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源自废弃食用油的具有自愈能力的多功能3D可打印光固化弹性体。

Multifunctional 3D-Printable Photocurable Elastomer with Self-Healing Capability Derived from Waste Cooking Oil.

作者信息

Wang Pengyu, Sun Jiahui, Liu Mengyu, Tang Chuanyang, Yang Yang, Ding Guanzhi, Liu Qing, Chen Shuoping

机构信息

College of Materials Science and Engineering, Guilin University of Technology, Guilin 541004, China.

School of Chemistry, South China Normal University, Guangzhou 510006, China.

出版信息

Molecules. 2025 Apr 18;30(8):1824. doi: 10.3390/molecules30081824.

Abstract

This study presents a sustainable approach to transform waste cooking oil (WCO) into a multifunctional 3D-printable photocurable elastomer with integrated self-healing capabilities. A linear monomer, WCO-based methacrylate fatty acid ethyl ester (WMFAEE), was synthesized via a sequential strategy of transesterification, epoxidation, and ring-opening esterification. By copolymerizing WMFAEE with hydroxypropyl acrylate (HPA), a novel photocurable elastomer was developed, which could be amenable to molding using an LCD light-curing 3D printer. The resulting WMFAEE-HPA elastomer exhibits exceptional mechanical flexibility (elongation at break: 645.09%) and autonomous room-temperature self-healing properties, achieving 57.82% recovery of elongation after 24 h at 25 °C. Furthermore, the material demonstrates weldability (19.97% retained elongation after 12 h at 80 °C) and physical reprocessability (7.75% elongation retention after initial reprocessing). Additional functionalities include pressure-sensitive adhesion (interfacial toughness: 70.06 J/m on glass), thermally triggered shape memory behavior (fixed at -25 °C with reversible deformation/recovery at ambient conditions), and notable biodegradability (13.25% mass loss after 45-day soil burial). Molecular simulations reveal that the unique structure of the WMFAEE monomer enables a dual mechanism of autonomous self-healing at room temperature without external stimuli: chain diffusion and entanglement-driven gap closure, followed by hydrogen bond-mediated network reorganization. Furthermore, the synergy between monomer chain diffusion/entanglement and dynamic hydrogen bond reorganization allows the WMFAEE-HPA system to achieve a balance of multifunctional integration. Moreover, the integration of these multifunctional attributes highlights the potential of this WCO-derived photocurable elastomer for various possible 3D printing applications, such as flexible electronics, adaptive robotics, environmentally benign adhesives, and so on. It also establishes a paradigm for converting low-cost biowastes into high-performance smart materials through precision molecular engineering.

摘要

本研究提出了一种可持续的方法,将废食用油(WCO)转化为具有集成自修复能力的多功能3D可打印光固化弹性体。通过酯交换、环氧化和开环酯化的顺序策略合成了一种线性单体,即基于WCO的甲基丙烯酸脂肪酸乙酯(WMFAEE)。通过将WMFAEE与丙烯酸羟丙酯(HPA)共聚,开发了一种新型光固化弹性体,该弹性体可使用LCD光固化3D打印机进行成型。所得的WMFAEE-HPA弹性体表现出优异的机械柔韧性(断裂伸长率:645.09%)和自主室温自修复性能,在25℃下24小时后伸长率恢复率达到57.82%。此外,该材料还具有可焊接性(80℃下12小时后保留伸长率19.97%)和物理可再加工性(初次再加工后伸长率保留7.75%)。其他功能包括压敏粘附性(在玻璃上的界面韧性:70.06 J/m)、热触发形状记忆行为(在-25℃固定,在环境条件下可逆变形/恢复)和显著的生物降解性(45天土壤掩埋后质量损失13.25%)。分子模拟表明,WMFAEE单体的独特结构实现了室温下无需外部刺激的自主自修复双重机制:链扩散和缠结驱动的间隙闭合,随后是氢键介导的网络重组。此外,单体链扩散/缠结与动态氢键重组之间的协同作用使WMFAEE-HPA体系实现了多功能集成的平衡。此外,这些多功能特性的集成突出了这种源自WCO的光固化弹性体在各种可能的3D打印应用中的潜力,如柔性电子、自适应机器人、环境友好型粘合剂等。它还建立了一种通过精确分子工程将低成本生物废物转化为高性能智能材料的范例。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f265/12029562/30cdcf92dd6e/molecules-30-01824-g001.jpg

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