Michal Brian T, Jaye Colin A, Spencer Emily J, Rowan Stuart J
Department of Macromolecular Science and Engineering, Case Western Reserve University, 2100 Adelbert Road, Cleveland, Ohio 44106, United States.
Hathaway Brown School, 19600 North Park Boulevard, Shaker Heights, Ohio 44122, United States.
ACS Macro Lett. 2013 Aug 20;2(8):694-699. doi: 10.1021/mz400318m. Epub 2013 Jul 22.
Structurally dynamic polydisulfide networks that inherently exhibit both shape-memory and healable properties have been synthesized. These materials are semicrystalline, covalently cross-linked network polymers and as such exhibit thermal shape-memory properties. Upon heating above its melting temperature () films of the material can be deformed by a force. Subsequent cooling and removal of the force result in the material being "fixed" in this strained temporary shape through a combination of crystallinity and covalent cross-links until it is exposed to temperatures above the at which point it recovers to its remembered processed shape. The incorporation of disulfide bonds, which become dynamic/reversible upon exposure to light or elevated temperatures, into these networks results in them being structurally dynamic upon exposure to the appropriate stimulus. Thus, by activating this disulfide exchange, the network reorganizes, and the material can flow and exhibit healable properties. Furthermore, exposure to light also allows the film's permanent "remembered" shape to be reprogrammed. Shape-memory experiments on these films show high degrees of both fixing and recovery (>95%), and photohealing experiments showed that the films were able to recover from a scratch whose depth is approximately half the thickness of the film. Using a combination of the thermal shape-memory behavior followed by photohealing allows wide scratches to also be efficiently healed.
已经合成出了具有结构动态性的多硫化物网络,这种网络本身兼具形状记忆和可自愈特性。这些材料是半结晶的、共价交联网络聚合物,因而具有热形状记忆特性。当材料薄膜加热到其熔点以上时,能在外力作用下发生形变。随后冷却并撤去外力,材料会通过结晶度和共价交联的共同作用“固定”在这种应变后的临时形状中,直到再次暴露在熔点以上的温度时,它会恢复到记忆中的加工形状。将二硫键引入这些网络中,二硫键在光照或高温下会变得具有动态性/可逆性,这使得网络在受到适当刺激时具有结构动态性。因此,通过激活这种二硫键交换,网络会重新组织,材料能够流动并展现出可自愈特性。此外,光照还能让薄膜的永久“记忆”形状被重新编程。对这些薄膜进行的形状记忆实验显示出了很高的固定率和恢复率(>95%),光愈合实验表明薄膜能够从深度约为薄膜厚度一半的划痕中恢复。结合热形状记忆行为和光愈合,宽划痕也能被有效愈合。