探花直播 of Cambridge - Yingjun Liu /taxonomy/people/yingjun-liu en Next-generation smartphone battery inspired by the gut /research/news/next-generation-smartphone-battery-inspired-by-the-gut <div class="field field-name-field-news-image field-type-image field-label-hidden"><div class="field-items"><div class="field-item even"><img class="cam-scale-with-grid" src="/sites/default/files/styles/content-580x288/public/news/research/news/crop_16.jpg?itok=usaL7R5M" alt="Computer visualisation of villi-like battery material" title="Computer visualisation of villi-like battery material, Credit: Teng Zhao" /></div></div></div><div class="field field-name-body field-type-text-with-summary field-label-hidden"><div class="field-items"><div class="field-item even"><p>Researchers have developed a prototype of a next-generation lithium-sulphur battery which takes its inspiration in part from the cells lining the human intestine. 探花直播batteries, if commercially developed, would have five times the energy density of the lithium-ion batteries used in smartphones and other electronics.</p>&#13; &#13; <p> 探花直播new design, by researchers from the 探花直播 of Cambridge, overcomes one of the key technical problems hindering the commercial development of lithium-sulphur batteries, by preventing the degradation of the battery caused by the loss of material within it. 探花直播<a href="https://onlinelibrary.wiley.com/doi/10.1002/adfm.201604069/full">results</a> are reported in the journal <em>Advanced Functional Materials</em>.</p>&#13; &#13; <p>Working with collaborators at the Beijing Institute of Technology, the Cambridge researchers based in Dr Vasant Kumar鈥檚 team in the Department of Materials Science and Metallurgy developed and tested a lightweight nanostructured material which resembles villi, the finger-like protrusions which line the small intestine. In the human body, villi are used to absorb the products of digestion and increase the surface area over which this process can take place.</p>&#13; &#13; <p>In the new lithium-sulphur battery, a layer of material with a villi-like structure, made from tiny zinc oxide wires, is placed on the surface of one of the battery鈥檚 electrodes. This can trap fragments of the active material when they break off, keeping them electrochemically accessible and allowing the material to be reused.</p>&#13; &#13; <p>鈥淚t鈥檚 a tiny thing, this layer, but it鈥檚 important,鈥 said study co-author Dr Paul Coxon from Cambridge鈥檚 Department of Materials Science and Metallurgy. 鈥淭his gets us a long way through the bottleneck which is preventing the development of better batteries.鈥</p>&#13; &#13; <p>A typical lithium-ion battery is made of three separate components: an anode (negative electrode), a cathode (positive electrode) and an electrolyte in the middle. 探花直播most common materials for the anode and cathode are graphite and lithium cobalt oxide respectively, which both have layered structures. Positively-charged lithium ions move back and forth from the cathode, through the electrolyte and into the anode.</p>&#13; &#13; <p> 探花直播crystal structure of the electrode materials determines how much energy can be squeezed into the battery. For example, due to the atomic structure of carbon, each carbon atom can take on six lithium ions, limiting the maximum capacity of the battery.</p>&#13; &#13; <p>Sulphur and lithium react differently, via a multi-electron transfer mechanism meaning that elemental sulphur can offer a much higher theoretical capacity, resulting in a lithium-sulphur battery with much higher energy density. However, when the battery discharges, the lithium and sulphur interact and the ring-like sulphur molecules transform into chain-like structures, known as a poly-sulphides. As the battery undergoes several charge-discharge cycles, bits of the poly-sulphide can go into the electrolyte, so that over time the battery gradually loses active material.</p>&#13; &#13; <p> 探花直播Cambridge researchers have created a functional layer which lies on top of the cathode and fixes the active material to a conductive framework so the active material can be reused. 探花直播layer is made up of tiny, one-dimensional zinc oxide nanowires grown on a scaffold. 探花直播concept was trialled using commercially-available nickel foam for support. After successful results, the foam was replaced by a lightweight carbon fibre mat to reduce the battery鈥檚 overall weight.