4.8 Article

Degradable self-adhesive epidermal sensors prepared from conductive nanocomposite hydrogel

期刊

NANOSCALE
卷 12, 期 36, 页码 18771-18781

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0nr04666c

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资金

  1. National Natural Science Foundation of China [51674038, 51874193, 51934004]
  2. National Key R&D Program of China [2018YFC0807900]
  3. Shandong Province Natural Science Foundation [ZR2018JL019, ZR2017PEE024]
  4. Qingchuang Science and Technology Program of Shandong Province University [2019KJG008]
  5. Shandong Province Science and Technology Development Plan [2017GSF220003]
  6. Scientific Research Foundation of Shandong University of Science and Technology for Recruited Talents [2017RCJJ010, 2017RCJJ037]
  7. Shandong Province First Class Subject Project [01AQ05202]
  8. SDUST Research Fund [2018TDJH102]
  9. Taishan Scholar Talent Team Support Plan for Advantaged & Unique Discipline Areas

向作者/读者索取更多资源

Conductive hydrogel-based epidermal sensors are attracting significant interest due to their great potential in soft robotics, electronic skins, bioelectronics and personalized healthcare monitoring. However, the conventional conductive hydrogel-based epidermal sensors cannot be degraded, resulting in the significant problem of waste, which will gradually increase the burden on the environment. Herein, degradable adhesive epidermal sensors were assembled using conductive nanocomposite hydrogels, which were preparedviathe conformal coating of cellulose nanofiber (CNF) networks and supramolecular interaction among CNF, polydopamine (PDA), Fe3+, and polyacrylamide (PAM). They exhibited superior mechanical properties, reliable degradability (30 days in water), and excellent self-adhesiveness. The obtained hydrogels could be assembled as self-adhesive, degradable epidermal sensors for real-time human motion monitoring. Air could be sucked into the hydrogels during their swelling process, thereby oxidizing the tris-catechol-Fe(3+)complexes and releasing Fe3+. Finally, the polymer networks were degradedviaa Fenton-like reaction dominated by S(2)O(8)(2-)and Fe(ii/iii) with the help of the catechol groups of PDA. This work paves the way for the potential fabrication of degradable, and self-adhesive epidermal sensors for applications in human-machine interactions, implantable bioelectronics, and personalized healthcare monitoring.

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