弹性体
超分子化学
材料科学
高分子科学
纳米技术
高分子化学
组织工程
聚合物
热塑性弹性体
化学
分子工程
聚氨酯
超分子聚合物
作者
Xi Zhang,Yu Tan,Kaiqiang Zhang,Kaiyang Hou,Xia Xin,Nan Sun,Xu Wang
出处
期刊:Macromolecules
[American Chemical Society]
日期:2026-06-26
卷期号:59 (13): 8007-8019
标识
DOI:10.1021/acs.macromol.6c01045
摘要
Conventional combinatorial chemistry is largely confined to single-parameter optimization and remains poorly suited for the multidimensional integration required in advanced polymer systems. Here, we introduce a combinatorial engineering strategy that integrates library synthesis, multidimensional property mapping, structure–property correlation analysis, and system-level assembly to enable predictable multifunctionality in supramolecular waterborne polyurethanes (SWPUs). By tuning supramolecular chain extenders, a 16-member SWPU elastomer library with broadly programmable mechanical and physicochemical properties is constructed, from which a mechanically robust formulation is identified. Building on this library, intrinsic integration of SWPUs with contrasting moduli or solvent responses enables stretchable electronics and solvent-driven actuators, while extrinsic integration with MXene or poly(hexamethylene guanidine) affords composites with high electromagnetic shielding or exceptional antimicrobial performance and toughness (1.0 GJ/m 3 ). Within this framework, a quantitative structure–property correlation based on mass-normalized binding energies establishes a rational metric for trend-level performance estimation, advancing combinatorial chemistry toward rational polymer system assembly.
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