"/>

人人草人人-欧美一区二区三区精品-中文字幕91-日韩精品影视-黄色高清网站-国产这里只有精品-玖玖在线资源-bl无遮挡高h动漫-欧美一区2区-亚洲日本成人-杨幂一区二区国产精品-久久伊人婷婷-日本不卡一-日本成人a-一卡二卡在线视频

U.S. Stanford researchers unveil significant advancement in skin electronics

Source: Xinhua    2018-02-20 04:05:14

SAN FRANCISCO, Feb. 19 (Xinhua) -- Researchers at U.S. Stanford University have reported the first success in developing core elements for skin-like electronics that can adhere seamlessly to human skin or within the body in highly desirable applications such as health monitoring, medical treatment, medical implants and biological studies, an author of the study told Xinhua Monday.

Jie Xu, a co-author of the study, which was published in the international science journal Nature Monday, said the research, led by Professor Zhenan Bao of Chemical Engineering and Material Science and Engineering at Stanford University, has successfully produced intrinsically stretchable transistor array and circuits.

The skin-like electronics, developed through an unprecedented scalable fabrication platform, possesses universal applicability to stretchable polymer materials, high yield and device uniformity, Bao said in an interview with Xinhua.

These intrinsically stretchable electronic elements with high device density provide charge-carrier mobility similar to that of amorphous silicon at 100 percent strain for 1,000 stretching cycles.

The technology platform and electronic elements break the major limitation in the development of skin electronics, and connect the material research and electronic research into an integrated effort towards future applications, Bao said.

She said the breakthrough can also apply for technologies that include human-machine interfaces, soft robotics and augmented reality.

Rendering such electronics soft and stretchable -- like human skin -- would make them more comfortable to wear, and, through increased contact area, would greatly enhance the fidelity of signals acquired from the skin.

The Bao-led research describes a fabrication process that enables high yield and uniformity from a variety of intrinsically stretchable electronic polymers, and demonstrate an intrinsically stretchable polymer transistor array with an unprecedented device density of 347 transistors per square centimeter.

The transistor arrays constitute intrinsically stretchable skin electronics and include an active matrix for sensory arrays, as well as analogue and digital circuit elements.

The fabrication platform that has been worked out for the first time features broad material applicability without sacrificing material performance.

The intrinsically stretchable transistor array and its fabrication platform hold the core position in the interdisciplinary area of intrinsically stretchable electronics, by bridging the material research to the electronics and application development.

The latest research will have broad and long-term impacts on multiple communities, both scientifically and technologically, Xu said.

The scalability and reliability of this fabrication platform will make it easy for this technology to be transformed from research labs to industry production, she added.

Editor: Mu Xuequan
Related News
Xinhuanet

U.S. Stanford researchers unveil significant advancement in skin electronics

Source: Xinhua 2018-02-20 04:05:14

SAN FRANCISCO, Feb. 19 (Xinhua) -- Researchers at U.S. Stanford University have reported the first success in developing core elements for skin-like electronics that can adhere seamlessly to human skin or within the body in highly desirable applications such as health monitoring, medical treatment, medical implants and biological studies, an author of the study told Xinhua Monday.

Jie Xu, a co-author of the study, which was published in the international science journal Nature Monday, said the research, led by Professor Zhenan Bao of Chemical Engineering and Material Science and Engineering at Stanford University, has successfully produced intrinsically stretchable transistor array and circuits.

The skin-like electronics, developed through an unprecedented scalable fabrication platform, possesses universal applicability to stretchable polymer materials, high yield and device uniformity, Bao said in an interview with Xinhua.

These intrinsically stretchable electronic elements with high device density provide charge-carrier mobility similar to that of amorphous silicon at 100 percent strain for 1,000 stretching cycles.

The technology platform and electronic elements break the major limitation in the development of skin electronics, and connect the material research and electronic research into an integrated effort towards future applications, Bao said.

She said the breakthrough can also apply for technologies that include human-machine interfaces, soft robotics and augmented reality.

