Matsumura Yusei, Yamaoka Kenji, Ikura Ryohei, Takashima Yoshinori
Department of Macromolecular Science, Graduate School of Science, Osaka University, 1-1 Machikaneyama, Toyonaka, Osaka 560-0043, Japan.
Forefront Research Center, Graduate School of Science, Osaka University,1-1 Machikaneyama, Toyonaka, Osaka 560-0043, Japan.
ACS Appl Mater Interfaces. 2025 Apr 2;17(13):20261-20269. doi: 10.1021/acsami.5c01169. Epub 2025 Feb 28.
Both strong and easily dismantlable adhesive systems are required to realize a sustainable society by recovering and reusing substrates. Introducing topological cross-links with cyclodextrins (CDs) into adhesives can improve their adhesive strength. In this study, we prepared movable cross-linked poly(ethyl acrylate) (PEA-TAcγCD) with polymerizable CDs and acid-degradable bonds (TAcγCDAAmMe) for both strong and dismantlable adhesion. The -amidomethyl bond, which links CD to a polymerizable functional group, can be degraded by mixing Brønsted acid. By combining PEA-TAcγCD with photoacid generators, we successfully controlled the mechanical properties by cleaving the movable cross-links upon light stimulation. The degradation mechanism of TAcγCDAAmMe by photoacid generators was confirmed by mass spectrometry. In addition, the cleavage of movable cross-linking points via light stimulation was demonstrated by both the alteration of mechanical properties and chain relaxation of the system, which were evaluated by utilizing tensile tests and dynamic mechanical analysis, respectively. Therefore, the light-responsive degradable elastomer appeared applicable as an easily dismantled on-demand adhesion system. Using light stimulation, the adhesion strengths with the same or dissimilar substrates were reduced. The easy dismantling of the adhesion system by applying the acid degradability of TAcγCDAAmMe enabled excellent adhesive properties derived from the movable cross-links and easy dismantling by light stimulation. Facilitating the disassembly, collection, and reuse of resources will contribute to the realization of a sustainable society.
为了通过回收和再利用基材来实现可持续发展的社会,需要既具有高强度又易于拆解的粘合剂体系。将环糊精(CDs)引入粘合剂中形成拓扑交联可以提高其粘合强度。在本研究中,我们制备了具有可聚合CDs和酸可降解键(TAcγCDAAmMe)的可移动交联聚丙烯酸乙酯(PEA-TAcγCD),以实现高强度和可拆解的粘合。连接CD与可聚合官能团的酰胺甲基键可通过混合布朗斯特酸而降解。通过将PEA-TAcγCD与光酸发生器相结合,我们成功地通过光刺激裂解可移动交联来控制其机械性能。通过质谱证实了光酸发生器对TAcγCDAAmMe的降解机理。此外,分别利用拉伸试验和动态力学分析评估了体系的机械性能变化和链松弛,证明了通过光刺激可裂解可移动交联点。因此,光响应性可降解弹性体似乎适用于一种易于按需拆解的粘附体系。利用光刺激,与相同或不同基材的粘合强度会降低。通过利用TAcγCDAAmMe的酸可降解性实现粘附体系的轻松拆解,能够实现源自可移动交联的优异粘合性能以及通过光刺激实现轻松拆解。促进资源的拆卸、收集和再利用将有助于实现可持续发展的社会。