{"id":30753,"date":"2017-01-28T00:39:00","date_gmt":"2017-01-27T23:39:00","guid":{"rendered":"https:\/\/www.sonnenseite.com\/politics\/basis-for-new-type-of-solar-cell.html"},"modified":"2017-01-28T00:39:00","modified_gmt":"2017-01-27T23:39:00","slug":"basis-for-new-type-of-solar-cell","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/politics\/basis-for-new-type-of-solar-cell\/","title":{"rendered":"Basis for new type of solar cell"},"content":{"rendered":"<p>International team of scientists develops new effective mechanism for photovoltaics<\/p>\n<p> <!--more--> <\/p>\n<p><span class=\"text\">An interdisciplinary team of researchers has laid the  foundations for an entirely new type of photovoltaic cell. In this new  method, infrared radiation is converted into electrical energy using a  different mechanism from that found in conventional solar cells. The  mechanism behind the new solid-state solar cell made of the mineral  perovskite relies on so-called polaron excitations, which combine the  excitation of electrons and vibrations of the crystal lattice. The  scientists from the University of G&ouml;ttingen, the Max Planck Institute  for Biophysical Chemistry in G&ouml;ttingen, the Technical University of  Clausthal and the Deutsches Elektronen-Synchrotron (DESY) in Hamburg  present their work in the journal <em>Advanced Energy Materials<\/em>.<\/p>\n<p> &ldquo;In conventional solar cells, the interaction between the electrons and  the lattice vibrations can lead to unwanted losses, causing substantial  problems, whereas the polaron excitations in the perovskite solar cell  can be created with a fractal structure at certain operating  temperatures and last long enough for a pronounced photovoltaic effect  to occur,&rdquo; explains the main author of the paper, Dr. Dirk Raiser, from  the Max Planck Institute for Biophysical Chemistry in G&ouml;ttingen and  DESY. &ldquo;This requires the charges to be in an ordered ground state,  however, corresponding to a sort of crystallisation of the charges,  which therefore allows strong cooperative interactions to occur between  the polarons.&rdquo; <\/p>\n<p> The perovskite solar cells studied by the team had to be cooled in the  laboratory to around minus 35 degrees Celsius, in order for the effect  to take place. If this effect is to be used in practical applications,  it will be necessary to produce ordered polaron states at higher  temperatures. &ldquo;The measurements so far were made in a carefully  characterised reference material, in order to demonstrate the principle  of the effect. For this purpose, the low transition temperature was  accepted,&rdquo; explains co-author Professor Simone Techert. <\/p>\n<p> Material physicists in G&ouml;ttingen are trying to modify and optimise the  material in order to achieve a higher operating temperature. &ldquo;Also, we  might be able to achieve the cooperative state temporarily through the  cunning use of additional light to produce the excitation,&rdquo; says  Professor Techert. If one of these strategies proves successful, future  solar cells or photochemical energy sources could be made using  perovskite oxide compounds, of which an abundant supply exists.<\/p>\n<p> &ldquo;Developing high efficiency and simply constructed solid-state solar  cells is still a scientific challenge which many teams around the world  are working on, in order to ensure the future of our energy supply,&rdquo;  emphasises research director Christian Jooss. &ldquo;In addition to optimising  the material and the design of existing solar cells, this also involves  exploring new, fundamental mechanisms of light-induced charge transport  and conversion into electrical energy. This should allow us to develop  solar cells based on new operating principles.&rdquo;<\/p>\n<p> This is precisely what the interdisciplinary team of material  physicists, theoretical physicists, chemical physicists and X-ray  physicists has now achieved within the collaborative research centre SFB  1073 &ldquo;Atomic-Scale Control of Energy Conversion&rdquo; in G&ouml;ttingen. A key  factor in studying the new principle of solar cell operation was the  ultra-fast methods of optical and structural analysis that were used in  the current as well as in earlier work on this topic. <\/p>\n<p> Research in G&ouml;ttingen focuses on the development of materials whose  stimuli can be controlled by strong interactions. The material  development is intensively supported within SFB 1073 by the theoretical  work of Prof. Dr. Peter Bl&ouml;chl from the Technical University of  Clausthal. His work enables to develop a fundamental understanding of  the new mechanisms and thus to carry out the design of new materials in a  targeted manner.<\/p>\n<p> <a href=\"http:\/\/onlinelibrary.wiley.com\/doi\/10.1002\/aenm.201602174\/full\" target=\"_blank\" rel=\"noopener noreferrer\"><strong>Original publication:<\/strong> Dirk Raiser et al. Evolution of hot polaron  states with a nanosecond lifetime in manganite. Advanced Energy  Materials. DOI: 10.1002\/aenm.201602174<\/a><\/span><\/p>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"http:\/\/www.uni-goettingen.de\/en\/3240.html?cid=5729\" target=\"_blank\" rel=\"noopener noreferrer\">University of G&ouml;ttingen, Max Planck Institute for biophysical chemistry 2017<\/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%2Fpolitics%2Fbasis-for-new-type-of-solar-cell%2F\" title=\"Bei Facebook teilen\" aria-label=\"Bei Facebook teilen\" role=\"button\" rel=\"nofollow\" class=\"shariff-link\" style=\";border-radius:1%; background-color:#3b5998; color:#fff\" target=\"_blank\"><span 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