Research Center for Bio-Based Chemistry, Korea Research Institute of Chemical Technology (KRICT), Ulsan, 44429, Republic of Korea.
Advanced Materials and Chemical Engineering, University of Science and Technology (UST), Daejeon, 34113, Republic of Korea.
Adv Mater. 2018 Jan;30(1). doi: 10.1002/adma.201705145. Epub 2017 Nov 13.
The most important properties of self-healing polymers are efficient recovery at room temperature and prolonged durability. However, these two characteristics are contradictory, making it difficult to optimize them simultaneously. Herein, a transparent and easily processable thermoplastic polyurethane (TPU) with the highest reported tensile strength and toughness (6.8 MPa and 26.9 MJ m , respectively) is prepared. This TPU is superior to reported contemporary room-temperature self-healable materials and conveniently heals within 2 h through facile aromatic disulfide metathesis engineered by hard segment embedded aromatic disulfides. After the TPU film is cut in half and respliced, the mechanical properties recover to more than 75% of those of the virgin sample within 2 h. Hard segments with an asymmetric alicyclic structure are more effective than those with symmetric alicyclic, linear aliphatic, and aromatic structures. An asymmetric structure provides the optimal metathesis efficiency for the embedded aromatic disulfide while preserving the remarkable mechanical properties of TPU, as indicated by rheological and surface investigations. The demonstration of a scratch-detecting electrical sensor coated on a tough TPU film capable of auto-repair at room temperature suggests that this film has potential applications in the wearable electronics industry.
自修复聚合物最重要的特性是在室温下进行高效的恢复和延长耐久性。然而,这两个特性是相互矛盾的,很难同时对它们进行优化。在此,制备了一种具有最高拉伸强度和韧性(分别为 6.8 MPa 和 26.9 MJ m -3 )的透明且易于加工的热塑性聚氨酯(TPU)。这种 TPU 优于报道的当代室温自修复材料,并且可以通过硬段嵌入的芳香二硫键设计的简单芳香二硫键复分解在 2 小时内方便地修复。在 TPU 薄膜被切成两半并重新拼接后,机械性能在 2 小时内恢复到原始样品的 75%以上。具有非对称脂环结构的硬段比具有对称脂环、线性脂肪族和芳香结构的硬段更有效。非对称结构为嵌入的芳香二硫键提供了最佳的复分解效率,同时保持了 TPU 的显著机械性能,这可以通过流变学和表面研究来证明。在室温下具有自修复能力的坚韧 TPU 薄膜上涂覆的划痕检测电传感器的演示表明,该薄膜在可穿戴电子产品行业具有潜在的应用。