Silk Fibroin for Flexible Electronic Devices

  • Bowen Zhu
    School of Materials Science and Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798
  • Hong Wang
    School of Materials Science and Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798
  • Wan Ru Leow
    School of Materials Science and Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798
  • Yurong Cai
    School of Materials Science and Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798
  • Xian Jun Loh
    Institute of Materials Research and Engineering Agency for Science Technology and Research (A*STAR) 3 Research Link Singapore 117602
  • Ming‐Yong Han
    Institute of Materials Research and Engineering Agency for Science Technology and Research (A*STAR) 3 Research Link Singapore 117602
  • Xiaodong Chen
    School of Materials Science and Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798

書誌事項

公開日
2015-12-18
権利情報
  • http://onlinelibrary.wiley.com/termsAndConditions#vor
DOI
  • 10.1002/adma.201504276
公開者
Wiley

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説明

<jats:p>Flexible electronic devices are necessary for applications involving unconventional interfaces, such as soft and curved biological systems, in which traditional silicon‐based electronics would confront a mechanical mismatch. Biological polymers offer new opportunities for flexible electronic devices by virtue of their biocompatibility, environmental benignity, and sustainability, as well as low cost. As an intriguing and abundant biomaterial, silk offers exquisite mechanical, optical, and electrical properties that are advantageous toward the development of next‐generation biocompatible electronic devices. The utilization of silk fibroin is emphasized as both passive and active components in flexible electronic devices. The employment of biocompatible and biosustainable silk materials revolutionizes state‐of‐the‐art electronic devices and systems that currently rely on conventional semiconductor technologies. Advances in silk‐based electronic devices would open new avenues for employing biomaterials in the design and integration of high‐performance biointegrated electronics for future applications in consumer electronics, computing technologies, and biomedical diagnosis, as well as human–machine interfaces.</jats:p>

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