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<?xml-stylesheet type="text/xsl" href="https://community.element14.com/cfs-file/__key/system/syndication/rss.xsl" media="screen"?><rss version="2.0" xmlns:dc="http://purl.org/dc/elements/1.1/"><channel><title>Stanford's New Electrojelly Feels Like Living Tissue, But Acts Like a Semiconductor</title><link>https://community.element14.com/technologies/power-management/w/documents/10048/stanford-s-new-electrojelly-feels-like-living-tissue-but-acts-like-a-semiconductor</link><description /><dc:language>en-US</dc:language><generator>Telligent Community 12</generator><item><title>Stanford's New Electrojelly Feels Like Living Tissue, But Acts Like a Semiconductor</title><link>https://community.element14.com/technologies/power-management/w/documents/10048/stanford-s-new-electrojelly-feels-like-living-tissue-but-acts-like-a-semiconductor</link><pubDate>Fri, 08 Oct 2021 04:56:13 GMT</pubDate><guid isPermaLink="false">93d5dcb4-84c2-446f-b2cb-99731719e767:f9cb3f73-caad-4ef4-b5b1-405d8523196a</guid><dc:creator>squadMCU</dc:creator><comments>https://community.element14.com/technologies/power-management/w/documents/10048/stanford-s-new-electrojelly-feels-like-living-tissue-but-acts-like-a-semiconductor#comments</comments><description>Current Revision posted to Documents by squadMCU on 10/8/2021 4:56:13 AM&lt;br /&gt;
&lt;div class="content"&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;br /&gt;&lt;div class="associations image-center"&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;a href="http://www.popsci.com/files/imagecache/article_image_large/articles/Hydrogel.png" rel="noopener noreferrer nofollow" target="_blank" data-e14adj="t"&gt;&lt;img alt="image" class="imagecache imagecache-article_image_large" src="http://www.popsci.com/files/imagecache/article_image_large/articles/Hydrogel.png"  /&gt;&lt;/a&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;div class="summary"&gt;&lt;span class="img-title"&gt;Hydrogel&lt;/span&gt;&lt;span class="img-summary"&gt; Hydrogels that can carry a charge could be used for future medical implants, soft batteries or other conductive materials.&lt;/span&gt;&amp;nbsp; &amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/div&gt;&lt;div class="summary"&gt; &lt;/div&gt;&lt;div class="summary"&gt;&amp;nbsp; &lt;/div&gt;&lt;/div&gt;&lt;p style="margin:0;"&gt;Future electronic skin and bio-batteries could be etched onto surfaces with inkjet printers, conducting electricity while looking for all the world like spongy biological tissue. A new &lt;a class="jive-link-external-small" href="http://news.stanford.edu/pr/2012/pr-printable-electrical-hydrogel-062712.html" rel="noopener noreferrer nofollow" target="_blank" data-e14adj="t"&gt;electrically conductive hydrogel&lt;/a&gt;, developed at Stanford University, can be printed or sprayed as a liquid and turned into a gel once it’s in place.&lt;/p&gt;&lt;p style="margin:0;padding:0px;"&gt;&amp;nbsp;&lt;/p&gt;&lt;p style="margin:0;"&gt;Hydrogels are semi-solid &lt;a class="jive-link-external-small" href="http://www.popsci.com/science/article/2012-03/smart-self-healing-hydrogels-repair-themselves-after-sustaining-damage" rel="noopener noreferrer nofollow" target="_blank" data-e14adj="t"&gt;gummy-bear-like materials&lt;/a&gt;, made up of chains of water-avoiding polymer molecules. Their hydrophilic properties make them good analogues for biological tissue, because like living tissue, they are soft, flexible and semi-porous. This new hydrogel is made of organic compounds, including one found in plant tissues, which cross-link into complex networks. &lt;/p&gt;&lt;p style="margin:0;padding:0px;"&gt;&amp;nbsp;&lt;/p&gt;&lt;p style="margin:0;"&gt;Other conductive hydrogels are made by connecting conductive materials inside a non-conductive, insulating matrix, which reduces the overall material’s ability to carry a current. To improve matters, this new hydrogel has a special ingredient, phytic acid, which is found in plant tissue. Along with inducing the complex crosslinked networks, this acid compound has electrical properties — when it links the polymer chains together, it also gives them a charge. The resulting hydrogel is therefore highly conductive, according to Stanford chemical engineering professor Zhenan Bao, materials science and engineering professor Yi Cui and their graduate students. &lt;/p&gt;&lt;p style="margin:0;padding:0px;"&gt;&amp;nbsp;&lt;/p&gt;&lt;p style="margin:0;"&gt;The hydrogel has tiny pores, which can expand the surface covered by the gel. This increases the amount of charge it can hold, according to &lt;a class="jive-link-external-small" href="http://news.stanford.edu/pr/2012/pr-printable-electrical-hydrogel-062712.html" rel="noopener noreferrer nofollow" target="_blank" data-e14adj="t"&gt;Stanford News&lt;/a&gt;. Like Jell-O, it doesn’t set immediately after it’s made, so it would be simple to print hydrogel structures with 3-D printing techniques. These capabilities would make it a strong contender for biological probes, sensors, and even biofuel cells, the researchers say.&lt;/p&gt;&lt;p style="margin:0;padding:0px;"&gt;&amp;nbsp;&lt;/p&gt;&lt;p style="margin:0;"&gt;“You can’t print Jell-O,” Cui told Stanford News, “but with this technique, we can print it and make it Jell-O later.”&lt;/p&gt;&lt;p style="margin:0;padding:0px;"&gt;&amp;nbsp;&lt;/p&gt;&lt;p style="margin:0;"&gt;Research on the new hydrogel appeared in a recent issue of the &lt;a class="jive-link-external-small" href="http://www.pnas.org/content/109/24/9287.abstract?sid=424fc6fd-fe4d-4cea-b6ec-cddee6787cd1" rel="noopener noreferrer nofollow" target="_blank" data-e14adj="t"&gt;&lt;em&gt;Proceedings of the National Academy of Sciences&lt;/em&gt;&lt;/a&gt;.&lt;/p&gt;&lt;p style="margin:0;padding:0px;"&gt;&amp;nbsp;&lt;/p&gt;&lt;p style="margin:0;"&gt;[&lt;a class="jive-link-external-small" href="http://news.stanford.edu/pr/2012/pr-printable-electrical-hydrogel-062712.html" rel="noopener noreferrer nofollow" target="_blank" data-e14adj="t"&gt;Stanford News&lt;/a&gt;]&lt;/p&gt;&amp;nbsp; &lt;/div&gt;&lt;div style="clear:both;"&gt;&lt;/div&gt;

&lt;div style="font-size: 90%;"&gt;Tags: jelly, alternative, electricity, conductor, standford&lt;/div&gt;
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