaics.\u201d<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">Miller and his colleagues Steven Johnson, professor of applied mathematics at MIT, and Alejandro Rodriguez, assistant professor of electrical engineering at Princeton University, have published their results in\u00a0<em>Physical Review Letters.<\/em><\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\"><strong>Small scale, big effect<\/strong><\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">Since the late 1800s, scientists have used the Stefan-Boltzmann law to calculate the maximum amount of heat one body can transmit to another. This maximum heat transfer depends only on the two bodies\u2019 temperatures and can be reached only when both bodies are extremely opaque, absorbing all the heat that is radiated on them \u2014 a theoretical notion known as the blackbody limit.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">However, for objects smaller than the wavelength of heat \u2014 about 8 micrometers \u2014 scientists\u2019 established theories of heat transfer no longer apply. In fact, it appears that at the nanoscale, the amount of heat transmitted between objects actually exceeds that predicted by the blackbody limit, hundreds of times over.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">As it turns out, when objects are extremely close together, heat flows not just as electromagnetic waves, but as evanescent waves \u2014 exponentially decaying waves that have little effect at the macroscale, as they typically die away before reaching another object. At the nanoscale, however, evanescent waves can play a large role in heat transfer, tunneling between objects and essentially releasing trapped energy in the form of extra heat. Only in the last few years have Johnson and others at MIT, including Homer Reid, an applied mathematics instructor; Gang Chen, the Carl Richard Soderberg Professor of Power Engineering and head of the Department of Mechanical Engineering; and Mehran Kardar, the Francis Friedman Professor of Physics; begun to predict and quantify heat transfer at the nanoscale.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\"><strong>A surprisingly generalizable equation<\/strong><\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">Miller and his colleagues derived a formula for determining the maximum heat transfer between two extremely close objects. To do so, they used an existing model that describes radiative heat transfer as electrical currents flowing within two objects. Such currents arise from each object\u2019s fluctuating electric dipoles, or, its distribution of negative and positive charges.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">Using this model as a framework, the team added two additional constraints: energy conservation, in which there is a limit to the amount of energy one body can absorb; and reciprocity, where each body may be treated as a source or receiver of heat. With this approach, the researchers derived a simple equation to calculate the maximum, or upper bound, of heat that two bodies may exchange at nanoscale separations.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">The equation is surprisingly generalizable and can be applied to any pair of objects regardless of their shape. Scientists simply input two parameters into the equation: separation distance, and certain material properties of each object \u2014 namely, the maximum amount of electric current that can build up in a given material.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">\u201cNow we have a formula for the upper bound,\u201d Johnson says. \u201cGiven the material and the separation you want, you\u2019d just plug it into the formula and boom, you\u2019re done \u2014 it\u2019s very easy. Now you can go backwards and try to play with materials and optimize them.\u201d<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">Johnson says engineers can use the formula to identify the best possible combination and orientation of materials for optimizing heat transfer in nanodevices such as thermophotovoltaics, which involves etching surfaces with very fine, intricate patterns to improve their heat-absorbing properties.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">The team has done some preliminary work in exploring heat transfer between various materials at the nanoscale. Taking about 20 different materials from the periodic table \u2014 mostly metals \u2014 Miller calculated the maximum heat transfer between pairs of them, at extremely small separations.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"color: #000000;\">\u201cThis is still ongoing work, but aluminum looks like it has a lot of potential if it can be designed properly,\u201d Miller says. \u201cIt has to be designed properly in order to achieve the limit, which is why people haven\u2019t seen large enhancements with such materials before, but this really opens up a new class of materials that may be used.\u201d<\/span><\/p>\n","protected":false},"excerpt":{"rendered":"<p>MIT mathematicians have derived a formula for determining the maximum amount of heat exchanged between two objects separated by distances shorter than the width of a single hair.<\/p>\n","protected":false},"author":6,"featured_media":6815,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[17],"tags":[],"class_list":["post-6814","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\/2015\/11\/MIT-Nano-Heat_0.jpg",639,426,false],"thumbnail":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0-150x150.jpg",150,150,true],"medium":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0-300x200.jpg",300,200,true],"medium_large":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",639,426,false],"large":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",639,426,false],"1536x1536":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",639,426,false],"2048x2048":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",639,426,false],"ultp_layout_landscape_large":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",639,426,false],"ultp_layout_landscape":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",639,426,false],"ultp_layout_portrait":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",600,400,false],"ultp_layout_square":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",600,400,false],"newspaper-x-single-post":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",639,426,false],"newspaper-x-recent-post-big":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",540,360,false],"newspaper-x-recent-post-list-image":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",95,63,false],"web-stories-poster-portrait":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",639,426,false],"web-stories-publisher-logo":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",96,64,false],"web-stories-thumbnail":["https:\/\/www.revoscience.com\/en\/wp-content\/uploads\/2015\/11\/MIT-Nano-Heat_0.jpg",150,100,false]},"author_info":{"info":["Amrita Tuladhar"]},"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\/6814","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\/6"}],"replies":[{"embeddable":true,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/comments?post=6814"}],"version-history":[{"count":0,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/posts\/6814\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/media\/6815"}],"wp:attachment":[{"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/media?parent=6814"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/categories?post=6814"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.revoscience.com\/en\/wp-json\/wp\/v2\/tags?post=6814"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}