TY - JOUR
T1 - Robust Multiscale-Oriented Thermoresponsive Fibrous Hydrogels with Rapid Self-Recovery and Ultrafast Response Underwater
AU - Mu, Qifeng
AU - Zhang, Qingsong
AU - Yu, Wen
AU - Su, Mengling
AU - Cai, Zhongyu
AU - Cui, Kunpeng
AU - Ye, Yanan
AU - Liu, Xiaoyun
AU - Deng, Lingli
AU - Chen, Bingjie
AU - Yang, Ning
AU - Chen, Li
AU - Tao, Lei
AU - Wei, Yen
N1 - Publisher Copyright:
Copyright © 2020 American Chemical Society.
PY - 2020/7/22
Y1 - 2020/7/22
N2 - Hydrogels with ultrafast response to environmental stimuli, possessing robust structural integrity and rapid self-recovery, have been considered as promising platforms for numerous applications, for example, in biomimetic materials and nanomedicine. Inspired by the bundled fibrous structure of actin, we developed a robust and ultrafast thermoresponsive fibrous hydrogel (TFH) by fully utilizing the weak noncovalent bonds and strong covalently cross-linked semiflexible electrospun fibrous nets. The TFH exhibits an ultrafast response (within 10 s), rapid self-recovery rate (74% within 10 s), tunable tensile strength (3-380 kPa), and high toughness (∼1560 J/m2) toward temperature. A multiscale orientation is considered to play a key role in the excellent mechanical properties at the fibrous mesh, fiber, and molecular scales. Furthermore, to take advantage of this TFH adequately, a novel kind of noodle-like hydrogel for thermo-controlled protein sorption based on the TFH is prepared, which exhibits high stability and ultrafast sorption properties. The bioinspired platforms hold promise as artificial skins and "smart"sorption membrane carriers, which provide a unique bioactive environment for tissue engineering and nanomedicine.
AB - Hydrogels with ultrafast response to environmental stimuli, possessing robust structural integrity and rapid self-recovery, have been considered as promising platforms for numerous applications, for example, in biomimetic materials and nanomedicine. Inspired by the bundled fibrous structure of actin, we developed a robust and ultrafast thermoresponsive fibrous hydrogel (TFH) by fully utilizing the weak noncovalent bonds and strong covalently cross-linked semiflexible electrospun fibrous nets. The TFH exhibits an ultrafast response (within 10 s), rapid self-recovery rate (74% within 10 s), tunable tensile strength (3-380 kPa), and high toughness (∼1560 J/m2) toward temperature. A multiscale orientation is considered to play a key role in the excellent mechanical properties at the fibrous mesh, fiber, and molecular scales. Furthermore, to take advantage of this TFH adequately, a novel kind of noodle-like hydrogel for thermo-controlled protein sorption based on the TFH is prepared, which exhibits high stability and ultrafast sorption properties. The bioinspired platforms hold promise as artificial skins and "smart"sorption membrane carriers, which provide a unique bioactive environment for tissue engineering and nanomedicine.
KW - electrospinning
KW - orientation
KW - protein sorption
KW - rapid self-recovery
KW - thermoresponsive fibrous hydrogel
UR - https://www.scopus.com/pages/publications/85088488390
U2 - 10.1021/acsami.0c06164
DO - 10.1021/acsami.0c06164
M3 - 文章
C2 - 32584536
AN - SCOPUS:85088488390
SN - 1944-8244
VL - 12
SP - 33152
EP - 33162
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 29
ER -