可调,3d打印,和快速自主自修复弹性体

Bingrui Li , Sirui Ge , Xiao Zhao , Qiyi Chen , Jia Tian , Diana Hun , Alexei P. Sokolov , Tomonori Saito , Peng-Fei Cao
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引用次数: 0

摘要

由于其独特的适应性和耐用性,自修复弹性体提供了延长功能材料的使用寿命。然而,一个主要的科学挑战仍然是开发具有快速愈合过程和良好机械性能的材料,这些材料可以通过相对简单的合成方法制备。在此,我们报告了一种多功能的自修复弹性体设计方法,通过结合两种不同的含氢键单体,即2-[[(丁胺)羰基]氧]丙烯酸乙酯(BCOE)和2-脲基-4[1H]嘧啶酮(UPy)功能化甲基丙烯酸乙酯。Poly(BCOE-r-UPy)s是通过可逆加成-破碎链转移(RAFT)聚合合成的,通过控制两个单体的比例,可以获得良好的力学性能,拉伸强度范围为0.04 ~ 6.3 MPa,拉伸应变可达3,000 %。从终端弛豫的温度依赖中减去节段弛豫,计算出特征解离能。当Poly(BCOE-r-UPy)的摩尔组成为BCOE/UPy = 99/1时,可以实现快速的自主自愈。在氦离子显微镜下原位监测了自愈过程,并通过拉伸试验对Poly(BCOE-r-UPy1)进行了宏观研究,结果表明,在室温下,当UPy摩尔比为1%时,Poly(BCOE-r-UPy1)在10 min内恢复了70%的原始韧性。3D打印Poly(BCOE-r-UPy)提供了一种可自我修复的3D结构,证明了Poly(BCOE-r-UPy)对按需制造的适应性。Poly(BCOE-r-UPy)s的合成简单,机械性能可调,独特的自愈性和3D打印能力表明它们具有广泛的应用潜力。
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Well-Tunable, 3D-printable, and Fast Autonomous Self-Healing Elastomers

Self-healing elastomers provide extended longevity of functional materials, due to their unique adaptability and durability. However, a major scientific challenge remains in developing materials with a rapid healing process combined with decent mechanical properties, that can be prepared by a relatively simple synthesis approach. Herein, we report a versatile design approach on self-healing elastomers by incorporating two different hydrogen bonding containing monomers, i.e., 2-[[(butylamino)carbonyl]oxy]ethyl acrylate (BCOE) and 2-ureido-4[1H]pyrimidinone (UPy) functionalized ethyl methacrylate. Poly(BCOE-r-UPy)s are synthesized by reversible addition−fragmentation chain-transfer (RAFT) polymerization, and controlling the ratio of two monomers enables well-tunable mechanical properties with tensile strength ranging from 0.04 to 6.3 MPa and tensile strain up to 3,000 %. The characteristic dissociation energy is calculated from a temperature dependence of terminal relaxation followed by subtracting the segmental relaxation. The rapid autonomous self-healing is achieved when the molar composition of Poly(BCOE-r-UPy) is tailored to BCOE/UPy = 99/1. The self-healing process is monitored in situ by a helium-ion microscope, and its macroscopic study using tensile tests indicates that Poly(BCOE-r-UPy1) with 1 % molar ratio of UPy recovers 70 % of its original toughness at ambient temperature within 10 mins. 3D printing of Poly(BCOE-r-UPy) affords a self-healable 3D structure, demonstrating the adaptability of Poly(BCOE-r-UPy) for on-demand fabrication. The simplicity of synthesis, well-tunable mechanical properties, unique self-healability, and 3D printing capability of Poly(BCOE-r-UPy)s indicate their potential for a range of applications.

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