{"id":35143,"date":"2016-08-02T08:17:10","date_gmt":"2016-08-02T06:17:10","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/stability-of-cheap-solar-cells-improved.html"},"modified":"2016-08-02T08:17:10","modified_gmt":"2016-08-02T06:17:10","slug":"stability-of-cheap-solar-cells-improved","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/stability-of-cheap-solar-cells-improved\/","title":{"rendered":"Stability of cheap solar cells improved"},"content":{"rendered":"<p>The stability of a very efficient and cheap material for solar cells has now been enhanced by up to two orders of magnitude.<\/p>\n<p> <!--more--> <\/p>\n<p>The material manipulations that enabled this enhancement were developed  in a project supported by the Austrian Science Fund FWF &ndash; and their  &ldquo;secret&rdquo; was recently published in Nano Letters.<\/p>\n<p>Lead-halide perovskites are the darling of solar cell research: the  crystalline material is used for cost-effective manufacturing processes  and, surpassing the 20% threshold, has already achieved enormous power  conversion efficiencies in a comparatively short time. This material  still has a fundamental drawback, however, and that is its instability. A  recent discovery by an Erwin Schr&ouml;dinger Fellow of the FWF, in  cooperation with Aaron Fafarman and a team of researchers from Drexel  University in Philadelphia, US, has now shown that this instability can  be considerably reduced through high levels of doping with chloride  ions.<\/p>\n<h4><strong>High doping levels<\/strong><\/h4>\n<p>David Egger, who is supported by a Schr&ouml;dinger fellowship and based  at the Department of Materials and Interfaces of the Weizmann Institute  of Science in Israel, together with his colleagues discovered that  certain perovskites can hold high levels of chloride ions (doping) &ndash; and  that this enhances the stability of the functional material under  certain conditions by up to two orders of magnitude. Egger elaborates:  &ldquo;We examined cesium-lead-iodide perovskites. One issue is the stability  of the functional phase of this material that interests us for  applications: under practically relevant conditions, a phase transition  occurs and the excellent photovoltaic properties are lost almost  immediately.&rdquo;<\/p>\n<h4><strong>Presage<\/strong><\/h4>\n<p>From previous experiments on perovskites including chloride instead  of iodide ions one could speculate that doping the material with  chloride may enhance its stability. However, achieving this in practice  proved to be extremely difficult. Egger and his colleagues chose an  interdisciplinary approach to investigate whether chloride doping could  have a positive effect on the stability of cesium-based perovskites: &ldquo;We  used atomistic simulations to show that chloride ions are mobile in the  perovskite crystal, can easily be incorporated into the host material,  and that this would enhance the mechanical stability. Our colleagues  designed an experimental approach to introduce chloride into the  perovskite material, which they achieved by using a chemical sintering  process,&rdquo;, Egger explains the international cooperation between the  Weizmann Institute in Israel and scientists from Drexel University and  the University of Pennsylvania in the US.<\/p>\n<h4><strong>Surprising results<\/strong><\/h4>\n<p>When analysing the stability of the cesium-lead-iodide-chloride, the  team was surprised. As lead-halide perovskites are typically  particularly unstable in contact with water, the team monitored material  stability of the new compounds at different levels of humidity. At a  relative humidity of 54 per cent, the half-life of the functional phase  of the new material was six times longer than that of control samples  without chloride. At reduced humidity levels of eleven per cent, the  half-life became even longer.<\/p>\n<p>Egger: &ldquo;The enhanced half-life of the functional perovskite phase at a  relative humidity of eleven per cent was such that we could no longer  detect a phase transition of the chloride-doped perovskite within the  maximum possible measurement time of our devices, which was 96 hours.  For the undoped perovskite, however, this happened much faster,  indicating that chloride doping enhanced the half-life by at least 2  orders of magnitude.&rdquo; The scientists again combined their results from  experiment and theory to show that chloride doping levels beyond two per  cent in the newly created material are not possible. The fundamental  insight provided by Egger and his colleagues, supported by the Erwin  Schr&ouml;dinger fellowship of the FWF, may now be used in new approaches to  exploit the enormous potential of perovskite solar cells in even greater  capacity.<\/p>\n<ul>\n<li><a href=\"http:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acs.nanolett.6b00635\" target=\"_blank\" rel=\"noopener noreferrer\">&ldquo;High Chloride Doping Levels Stabilize the Perovskite Phase of Cesium Lead Iodide&rdquo;<\/a>  Subham Dastidar, David A. Egger, Liang Z. Tan, Samuel B. Cromer, Andrew  D. Dillon, Shi Liu, Leeor Kronik, Andrew M. Rappe and Aaron T.  Fafarman. Nano Lett. 2016, 16, 3563&minus;3570. doi:  10.1021\/acs.nanolett.6b00635.<\/li>\n<li>Schr&ouml;dinger Project: <a href=\"http:\/\/pf.fwf.ac.at\/en\/research-in-practice\/project-finder?search%5Bwhat%5D=david+egger&amp;search%5Bpromotion_category_id%5D%5B%5D=&amp;search%5Bcall%5D=&amp;search%5Bproject_number%5D=&amp;search%5Bdecision_board_ids%5D=&amp;search%5Bproject_title%5D=&amp;search%5Blead_firstname%5D=&amp;search%5Blead_lastname%5D=&amp;search%5Bresearch_place_kind%5D%5B%5D=&amp;search%5Binstitute_name%5D=&amp;search%5Bstart_date%5D=&amp;search%5Bend_date%5D=&amp;search%5Bgrant_years%5D%5B%5D=&amp;search%5Bstatus_id%5D=&amp;search%5Bscience_discipline_id%5D=&amp;search%5Bper_page%5D=10#search-results\" target=\"_blank\" rel=\"noopener noreferrer\">Accurate Density-Functional Theory for Solid-State Materials<\/a><\/li>\n<\/ul>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"https:\/\/www.fwf.ac.at\/\" target=\"_blank\" rel=\"noopener noreferrer\">Wissenschaftsfonds FWF 2016<\/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%2Fstability-of-cheap-solar-cells-improved%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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