{"id":36481,"date":"2016-06-04T00:09:00","date_gmt":"2016-06-03T22:09:00","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/decentralized-production-of-hydrogen-peroxide-using-surplus-renewable-power.html"},"modified":"2016-06-04T00:09:00","modified_gmt":"2016-06-03T22:09:00","slug":"decentralized-production-of-hydrogen-peroxide-using-surplus-renewable-power","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/decentralized-production-of-hydrogen-peroxide-using-surplus-renewable-power\/","title":{"rendered":"Decentralized production of hydrogen peroxide \u2013 using surplus renewable power"},"content":{"rendered":"<p>Fraunhofer IGB has developed an electrolytic cell in which hydrogen peroxide can be produced on site with electric energy from just water and air &ndash; along with oxidative wastewater treatment.<\/p>\n<p> <!--more--> <\/p>\n<p>In order to balance out spikes in power grids resulting from  non-uniform regenerative energy conversion from wind or sun, surplus  power can be used for the decentralized production of chemicals. The IGB researchers  are presenting a prototype electrolytic cell at the IFAT trade fair in  Munich from May 30 to June 3, 2016.<strong><br \/><\/strong><\/p>\n<div class=\" fhg-grid-item fhg-grid-2-2-1\">\n<div class=\"fhg-content fhg-richtext\">\n<p>Wood-colored pulp from which white paper is to be produced,  objectionable tooth discolorations or disinfecting work areas in  hospitals and food production facilities: Due to its highly oxidizing  and cell toxic effects hydrogen peroxide is widely used as a bleaching  agent and disinfectant in many technical areas, the production of  cosmetics and medical applications. Hydrogen peroxide has also become  firmly established in oxidative water treatment. Here, under the  influence of ultraviolet light, hydrogen peroxide forms hydroxyl  radicals: these destroy organic molecules that are not easily  biodegradable.<\/p>\n<p>For the most part hydrogen peroxide is produced on a large scale in  centralized chemical plants, generally from oxygen and hydrogen and with  a catalyst made of expensive platinum. As hydrogen peroxide can  decompose spontaneously in highly concentrated solutions and explode, it  can only be transported as a hazardous substance subject to strict  safety precautions. This substantially increases the transport costs.<\/p>\n<p>The Fraunhofer Institute for Interfacial Engineering and  Biotechnology IGB has developed and implemented a new technical concept  where hydrogen peroxide is generated locally and on the basis of demand  in an electrochemical cell, that means with electricity alone &ndash; just  from air and water. As a result of the turnaround in energy policy,  there are non-uniform spikes in current supply from the regenerative  production of energy. Thus the electrolytic production of chemicals is  both becoming cost-effective and represents &ndash; in addition to the storage  of energy &ndash; a practical utilization pathway for balancing out spikes in  current supply to the grid.<\/p>\n<h4>Flexible synthesis in an electrolytic cell<\/h4>\n<p>The centerpiece of the development is a flat electrolytic cell. When  an electric current flows, water is oxidized at the anode: protons are  created and the pH value decreases. At the same time, atmospheric oxygen  is reduced at the cathode, a gas diffusion electrode, which is also  used for example in fuel cells. As a result, the protons are consumed  and hydrogen peroxide is generated.<\/p>\n<p>In a first demonstrator with 100 square centimeters of electrode area  the researchers achieved concentrations of more than 400 milligrams  hydrogen peroxide per liter when pure oxygen was supplied; when  operating with ambient air as the source of oxygen, concentrations of 50  milligrams hydrogen peroxide per liter were obtained &ndash; with an energy  requirement of 10 kWh\/kg H<sub>2<\/sub>O<sub>2<\/sub>. Dr. Thomas Scherer,  Group Manager at Fraunhofer IGB summarizes: &ldquo;In the meantime we have  further optimized the system. We were able to increase the yield from 50  milligrams to 1200 milligrams hydrogen peroxide per liter when  operating with air and thus achieved the same turnover as when operating  with pure oxygen.&rdquo;<\/p>\n<p>&ldquo;Our system works without the use of chemicals. Additionally, our  production of hydrogen peroxide is extremely flexible. When no surplus  power is available, I simply switch off the electrolytic cell,&rdquo; says  Scherer. &ldquo;Hydrogen peroxide that is not required immediately can be  stored in a buffer tank and used as required.&rdquo;<\/p>\n<h4>Modular and scalable prototype<\/h4>\n<p>The new electrolytic cell is operated as a flow-through cell. For  transference to an industrially relevant scale, further cells can be  connected in parallel or in series. Scherer explains the possibilities  for scaling: &ldquo;Individual electrolytic cells can also be stacked, for  example as in fuel cell stacks. Such installations can then be designed  on the basis of technical requirements and adjusted to the demand for  hydrogen peroxide.&rdquo;<\/p>\n<p>For other application-specific developments and optimizations the  process parameters can be modified and subcomponents in the  demonstrator, such as the gas diffusion electrode, can easily be  exchanged. By altering the temperature, current density, the volume flow  and the composition of the solution, for example the pH value and the  concentration of the solution can be adapted individually.<\/p>\n<h4>Proven operation in water purification<\/h4>\n<p>The decentralized electrolytic generation of hydrogen peroxide has  already been successfully demonstrated in the field of water treatment.  In a research project funded by the European Union, oxidative treatment  with locally generated hydrogen peroxide was combined, in one treatment  step, with adsorptive removal of contaminants from landfill leachate.<\/p>\n<p>Next, the researchers plan to develop industrial applications where  only small consumption volumes are required, for example the  hygienization of plants and machines in the food industry or  disinfection of surfaces in hospitals. For this purpose the researchers  are still looking for interested partners to market the applications.<\/p>\n<p>From May 30 to June 3, 2016 the researchers are presenting the cell  at IFAT in Munich, at the Fraunhofer joint stand in Hall A5, Booth  217\/316.<\/p>\n<\/p><\/div>\n<\/p><\/div>\n<ul>\n<li><a class=\"external\" href=\"http:\/\/www1.igb.fraunhofer.de\/englisch\/annual-reports\/2015-16-annual-report\/#\/102\" target=\"_blank\" title=\"more Information (Annual Report 2015\/16)\" rel=\"noopener noreferrer\">more Information (Annual Report 2015\/16)<\/a><\/li>\n<\/ul>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"http:\/\/www.igb.fraunhofer.de\/en\/press-media\/press-releases\/2016\/Decentralized-production-of-hydrogen-peroxide.html\" target=\"_blank\" rel=\"noopener noreferrer\">Fraunhofer IGB 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 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