{"id":49211,"date":"2014-11-10T16:08:39","date_gmt":"2014-11-10T15:08:39","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/stanford-chemical-engineers-borrow-technique-from-petrochemical-industry-to-store-solar-energy.html"},"modified":"2014-11-10T16:08:39","modified_gmt":"2014-11-10T15:08:39","slug":"stanford-chemical-engineers-borrow-technique-from-petrochemical-industry-to-store-solar-energy","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/stanford-chemical-engineers-borrow-technique-from-petrochemical-industry-to-store-solar-energy\/","title":{"rendered":"Stanford chemical engineers borrow technique from petrochemical industry to store solar energy"},"content":{"rendered":"<p>Many high school students have zapped water with electricity to make   hydrogen and oxygen. To turn that chemical process into a type of   battery, researchers adapt ideas from oil refineries.<\/p>\n<p> <!--more--> <\/p>\n<p>Chemical engineers at Stanford have designed a catalyst that could  help produce vast quantities of pure hydrogen through electrolysis &ndash; the  process of passing electricity through water to break hydrogen loose  from oxygen in H<sub>2<\/sub>O.<\/p>\n<p>Today, pure hydrogen, or H<sub>2<\/sub>, is a major commodity chemical  that is generally derived from natural gas. Tens of millions of tons of  hydrogen are produced each year; industrial hydrogen is important in  petroleum refining and fertilizer production.<\/p>\n<p>Chemical engineering Professor <a href=\"https:\/\/profiles.stanford.edu\/thomas-jaramillo\">Thomas Jaramillo<\/a> and research associate Jakob Kibsgaard want to use electrolysis to do things such as producing H<sub>2<\/sub>  from water and using the process to store solar energy. But to  industrialize water-splitting they must find a more cost-effective  process.<\/p>\n<p>Electrolysis in classroom experiments is simple: lower two metal  electrodes into water; when electricity is passed through these  electrodes they act as catalysts to break water molecules into bubbles  of hydrogen and oxygen gas.<\/p>\n<p>Platinum is the best catalyst for producing hydrogen through water  electrolysis. But to make electrolysis an industrial process a cheaper  electrode must be found. &#8220;We&#8217;re trying to make H<sub>2<\/sub> in the most efficient way possible without using precious metals,&#8221; Jaramillo said.<\/p>\n<p>In the German scientific journal <em>Angewandte Chemie<\/em>, Jaramillo and Kibsgaard <a href=\"http:\/\/onlinelibrary.wiley.com\/doi\/10.1002\/anie.201408222\/abstract\">describe<\/a> a cheap, durable and efficient catalyst that could take the place of platinum.<\/p>\n<p>Their ambitions go beyond using electrolysis merely to replace the current market demand for hydrogen.<\/p>\n<p>Right now there is no cost-effective, large-scale way to store solar  energy. The Stanford researchers believe that electrolysis could turn  tanks of water into batteries for storing solar energy. During the day,  electricity from solar cells could be used to break apart water into  hydrogen and oxygen. Recombining these gases would generate electricity  for use at night.<\/p>\n<p>Electrolysis uses electricity to crack the chemical bonds that hold H<sub>2<\/sub>O together.<\/p>\n<p>Cracking the chemical bonds of water produces a hydrogen ion &ndash; a proton with no electron to balance it out. A good H<sub>2<\/sub>  catalyst gives the proton a place to stick until it can pick up an  electron to form a hydrogen atom on the catalyst surface and then pair  up with a neighboring hydrogen atom to bubble off as H<sub>2<\/sub>.<\/p>\n<p>The trick is finding a catalyst with the right stickiness.<\/p>\n<p>&#8220;If the binding is too weak, the ions don&#8217;t stick,&#8221; Jaramillo said. &#8220;If it&#8217;s too strong, they never get released.&#8221;<\/p>\n<p>Platinum is perfect but pricey. Last year the Stanford engineers <a href=\"https:\/\/engineering.stanford.edu\/research-profile\/engineers-teach-old-chemical-new-tricks-make-cleaner-fuels-fertilizers-1\">discovered that a version of molybdenum sulfide<\/a>,  a catalyst widely used in petrochemical processing, had some of the  right properties to serve as a cheap but efficient alternative to  platinum.