{"id":40642,"date":"2015-12-09T03:28:00","date_gmt":"2015-12-09T02:28:00","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/new-approaches-for-hybrid-solar-cells.html"},"modified":"2015-12-09T03:28:00","modified_gmt":"2015-12-09T02:28:00","slug":"new-approaches-for-hybrid-solar-cells","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/new-approaches-for-hybrid-solar-cells\/","title":{"rendered":"New approaches for hybrid solar cells"},"content":{"rendered":"<p>Nanostructured germanium for portable photovoltaics and battery electrodes.<\/p>\n<p> <!--more--> <\/p>\n<p>Using a new procedure researchers at the Technical University of  Munich (TUM) and the Ludwig Maximillians University of Munich (LMU) can  now produce extremely thin and robust, yet highly porous semiconductor  layers. A very promising material &ndash; for small, light-weight, flexible  solar cells, for example, or electrodes improving the performance of  rechargeable batteries.<\/p>\n<p>The coating on the wafer that <a href=\"http:\/\/www.professoren.tum.de\/en\/faessler-thomas\/\" target=\"_blank\" rel=\"noopener noreferrer\">Professor Thomas F&auml;ssler<\/a>,  chair of Inorganic Chemistry with a Focus on Novel Materials at TU  Munich, holds in his hands glitters like an opal. And it has amazing  properties: It is hard as a crystal, exceptionally thin and &ndash; since it  is highly porous &ndash; light as a feather.<\/p>\n<p>By integrating suitable  organic polymers into the pores of the material, the scientists can  custom tailor the electrical properties of the ensuing hybrid material.  The design not only saves space, it also creates large interface  surfaces that improve overall effectiveness.<\/p>\n<p>&ldquo;You can imagine our  raw material as a porous scaffold with a structure akin to a honeycomb.  The walls comprise inorganic, semiconducting germanium, which can  produce and store electric charges. Since the honeycomb walls are  extremely thin, charges can flow along short paths,&rdquo; explains F&auml;ssler.<\/p>\n<p><strong>The new design: bottom-up instead of top-down<\/strong><\/p>\n<p>But,  to transform brittle, hard germanium into a flexible and porous layer  the researchers had to apply a few tricks. Traditionally, etching  processes are used to structure the surface of germanium. However, this  top-down approach is difficult to control on an atomic level. The new  procedure solves this problem.<\/p>\n<p>Together with his team, F&auml;ssler  established a synthesis methodology to fabricate the desired structures  very precisely and reproducibly. The raw material is germanium with  atoms arranged in clusters of nine. Since these clusters are  electrically charged, they repel each other as long as they are  dissolved. Netting only takes place when the solvent is evaporated.<\/p>\n<p>This  can be easily achieved by applying heat of 500 &deg;C or it can be  chemically induced, by adding germanium chloride, for example. By using  other chlorides like phosphorous chloride the germanium structures can  be easily doped. This allows the researchers to directly adjust the  properties of the resulting nanomaterials in a very targeted manner.<\/p>\n<p><strong>Tiny synthetic beads as nanotemplates<\/strong><\/p>\n<p>To  give the germanium clusters the desired porous structure, the LMU  researcher Dr. Dina Fattakhova-Rohlfing has developed a methodology to  enable nanostructuring: Tiny polymer beads form three-dimensional  templates in an initial step.<\/p>\n<p>In the next step, the  germanium-cluster solution fills the gaps between the beads. As soon as  stable germanium networks have formed on the surface of the tiny beads,  the templates are removed by applying heat. What remains is the highly  porous nanofilm.<\/p>\n<p>The deployed polymer beads have a diameter of 50  to 200 nanometers and form an opal structure. The germanium scaffold  that emerges on the surface acts as a negative mold &ndash; an inverse opal  structure is formed. Thus, the nanolayers glitter like an opal.<\/p>\n<p>&ldquo;The  porous germanium alone has unique optical and electrical properties  that many energy relevant applications can profit from,&rdquo; says LMU  researcher Dr. Dina Fattakhova-Rohlfing, who, in collaboration with  F&auml;ssler, developed the material. &ldquo;Beyond that, we can fill the pores  with a wide variety of functional materials, thereby creating a broad  range of novel hybrid materials.&rdquo;<\/p>\n<p><strong>Nanolayers pave the road to portable photovoltaic solutions<\/strong><\/p>\n<p>&ldquo;When  combined with polymers, porous germanium structures are suitable for  the development of a new generation of stable, extremely light-weight  and flexible solar cells that can charge mobile phones, cameras and  laptops while on the road,&rdquo; explains the <a href=\"https:\/\/www.polymer.ph.tum.de\/en\/peter-mueller-buschbaum\/\" target=\"_blank\" rel=\"noopener noreferrer\">physicist Peter M&uuml;ller-Buschbaum<\/a>, professor of functional materials at TU Munich.<\/p>\n<p>Manufacturers  around the world are on the lookout for light-weight and robust  materials to use in portable solar cells. To date they have used  primarily organic compounds, which are sensitive and have relatively  short lifetimes. Heat and light decompose the polymers and cause the  performance to degrade. Here, the thin but robust germanium hybrid  layers provide a real alternative.<\/p>\n<p><strong>Nanolayers for new battery systems<\/strong><\/p>\n<p>Next,  the researchers want to use the new technology to manufacture highly  porous silicon layers. The layers are currently being tested as anodes  for rechargeable batteries. They could conceivably replace the graphite  layers currently used in batteries to improve their capacity.<\/p>\n<p>The  research was funded by the &ldquo;Solar Technologies Go Hybrid&rdquo; program of  the Bavarian State Ministry of Science, in the context of the excellence  cluster &ldquo;Nanosystems Initiative Munich (NIM), the German Research  Foundation (DFG) and the Center for Nanosciences (CeNS).<\/p>\n<p><strong>Publication:<\/strong><br \/>Zintl  Clusters as Wet Chemical Precursors for Germanium Nanomorphologies with  Tunable Composition; Manuel M. Bentlohner, Markus Waibel, Patrick  Zeller, Kuhu Sarkar, Peter M&uuml;ller-Buschbaum, Dina Fattakhova-Rohlfing,  Thomas F. F&auml;ssler<br \/>Angewandte Chemie, online 03.12.2015 &ndash; <a href=\"http:\/\/onlinelibrary.wiley.com\/doi\/10.1002\/ange.201508246\/full\" target=\"_blank\" rel=\"noopener noreferrer\">DOI: 10.1002\/ange.201508246<\/a> <\/p>\n<p><strong>Video:<\/strong> <a href=\"https:\/\/vimeo.com\/76125397\" target=\"_blank\" rel=\"noopener noreferrer\">https:\/\/vimeo.com\/76125397<\/a> <\/p>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"http:\/\/www.tum.de\/en\/about-tum\/news\/press-releases\/short\/article\/32787\/\" target=\"_blank\" rel=\"noopener noreferrer\">Technical University of Munich 2015<\/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%2Fnew-approaches-for-hybrid-solar-cells%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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