{"id":14561,"date":"2018-10-19T01:06:00","date_gmt":"2018-10-18T23:06:00","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/a-stabilizing-influence-enables-lithium-sulfur-battery-evolution.html"},"modified":"2018-10-19T01:06:00","modified_gmt":"2018-10-18T23:06:00","slug":"a-stabilizing-influence-enables-lithium-sulfur-battery-evolution","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/a-stabilizing-influence-enables-lithium-sulfur-battery-evolution\/","title":{"rendered":"A Stabilizing Influence Enables Lithium-Sulfur Battery Evolution"},"content":{"rendered":"<p>In late July of 2008 a British solar plane set an unofficial flight-endurance record by remaining aloft for more than three days straight. Lithium-sulfur batteries emerged as one of the great technological advances that enabled the flight &mdash;powering the plane overnight with efficiency unmatched by the top batteries of the day.<\/p>\n<p> <!--more--> <\/p>\n<p><span>Ten years later, the world is still awaiting the  commercial arrival of &ldquo;Li-S&rdquo; batteries. But a breakthrough by  researchers at Drexel University has just removed a significant barrier  that has been blocking their viability. <\/span>     <\/p>\n<p>Technology companies have known for some time that the evolution of  their products, whether they&rsquo;re laptops, cell phones or electric cars,  depends on the steady improvement of batteries. Technology is only  &ldquo;mobile&rdquo; for as long as the battery allows it to be, and lithium-ion  batteries &mdash; considered the best on the market &mdash; are reaching their limit  for improvement.<\/p>\n<p>With battery performance approaching a plateau, companies are trying  to squeeze every last volt into, and out of, the storage devices by  reducing the size of some of the internal components that do not  contribute to energy storage. Some unfortunate side-effects of these  structural changes are the <a href=\"https:\/\/newsblog.drexel.edu\/2016\/09\/13\/qa-samsungs-galaxy-note-7-recall-and-the-problem-with-our-ever-shrinking-batteries\/\">malfunctions and meltdowns that occurred in a number of Samsung tablets in 2016<\/a>.&nbsp;<\/p>\n<p>Researchers and the technology industry are looking at Li-S batteries  to eventually replace Li-ion because this new chemistry theoretically  allows more energy to be packed into a single battery &mdash; a measure called  &ldquo;energy density&rdquo; in battery research and development. This improved  capacity, on the order of 5-10 times that of Li-ion batteries, equates  to a longer run time for batteries between charges.<\/p>\n<p>The problem is, Li-S batteries haven&rsquo;t been able to maintain their  superior capacity after the first few recharges. It turns out that the  sulfur, which is the key ingredient for improved energy density,  migrates away from the electrode in the form of intermediate products  called polysulfides, leading to loss of this key ingredient and  performance fade during recharges.<\/p>\n<p>For years scientists have been trying to stabilize the reaction  inside Li-S battery to physically contain these polysulfides, but most  attempts have created other complications, such as adding weight or  expensive materials to the battery or adding several complicated  processing steps.<\/p>\n<p>But a new approach, reported by researchers in Drexel&rsquo;s College of  Engineering in a recent edition of the American Chemical Society journal  <em><a href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acsami.8b11029\">Applied Materials and Interfaces<\/a><\/em>,  shows that it can hold polysulfides in place, maintaining the battery&rsquo;s  impressive stamina, while reducing the overall weight and the time  required to produce them.<\/p>\n<p>&ldquo;We have created freestanding porous titanium monoxide nanofiber mat  as a cathode host material in lithium-sulfur batteries,&rdquo; said <strong><a href=\"https:\/\/drexel.edu\/engineering\/about\/faculty-staff\/K\/kalra-vibha\/\">Vibha Kalra, PhD<\/a><\/strong><a href=\"https:\/\/drexel.edu\/engineering\/about\/faculty-staff\/K\/kalra-vibha\/\">,<\/a> an associate professor in the <a href=\"https:\/\/drexel.edu\/engineering\/\">College of Engineering<\/a>  who led the research. &ldquo;This is a significant development because we  have found that our titanium monoxide-sulfur cathode is both highly  conductive and able to bind polysulfides via strong chemical  interactions, which means it can augment the battery&rsquo;s specific capacity  while preserving its impressive performance through hundreds of cycles.  We can also demonstrate the complete elimination of binders and current  collector on the cathode side that account for 30-50 percent of the  electrode weight &mdash; and our method takes just seconds to create the  sulfur cathode, when the current standard can take nearly half a day.