Rendering such electronics soft and stretchable -- like human skin -- would make them more comfortable to wear, and, through increased contact area, would greatly enhance the fidelity of signals acquired from the skin.

The Bao-led research describes a fabrication process that enables high yield and uniformity from a variety of intrinsically stretchable electronic polymers, and demonstrate an intrinsically stretchable polymer transistor array with an unprecedented device density of 347 transistors per square centimeter.

The transistor arrays constitute intrinsically stretchable skin electronics and include an active matrix for sensory arrays, as well as analogue and digital circuit elements.

The fabrication platform that has been worked out for the first time features broad material applicability without sacrificing material performance.

The intrinsically stretchable transistor array and its fabrication platform hold the core position in the interdisciplinary area of intrinsically stretchable electronics, by bridging the material research to the electronics and application development.

The latest research will have broad and long-term impacts on multiple communities, both scientifically and technologically, Xu said.

The scalability and reliability of this fabrication platform will make it easy for this technology to be transformed from research labs to industry production, she added.

[Editor: huaxia]
010020070750000000000000011105091369859801
主站蜘蛛池模板: 久久免费网 | 男人操女人动态图 | 夜夜爽网站 | 国产精品免费一区二区 | 国产精品久久久久电影 | 久久久久亚洲AV成人网人人小说 | 亚洲天堂第一页 | 国产一级高清 | 永久免费未满蜜桃 | 日韩www视频 | 日日操夜夜 | 波多野结衣之潜藏淫欲 | 精品一区二区三区蜜桃 | 亚洲福利在线播放 | 五月天丁香在线 | 亚洲天堂视频网 | 日韩天堂在线观看 | 九九香蕉视频 | 五月天色小说 | 91精品国产一区二区 | xxxxhdvideos| 日本免费a级片 | 成人无码www在线看免费 | 波多野结衣av在线观看 | 情趣五月天 | 少妇淫片 | 在线网站黄| 日韩城人免费 | 91精品国产麻豆国产自产在线 | 白丝美女喷水 | 日韩精品在线看 | 成人激情开心 | 国产精品伦理一区 | 国产精品久久久久毛片 | 国产精品99999 | 国产免费播放 | 欧美天天视频 | 色噜噜日韩精品欧美一区二区 | 国产一级免费av | 亚洲视频一区 | 成人黄色免费网站 | 久久九九国产精品 | 无码人妻精品一区二区三区99v | 一级欧美黄色片 | 综合久久av | 国产色在线视频 | 美国三级a三级18 | 亚洲一区二区三区在线播放 | 欧洲精品视频在线 | 亚洲黄在线观看 | 喷水少妇 | 同人动漫在线观看 | 在线成人一区 | 国产一区二区三区在线观看 | 欧美激情自拍偷拍 | 欧美视频在线播放 | 可以免费在线观看的av | 在线你懂的视频 | 北条麻妃一区二区三区免费 | 日本一二三区视频在线 | 欧美黄色大片网站 | 俺去日| 国产无遮挡呻吟娇喘视频 | 人妻夜夜爽天天爽三区麻豆av网站 | 麻豆一区二区 | 国产睡熟迷奷系列精品视频 | 四虎影院永久地址 | 成人av资源网 | 日本一区二区三区视频在线 | mm131美女视频 | 91色片| 欧美一二区视频 | 精品一区在线视频 | 亚洲天堂日本 | 久久久久久九九九 | 三级av| 91精品国产电影 | 日日操夜夜 | 日本欧美久久久久免费播放网 | 天天操天天舔天天干 | 欧美又粗又大aaa片 日韩理论片 | 草草视频在线播放 | caoporn国产| 麻豆传媒网址 | 国产美女免费视频 | 国产又粗又黄视频 | 男人午夜视频 | 关秀媚三级 | 免费a在线观看播放 | 国产免费一级 | 日韩免费视频一区二区 | 中文字幕av一区二区三区 | 黑料网在线观看 | 欧美性jizz18性欧美 | 97视频播放 | 国产精品麻豆一区二区 | 黄色网页在线看 | 久久久久在线 | 96国产精品 |