TY - JOUR
T1 - A facile and on-demand optimizing strategy for polyurethane elastomers via programmable hydrogen bonding
AU - Bai, Zichen
AU - Li, Xiaodong
AU - Wu, Tianhao
AU - Jiang, Hao
AU - Zhang, Xudong
AU - Zhang, Lichen
AU - Yang, Yi
AU - Liu, Shuang
AU - Lei, Lisha
AU - Song, Ningning
AU - Wang, Zhengdi
AU - Su, Xing
AU - Zou, Meishuai
N1 - Publisher Copyright:
© 2024
PY - 2024/7/15
Y1 - 2024/7/15
N2 - Polyurethane elastomers address important significance in a wide range of applications. The mechanical properties including strength and toughness are of great importance, which are closely related to their unique hydrogen bonding structure. Unfortunately, the poor designability of hydrogen bonding structure in existing polyurethane severely restricts the on-demand regulation of their properties. Herein, a facile, universal and efficient modifying strategy based on stimuli-responsive polyphenol aggregates was proposed. Through precisely manipulated heat-induced aggregate division and/or photo-induced interfacial hydrogen bonding upgrading, programmable strengthening and toughening effect on the derived polyurethane elastomers could be achieved with high precision. Typically, the tensile strength and toughness of our proposed polyurethane elastomers could be enhanced by 3.23 and 2.22 times comparing with neat samples, respectively. The relevant results were supported by various characterizations and mathematical modeling. In addition, our polyurethane exhibited unique selective biocompatibility, rapid self-healing capability and recyclability, which could fulfill varieties of functions. Our proposed modifying strategy by using polyphenol aggregates can not only programmatically optimize the comprehensive properties of polyurethane, but also inspire programmable regulation of polymer performance through programmable design of its certain microstructure in the future.
AB - Polyurethane elastomers address important significance in a wide range of applications. The mechanical properties including strength and toughness are of great importance, which are closely related to their unique hydrogen bonding structure. Unfortunately, the poor designability of hydrogen bonding structure in existing polyurethane severely restricts the on-demand regulation of their properties. Herein, a facile, universal and efficient modifying strategy based on stimuli-responsive polyphenol aggregates was proposed. Through precisely manipulated heat-induced aggregate division and/or photo-induced interfacial hydrogen bonding upgrading, programmable strengthening and toughening effect on the derived polyurethane elastomers could be achieved with high precision. Typically, the tensile strength and toughness of our proposed polyurethane elastomers could be enhanced by 3.23 and 2.22 times comparing with neat samples, respectively. The relevant results were supported by various characterizations and mathematical modeling. In addition, our polyurethane exhibited unique selective biocompatibility, rapid self-healing capability and recyclability, which could fulfill varieties of functions. Our proposed modifying strategy by using polyphenol aggregates can not only programmatically optimize the comprehensive properties of polyurethane, but also inspire programmable regulation of polymer performance through programmable design of its certain microstructure in the future.
KW - Heat/radiation-induced programmability
KW - Hydrogen bonding
KW - Polyurethane
KW - Recyclability
KW - Selective biocompatibility
KW - Self-healing
UR - http://www.scopus.com/inward/record.url?scp=85193901062&partnerID=8YFLogxK
U2 - 10.1016/j.cej.2024.152110
DO - 10.1016/j.cej.2024.152110
M3 - Article
AN - SCOPUS:85193901062
SN - 1385-8947
VL - 492
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 152110
ER -