&rdquo;<\/p>\n<p>Their findings suggest that the nanofiber mat, which at the  microscopic level resembles a bird&rsquo;s nest, is an excellent platform for  the sulfur cathode because it attracts and traps the polysulfides that  arise when the battery is being used. Keeping the polysulfides in the  cathode structure prevents &ldquo;shuttling,&rdquo; a performance-sapping phenomenon  that occurs when they dissolve in the electrolyte solution that  separates cathode from anode in a battery. This cathode design can not  only help Li-S battery maintain its energy density, but also do it  without additional materials that increase weight and cost of  production, according to Kalra.<\/p>\n<p>To achieve these dual goals, the group has <a href=\"https:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acs.jpcc.8b02506\">closely studied the reaction mechanisms and formation of polysulfides<\/a> to better understand how an electrode host material could help contain them.<\/p>\n<p>&ldquo;This research shows that the presence of a strong Lewis acid-base  interaction between the titanium monoxide and sulfur in the cathode  prevents polysulfides from making their way into the electrolyte, which  is the primary cause of the battery&rsquo;s diminished performance,&rdquo; said <strong>Arvinder Singh, PhD<\/strong>, a postdoctoral researcher in Kalra&rsquo;s lab who was an author of the paper.<\/p>\n<p>This means their cathode design can help a Li-S battery maintain its  energy density &mdash; and do it without additional materials that increase  weight and cost of production, according to Kalra.<\/p>\n<p>Kalra&rsquo;s previous work with <a href=\"https:\/\/drexel.edu\/now\/archive\/2017\/September\/carbon-nanofiber-supercap\/\">nanofiber electrodes has shown that they provide a variety of advantages<\/a>  over current battery components. They have a greater surface area than  current electrodes, which means they can accommodate expansion during  charging, which can boost the storage capacity of the battery. By  filling them with an electrolyte gel, they can eliminate flammable  components from devices minimizing their susceptibility to leaks, fires  and explosions. They are created through an electrospinning process,  that looks something like making cotton candy, this means they have an  advantage over the standard powder-based electrodes which require the  use of insulating and performance deteriorating &ldquo;binder&rdquo; chemicals in  their production.<\/p>\n<p>In tandem with its work to produce binder-free, freestanding cathode platforms to improve the performance of batteries,<\/p>\n<p><span>Kalra&rsquo;s lab developed <\/span><a href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S246860691730326X\"><span>a rapid sulfur deposition technique that takes just five seconds to get the sulfur into its substrate<\/span><\/a><span>.  The procedure melts sulfur into the nanofiber mats in a slightly  pressurized, 140-degree Celsius environment &mdash; eliminating the need for  time-consuming processing that uses a mix of toxic chemicals, while  improving the cathode&rsquo;s ability to hold a charge after long periods of  use.<\/span><\/p>\n<p>&ldquo;Our Li-S electrodes provide the right architecture and chemistry to  minimize capacity fade during battery cycling, a key impediment in  commercialization of Li-S batteries,&rdquo; Kalra said. &ldquo;Our research shows  that these electrodes exhibit a sustained effective capacity that is  four-times higher than the current Li-ion batteries. And our novel,  low-cost method for sulfurizing the cathode in just seconds removes a  significant impediment for manufacturing.&rdquo;<\/p>\n<p>Since Zephyr-6&rsquo;s record-setting flight in 2008, many companies have  invested in the development of Li-S batteries in hopes of increasing the  range of electric cars, making mobile devices last longer between  charges, and even helping the energy grid accommodate wind and solar  power sources. Kalra&rsquo;s work now provides a path for this battery  technology to move past a number of impediments that have slowed its  progress.<\/p>\n<p>The group will continue to develop its Li-S cathodes with the goals  of further improving cycle life, reducing the formation of polysulfides  and decreasing cost.<\/p>\n<ul>\n<li><em>This research was supported by Drexel Ventures Innovation Fund and National Science Foundation (<\/em><em>CBET-1150528)<\/em><em>. Read the full study here:&nbsp;<a href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acsami.8b11029\">https:\/\/pubs.acs.org\/doi\/10.1021\/acsami.8b11029&nbsp;<\/a><\/em><\/li>\n<\/ul>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"http:\/\/drexel.edu\" target=\"_blank\" rel=\"noopener noreferrer\">Drexel University 2018<\/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%2Fa-stabilizing-influence-enables-lithium-sulfur-battery-evolution%2F\" title=\"Bei Facebook teilen\" aria-label=\"Bei Facebook teilen\" role=\"button\" rel=\"nofollow\" class=\"shariff-link\" style=\";border-radius:1%; background-color:#3b5998; 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