{"id":44366,"date":"2015-06-25T13:18:28","date_gmt":"2015-06-25T11:18:28","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/ucla-chemists-devise-technology-that-could-transform-solar-energy-storage.html"},"modified":"2015-06-25T13:18:28","modified_gmt":"2015-06-25T11:18:28","slug":"ucla-chemists-devise-technology-that-could-transform-solar-energy-storage","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/ucla-chemists-devise-technology-that-could-transform-solar-energy-storage\/","title":{"rendered":"UCLA chemists devise technology that could transform solar energy storage"},"content":{"rendered":"<p>The materials in most of today&rsquo;s residential rooftop solar panels can store energy from the sun for only a few microseconds at a time. A new technology developed by chemists at UCLA is capable of storing solar energy for up to several weeks &mdash; an advance that could change the way scientists think about designing solar cells.<\/p>\n<p> <!--more--> <\/p>\n<p>The new design is inspired by the way that plants generate energy through photosynthesis. <\/p>\n<p>&ldquo;Biology does a very good job of creating energy from sunlight,&rdquo; said Sarah Tolbert, a UCLA professor of chemistry and one of the senior authors of the research. &ldquo;Plants do this through photosynthesis with extremely high efficiency.&rdquo;<\/p>\n<p>&ldquo;In photosynthesis, plants that are exposed to sunlight use carefully organized nanoscale structures within their cells to rapidly separate charges &mdash; pulling electrons away from the positively charged molecule that is left behind, and keeping positive and negative charges separated,&rdquo; Tolbert said. &ldquo;That separation is the key to making the process so efficient.&rdquo;<\/p>\n<p>To capture energy from sunlight, conventional rooftop solar cells use silicon, a fairly expensive material.&nbsp; There is currently a big push to make lower-cost solar cells using plastics, rather than silicon, but today&rsquo;s plastic solar cells are relatively inefficient, in large part because the separated positive and negative electric charges often recombine before they can become electrical energy.<\/p>\n<p>&ldquo;Modern plastic solar cells don&rsquo;t have well-defined structures like plants do because we never knew how to make them before,&rdquo; Tolbert said. &ldquo;But this new system pulls charges apart and keeps them separated for days, or even weeks. Once you make the right structure, you can vastly improve the retention of energy.&rdquo;<\/p>\n<p>The two components that make the UCLA-developed system work are a polymer donor and a nano-scale fullerene acceptor.&nbsp;The polymer donor absorbs sunlight and passes electrons to the fullerene acceptor; the process generates electrical energy.<\/p>\n<p>The plastic materials, called organic photovoltaics, are typically organized like a plate of cooked pasta &mdash; a disorganized mass of long, skinny polymer &ldquo;spaghetti&rdquo; with random fullerene &ldquo;meatballs.&rdquo; But this arrangement makes it difficult to get current out of the cell because the electrons sometimes hop back to the polymer spaghetti and are lost.<\/p>\n<p>The UCLA technology arranges the elements more neatly &mdash; like small bundles of uncooked spaghetti with precisely placed meatballs. Some fullerene meatballs are designed to sit inside the spaghetti bundles, but others are forced to stay on the outside.&nbsp; The fullerenes inside the structure take electrons from the polymers and toss them to the outside fullerene, which can effectively keep the electrons away from the polymer for weeks.<\/p>\n<p>&ldquo;When the charges never come back together, the system works far better,&rdquo; said Benjamin Schwartz, a UCLA professor of chemistry and another senior co-author. &ldquo;This is the first time this has been shown using modern synthetic organic photovoltaic materials.&rdquo;<\/p>\n<p>In the new system, the materials self-assemble just by being placed in close proximity.<\/p>\n<p>&ldquo;We worked really hard to design something so we don&rsquo;t have to work very hard,&rdquo; Tolbert said.<\/p>\n<p>The new design is also more environmentally friendly than current technology, because the materials can assemble in water instead of more toxic organic solutions that are widely used today.<\/p>\n<p>&ldquo;Once you make the materials, you can dump them into water and they assemble into the appropriate structure because of the way the materials are designed,&rdquo; Schwartz said. &ldquo;So there&rsquo;s no additional work.&rdquo;<\/p>\n<p>The researchers are already working on how to incorporate the technology into actual solar cells.<\/p>\n<p>Yves Rubin, a UCLA professor of chemistry and another senior co-author of the study, led the team that created the uniquely designed molecules. &ldquo;We don&rsquo;t have these materials in a real device yet; this is all in solution,&rdquo; he said. &ldquo;When we can put them together and make a closed circuit, then we will really be somewhere.&rdquo;<\/p>\n<p>For now, though, the UCLA research has proven that inexpensive photovoltaic materials can be organized in a way that greatly improves their ability to retain energy from sunlight.<\/p>\n<p>Tolbert and Schwartz also are members of UCLA&rsquo;s California NanoSystems Institute. The study&rsquo;s other co-lead authors were UCLA graduate students Rachel Huber and Amy Ferreira. UCLA&rsquo;s Electron Imaging Center for NanoMachines imaged the assembled structure in a lab led by Hong Zhou.<\/p>\n<p>The&nbsp;<a href=\"http:\/\/www.sciencemag.org\/content\/348\/6241\/1340.abstract?sid=f1afaac3-6bd8-44c6-ad7c-cecfa8772d2c\">findings are published<\/a>&nbsp;June 19 in the journal Science.<\/p>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"http:\/\/www.ucla.edu\/\" target=\"_blank\" rel=\"noopener noreferrer\">UCLA 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%2Fucla-chemists-devise-technology-that-could-transform-solar-energy-storage%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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