</p>&#13; &#13; <p>鈥淐hanging from stiff nickel foam to flexible carbon fibre mat makes the layer mimic the way small intestine works even further,鈥 said study co-author Dr Yingjun Liu.</p>&#13; &#13; <p>This functional layer, like the intestinal villi it resembles, has a very high surface area. 探花直播material has a very strong chemical bond with the poly-sulphides, allowing the active material to be used for longer, greatly increasing the lifespan of the battery.</p>&#13; &#13; <p>鈥淭his is the first time a chemically functional layer with a well-organised nano-architecture has been proposed to trap and reuse the dissolved active materials during battery charging and discharging,鈥 said the study鈥檚 lead author Teng Zhao, a PhD student from the Department of Materials Science &amp; Metallurgy. 鈥淏y taking our inspiration from the natural world, we were able to come up with a solution that we hope will accelerate the development of next-generation batteries.鈥</p>&#13; &#13; <p>For the time being, the device is a proof of principle, so commercially-available lithium-sulphur batteries are still some years away. Additionally, while the number of times the battery can be charged and discharged has been improved, it is still not able to go through as many charge cycles as a lithium-ion battery. However, since a lithium-sulphur battery does not need to be charged as often as a lithium-ion battery, it may be the case that the increase in energy density cancels out the lower total number of charge-discharge cycles.</p>&#13; &#13; <p>鈥淭his is a way of getting around one of those awkward little problems that affects all of us,鈥 said Coxon. 鈥淲e鈥檙e all tied in to our electronic devices 鈥 ultimately, we鈥檙e just trying to make those devices work better, hopefully making our lives a little bit nicer.鈥</p>&#13; &#13; <p><strong><em>Reference:</em></strong><br /><em>Teng Zhao et al. 鈥<a href="https://onlinelibrary.wiley.com/doi/10.1002/adfm.201604069/full">Advanced Lithium-Sulfur Batteries Enabled by a Bio-Inspired Polysulfide Adsorptive Brush</a>.鈥 Advanced Functional Materials (2016). DOI: 10.1002/adfm.201604069</em></p>&#13; </div></div></div><div class="field field-name-field-content-summary field-type-text-with-summary field-label-hidden"><div class="field-items"><div class="field-item even"><p><p>A new prototype of a lithium-sulphur battery 鈥 which could have five times the energy density of a typical lithium-ion battery 鈥 overcomes one of the key hurdles preventing their commercial development by mimicking the structure of the cells which allow us to absorb nutrients.聽</p>&#13; </p></div></div></div><div class="field field-name-field-content-quote field-type-text-long field-label-hidden"><div class="field-items"><div class="field-item even">This gets us a long way through the bottleneck which is preventing the development of better batteries.</div></div></div><div class="field field-name-field-content-quote-name field-type-text field-label-hidden"><div class="field-items"><div class="field-item even">Paul Coxon</div></div></div><div class="field field-name-field-image-credit field-type-link-field field-label-hidden"><div class="field-items"><div class="field-item even"><a href="/" target="_blank">Teng Zhao</a></div></div></div><div class="field field-name-field-image-desctiprion field-type-text field-label-hidden"><div class="field-items"><div class="field-item even">Computer visualisation of villi-like battery material</div></div></div><div class="field field-name-field-cc-attribute-text field-type-text-long field-label-hidden"><div class="field-items"><div class="field-item even"><p><a href="http://creativecommons.org/licenses/by/4.0/" rel="license"><img alt="Creative Commons License" src="https://i.creativecommons.org/l/by/4.0/88x31.png" style="border-width:0" /></a><br />&#13; 探花直播text in this work is licensed under a <a href="http://creativecommons.org/licenses/by/4.0/" rel="license">Creative Commons Attribution 4.0 International License</a>. For image use please see separate credits above.</p>&#13; </div></div></div><div class="field field-name-field-show-cc-text field-type-list-boolean field-label-hidden"><div class="field-items"><div class="field-item even">Yes</div></div></div> Wed, 26 Oct 2016 13:41:29 +0000 sc604 180502 at