"/>
    1. <sub id="zy88n"></sub>
        1. <blockquote id="zy88n"></blockquote>
          欧美黑人又大又粗xxxxx,人人爽久久久噜人人看,扒开双腿吃奶呻吟做受视频,中国少妇人妻xxxxx,2021国产在线视频,日韩福利片午夜免费观着,特黄aaaaaaa片免费视频,亚洲综合日韩av在线

          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: 中文字幕在线观看一区二区| 国产又爽又黄的激情视频| 超碰国产精品久久国产精品99| 精品视频在线观看免费观看| 免费观看在线A级毛片| 亚洲色一色噜一噜噜噜| 国产女高清在线看免费观看| 亚洲最大av一区二区三区| 全免费a级毛片免费看网站| 亚洲色AV性色在线观看| 四虎成人精品在永久免费| 久久久亚洲欧洲日产国码606| 国产自产21区激情综合一区| 亚洲综合网国产精品一区| 久久国产乱子精品免费女| 色综合久久久无码中文字幕波多| 97色伦97色伦国产| 伊人色综合久久天天人手人婷| 高潮videossex潮喷| 最新国产成人在线网站| 免费观看又污又黄在线观看| 国产午夜福利久久精品| 野花高清免费观看完整视频中文版| av在线网站无码不卡的| 国产成人久久精品一区二区| 全国最大成人网站| а√天堂中文最新版在线种子| 欧美+自拍+色| 国产亚洲精品美女久久久M| 久青草国产97香蕉在线视频| 亚洲国产精品久久久久爰色欲 | 国产麻豆va精品视频| 天堂无码人妻精品一区二区三区| 一本av高清一区二区三区| 亚洲最大成人一区久久久| 高潮精品熟妇一区二区三区| 亚洲av成人精品一区二区三区| 国产成人精品无码一区二| 久久久久成人网站| 亚洲成人精品一区二区中| 99热精品毛片全部国产无缓冲|