<dfn id="8wqko"></dfn>
  • <ul id="8wqko"><sup id="8wqko"></sup></ul><fieldset id="8wqko"><menu id="8wqko"></menu></fieldset> <strike id="8wqko"><menu id="8wqko"></menu></strike>
  • <ul id="8wqko"></ul>
  • <strike id="8wqko"></strike><strike id="8wqko"></strike>
  • <fieldset id="8wqko"></fieldset>

    加載中...

    點擊這里給我發消息

    QQ群:417857029

    新產品·新技術信息

    MIT Engineers Develop Hydrogel Superglue, a Transparent Water Adhesive

    來源:specialchem2015年11月23日

    閱讀次數:

      Cambridge, MA -- The natural adhesive in all these cases is hydrogel -- a sticky mix of water and gummy material that creates a tough and durable bond.

      Now engineers at MIT have developed a method to make synthetic, sticky hydrogel that is more than 90 percent water. The hydrogel, which is a transparent, rubber-like material, can adhere to surfaces such as glass, silicon, ceramics, aluminum, and titanium with toughness comparable to the bond between tendon and cartilage on bone.

      In experiments to demonstrate its robustness, the researchers applied a small square of their hydrogel between two plates of glass, from which they then suspended a 55-pound weight. They also glued the hydrogel to a silicon wafer, which they then smashed with a hammer. While the silicon shattered, its pieces remained stuck in place.

      Such durability makes the hydrogel an ideal candidate for protective coatings on underwater surfaces such as boats and submarines. As the hydrogel is biocompatible, it may also be suitable for a range of health-related applications, such as biomedical coatings for catheters and sensors implanted in the body.

      "You can imagine new applications with this very robust, adhesive, yet soft material," says Xuanhe Zhao, the Robert N. Noyce Career Development Associate Professor in MIT's Department of Mechanical Engineering. For example, Zhao's group is currently exploring uses for the hydrogel in soft robotics, where the material may serve as synthetic tendon and cartilage, or in flexible joints.

      "It's a pretty tough and adhesive gel that's mostly water," Hyunwoo Yuk, a graduate student in mechanical engineering and the lead author of a paper on the work, says. "Basically, it's tough, bonding water."

      Zhao and his students publish their results today in the journal Nature Materials.

      A stretchy anchor

      A tough, flexible hydrogel that bonds strongly requires two characteristics, Zhao found: energy dissipation and chemical anchorage. A hydrogel that dissipates energy is essentially able to stretch significantly without retaining all the energy used to stretch it. A chemically anchored hydrogel adheres to a surface by covalently bonding its polymer network to that surface.

      "Chemical anchorage plus bulk dissipation leads to tough bonding," Zhao says. "Tendons and cartilage harness these, so we're really learning this principle from nature."

      In developing the hydrogel, Yuk mixed a solution of water with a dissipative ingredient to create a stretchy, rubbery material. He then placed the hydrogel atop various surfaces, such as aluminum, ceramic, glass, and titanium, each modified with functional silanes -- molecules that created chemical links between each surface and its hydrogel.

      The researchers then tested the hydrogel's bond using a standard peeling test, in which they measured the force required to peel the hydrogel from a surface. On average, they found the hydrogel's bond was as tough as 1,000 joules per square meter -- about the same level as tendon and cartilage on bone.

      Zhao group compared these results with existing hydrogels, as well as elastomers, tissue adhesives, and nanoparticle gels, and found that the new hydrogel adhesive has both higher water content and a much stronger bonding ability.

      "We basically broke a world record in bonding toughness of hydrogels, and it was inspired by nature," Yuk says.

      Sticky robotics

      In addition to testing the hydrogel's toughness with a hammer and a weight, Zhao and his colleagues explored its use in robotic joints, using small spheres of hydrogel to connect short pipes to simulate robotic limbs.

      "Hydrogels can act as actuators," Zhao says. "Instead of using conventional hinges, you can use this soft material with strong bonding to rigid materials, and it can give a robot many more degrees of freedom."

      The researchers also looked into its application as an electrical conductor. Yuk and other students added salts to a hydrogel sample, and attached the hydrogel to two metal plates connected via electrodes to an LED light. They found that the hydrogel enabled the flow of salt ions within the electrical loop, ultimately lighting up the LED.

      "We create extremely robust interfaces for hydrogel-metal hybrid conductors," Yuk adds.

      Zhao's group is currently most interested in exploring the hydrogel's use in soft robotics, as well as in bioelectronics.

      "Since the hydrogel contains over 90 percent water, the bonding may be regarded as a water adhesive, which is tougher than natural glues, such as in barnacles and mussels, and bio-inspired underwater glues," Zhao says. "The work has significant implications in understanding bio-adhesion, as well as practical applications such as in hydrogel coatings, biomedical devices, tissue engineering, water treatment, and underwater glues."

      This research was supported in part by the Office of Naval Research and the National Science Foundation.

      About MIT

      Research at MIT aims to develop innovative solutions to the world's most daunting challenges. From addressing the energy needs of tomorrow to improving cancer therapies, MIT's research efforts are enhanced through creative collaborations with leading research institutes and consortia around the world. Compiled here are just some of the MIT labs, centers and programs where cutting-edge research is taking place.

    相關閱讀

    本站所有信息與內容,版權歸原作者所有。網站中部分新聞、文章來源于網絡或會員供稿,如讀者對作品版權有疑議,請及時與我們聯系,電話:025-85303363 QQ:2402955403。文章僅代表作者本人的觀點,與本網站立場無關。轉載本站的內容,請務必注明"來源:林中祥膠粘劑技術信息網(www.nongfusping.com)".

    網友評論

    ©2015 南京愛德福信息科技有限公司   蘇ICP備10201337 | 技術支持:南京聯眾網絡科技有限公司

    客服

    客服
    電話

    1

    電話:025-85303363

    手機:13675143372

    客服
    郵箱

    2402955403@qq.com

    若您需要幫助,您也可以留下聯系方式

    發送郵箱

    掃二
    維碼

    微信二維碼
    99这里只有精品66视频| 久久青青草原国产精品免费| 在线观看国产精品va| 精品国产VA久久久久久久冰| 国产产无码乱码精品久久鸭| 日韩制服国产精品一区| 九色精品视频在线观看| 欲帝精品福利视频导航| 日韩在线a视频免费播放| 无码日韩人妻精品久久蜜桃 | 无码人妻精品一二三区免费| 网友自拍区视频精品| 国产韩国精品一区二区三区久久| 91手机看片国产福利精品| 久久亚洲美女精品国产精品| 先锋影音国产精品| 国产99视频精品免费专区| 久久国产精品成人免费| 人与狗精品AA毛片| 日韩精品人妻一区二区中文八零| 精品亚洲一区二区三区在线播放| 国产精品嫩草影院一二三区| 四库影院永久四虎精品国产 | 亚洲av日韩av欧v在线天堂| 国产成人亚洲精品91专区高清 | 国产精品秘入口福利姬网站| 亚洲电影日韩精品| www.久久精品| 亚洲第一永久AV网站久久精品男人的天堂AV| 日韩免费视频播播| 四虎精品亚洲一区二区三区| 任我爽精品视频在线播放| 国产成人精品日本亚洲专区 | 国产国拍精品亚洲AV片| 亚洲精品亚洲人成在线观看| 国产乱码精品一区二区三区中文| 国产在线精品网址你懂的| 久久91精品国产91久久小草| 国产精品女同久久久久电影院| 国产午夜无码精品免费看动漫| 精品国产一区二区三区免费|