{"id":59594,"date":"2020-07-22T00:32:00","date_gmt":"2020-07-21T22:32:00","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/researchers-develop-new-materials-for-energy-and-sensing\/"},"modified":"2020-07-22T00:32:00","modified_gmt":"2020-07-21T22:32:00","slug":"researchers-develop-new-materials-for-energy-and-sensing","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/researchers-develop-new-materials-for-energy-and-sensing\/","title":{"rendered":"Researchers develop new materials for energy and sensing"},"content":{"rendered":"<p>MIT and Northwestern researchers create hybrid perovskite materials that could help improve the quality of solar cells and light sources.<\/p>\n<p> <!--more--> <\/p>\n<div class=\"field field-name-field-article-content field-type-text-long field-label-hidden\">\n<div class=\"field-items\">\n<div class=\"field-item even\">\n<p>A  team of researchers from MIT and Northwestern University has  demonstrated the ability to fine-tune the electronic properties of  hybrid perovskite materials, which have drawn enormous interest as  potential next-generation optoelectronic materials for devices such as  solar cells and light sources.<\/p>\n<p>The materials are classified as &ldquo;hybrid&rdquo; because they contain  inorganic components like metals, as well as organic molecules with  elements like carbon and nitrogen, organized into nanoscale layers. In a  paper published online this week in <em>Nature Chemistry<\/em>, the  researchers showed that by strategically varying the composition of the  organic layers, they could tune the color of light absorbed by the  perovskite and also the wavelength at which the material emitted light.  Importantly, they accomplished this without substantially changing the  inorganic component.<\/p>\n<p>&ldquo;Until now, most experimental and theoretical evidence indicated that  the organic layers simply act as inert spacers whose only role is to  separate the electronically active inorganic layers,&rdquo; says Will Tisdale,  the ARCO Career Development Professor in Energy Studies at MIT and  co-corresponding author on the paper. &ldquo;These new results show that we  can teach the organic layer to do much more.&rdquo;<\/p>\n<p>&ldquo;Our laboratory has been interested in the design of novel hybrid  materials that combine inorganic and organic components in order to  create synergistic properties, and this is precisely what we have done  in this work on the exciting energy materials known as perovskites,&rdquo;  says Samuel Stupp, Board of Trustees Professor of Chemistry, Materials  Science and Engineering, Medicine, and Biomedical Engineering at  Northwestern and co-corresponding author on the paper.<\/p>\n<p>Perovskites, first discovered as naturally occurring minerals in the  Ural Mountains almost 200 years ago, have been investigated vigorously  in the past decade after it was determined that they could turn light  into usable electricity. These materials are considered a possible key  to a sustainable energy future because they are less expensive to  manufacture than the popular silicon-based solar cells, and can convert  light to electricity nearly as efficiently.<\/p>\n<p>However, perovskite solar cells are far less durable and stable in  outdoor conditions due to their sensitivity to heat and moisture.  Scientists have recently found that splitting the traditional 3D  structure of perovskites into many thin layers &mdash; ranging from a few  atoms thick to dozens of atoms thick &mdash; improves stability and  performance.<\/p>\n<p>In layered perovskites, the inorganic layer absorbs light and  produces the charges that eventually are needed to produce electrical  energy. The organic layers typically are insulating and act like giant  walls preventing the light-generated charges from moving out of the  inorganic layer.<\/p>\n<p>&ldquo;This collaboration has been exciting because the materials that the  Stupp group sent to us from Northwestern were exactly in line with the  questions we were asking at MIT, about how excitons in the inorganic  layers of the perovskite could be influenced by the properties of the  organic layers,&rdquo; says Katie Mauck, a former postdoc in the Tisdale group  and now an assistant professor of chemistry at Kenyon College. Along  with James Passarelli, a graduate student in the Stupp group, she is a  co-first author of the paper. &ldquo;James&rsquo; modular approach to the perovskite  synthesis enabled us to controllably tune the interaction between these  layers and study the effects on exciton dynamics in depth, through  spectroscopy in the Tisdale lab.&rdquo;<\/p>\n<p>&ldquo;When light is absorbed by semiconductors such as perovskites,  electrons with their negative charge acquire energy and move away,&rdquo;  Stupp says. &ldquo;This sets up an attractive force with the positively  charged sites they leave behind, since matter wants to be neutral. We  were able to control the magnitude of this force by incorporating  specific types of molecules within the organic layers, which in turn  modifies their interesting properties.&rdquo;<\/p>\n<p>The Northwestern-MIT collaboration began after a chance encounter  between Mauck and a Stupp lab member at a scientific conference in  summer 2018. The Stupp laboratory had previously performed pioneering  work on the synthesis of inorganic-organic hybrid materials for  potential applications in energy and medicine, while the Tisdale group  specializes in using lasers to probe the properties of nanomaterials.<\/p>\n<p>These interests overlapped perfectly for this project, as the Stupp  group developed the hybrid perovskite structures and the Tisdale group  performed the precise spectroscopic measurements necessary to confirm  the interactions within the systems.<\/p>\n<p>In the future, the ability to fine-tune the electronic properties of  these materials could be applied to various optical or electronic  sensors &mdash; including molecular sensors that take advantage of the  presence of organic layers &mdash; as well as solar cells and light detectors.<\/p>\n<p>&ldquo;In addition to a pathway toward improved optoelectronic devices,  this work underscores some of the unique advantages of nanoscale  semiconductors, which are more sensitive to their surrounding  environment than bulk materials,&rdquo; Tisdale says. &ldquo;The lessons we&rsquo;ve  learned in the context of hybrid layered perovskites can be extended to  many other emerging materials.&rdquo;<\/p>\n<p>This work was supported by the U.S. Department of Energy, Office of  Science, Basic Energy Sciences and the Center for Bio-Inspired Energy  Science, an Energy Frontiers Research Center.<\/p>\n<\/p><\/div>\n<\/p><\/div>\n<\/p><\/div>\n<div class=\"article-images\"><img loading=\"lazy\" decoding=\"async\" width=\"300\" height=\"169\" src=\"https:\/\/www.sonnenseite.com\/wp-content\/uploads\/2020\/07\/MIT_Perowskit-Solarzellen.jpg\" class=\"alignleft\" alt=\"Ken Richardson | mit.edu | New perovskite solar cell from the laboratory\" \/><\/div>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"http:\/\/news.mit.edu\/2020\/researchers-develop-new-materials-energy-sensing-0716\" target=\"_blank\" rel=\"noopener noreferrer\">MIT 2020<\/a><\/p>\n<div class=\"shariff shariff-align-flex-start shariff-widget-align-flex-start\"><div class=\"ShariffHeadline\">Diese Meldung teilen<\/div><ul class=\"shariff-buttons theme-round orientation-horizontal buttonsize-medium\"><li class=\"shariff-button facebook shariff-nocustomcolor\" style=\"background-color:#4273c8;border-radius:1%\"><a href=\"https:\/\/www.facebook.com\/sharer\/sharer.php?u=https%3A%2F%2Fwww.sonnenseite.com%2Fen%2Fscience%2Fresearchers-develop-new-materials-for-energy-and-sensing%2F\" title=\"Bei Facebook teilen\" aria-label=\"Bei Facebook teilen\" role=\"button\" rel=\"nofollow\" class=\"shariff-link\" style=\";border-radius:1%; 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