<\/p>\n<p>Jaramillo explained that petrochemical processing has similarities to  electrolysis. That&#8217;s because petroleum feed stocks, such as tar sands,  contain a significant fraction of heavy molecules. Petroleum refineries  use catalytic reactions that involve hydrogen to crack these heavy  molecules into lighter molecules like gasoline.<\/p>\n<p>Similarly, electrolysis involves cracking water molecules, or  breaking apart their chemical bonds. As the Stanford engineers sought to  improve on their own discovery they found an even better way to produce  hydrogen from water by taking yet another page from the petrochemical  playbook.<\/p>\n<p>Petroleum processing often involves scrubbing sulfur out of fuels to  reduce acid rain. During this scrubbing process, some of the sulfur  atoms get incorporated into petroleum processing catalysts, increasing  the activity of these catalysts.<\/p>\n<p>This gave the Stanford engineers an idea: If they laced an already  good catalyst with sulfur atoms, would it become an even better  electrode for producing pure hydrogen?<\/p>\n<p>They chose to add sulfur atoms to a catalyst called molybdenum  phosphide, which is known to speed up hydrogen production though  electrolysis.<\/p>\n<p>Adding the sulfur atoms created a new catalyst &ndash; molybdenum  phosphosulfide&ndash; that was more effective at producing hydrogen than its  predecessor.<\/p>\n<p>The new sulfur-laced catalyst was more durable, which is vital in an  industrial process where the electrode must function day in, day out,  without degrading, just like the noble metal platinum.<\/p>\n<p>The molybdenum phosphosulfide catalysts developed by Kibsgaard and  Jaramillo are a major advance. As electrodes they are remarkably stable  with an efficiency approaching that of platinum.<\/p>\n<p>Now, members of Jaramillo&rsquo;s group are working to improve this new  catalyst. For instance they are engineering the material at nano-scale  dimensions to catalyze the reaction more effectively. Other research  initiatives include incorporating this catalyst into bench-top  prototypes of future energy storage systems. The idea would be to use  water electrolysis to store solar energy by day in the form of H2 and  then, at night, to recombine hydrogen and oxygen into water, generating  electricity in the process.<\/p>\n<p>Jaramillo noted that the findings in this and the prior scientific  paper pursue environmentally friendly energy strategies, but they are  based on ideas borrowed from petrochemical plants.<\/p>\n<p>&ldquo;It&#8217;s exciting to make these connections between really different  areas of technology,&rdquo; he said, &ldquo;and aim to operate at the meta-level of  science.&rdquo;<\/p>\n<div class=\"article-images\"><img loading=\"lazy\" decoding=\"async\" width=\"600\" height=\"280\" src=\"https:\/\/www.sonnenseite.com\/wp-content\/uploads\/2014\/11\/stanford-catalyst.jpg\" class=\"alignleft\" alt=\"stanford.edu | Graphic shows how electrolysis could produce hydrogen as a way to store renewable energy. During the day, solar panels supply surplus electricity for electrolysis, producing hydrogen. At night, hydrogen would be combined with oxygen from the air to generate electricity.\" srcset=\"https:\/\/www.sonnenseite.com\/wp-content\/uploads\/2014\/11\/stanford-catalyst.jpg 600w, https:\/\/www.sonnenseite.com\/wp-content\/uploads\/2014\/11\/stanford-catalyst-300x140.jpg 300w\" sizes=\"auto, (max-width: 600px) 100vw, 600px\" \/><\/div>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"http:\/\/www.stanford.edu\" target=\"_blank\" rel=\"noopener noreferrer\">Stanford | Chris Cesare 2014<\/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%2Fstanford-chemical-engineers-borrow-technique-from-petrochemical-industry-to-store-solar-energy%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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