Oggioni Marta, Clough Jess M, Weder Christoph
Adolphe Merkle Institute, University of Fribourg, Chemin des Verdiers 4, Fribourg CH-1700, Switzerland.
National Center of Competence in Research Bio-inspired Materials, Chemin des Verdiers 4, Fribourg CH-1700, Switzerland.
Soft Matter. 2024 Feb 28;20(9):2126-2131. doi: 10.1039/d3sm01489d.
The ability to monitor mechanical stresses and strains in polymers an optical signal enables the investigation of deformation processes in such materials and is technologically useful for sensing damage and failure in critical components. We show here that this can be achieved by simply blending polymers of interest with a small amount of a mechanochromic luminescent additive (Py-PEB) that can be accessed in one step by end-functionalizing a telechelic poly(ethylene--butylene) (PEB) with excimer-forming pyrenes. Py-PEB is poorly miscible with polar polymers, such as poly(ε-caprolactone) and poly(urethane), so that blends undergo microphase separation even at low additive concentrations (0.1-1 wt%), and the emission is excimer-dominated. Upon deformation, the ratio of excimer-to-monomer emission intensity decreases in response to the applied stress or strain. The approach appears to be generalizable, although experiments with poly(isoprene) show that it is not universal and that the (in)solubility of the additive in the polymer must be carefully tuned.
通过光学信号监测聚合物中的机械应力和应变的能力,能够研究此类材料中的变形过程,并且在检测关键部件的损伤和失效方面具有技术实用性。我们在此表明,这可以通过简单地将感兴趣的聚合物与少量机械变色发光添加剂(Py-PEB)混合来实现,该添加剂可通过用形成准分子的芘对遥爪聚(乙烯-丁烯)(PEB)进行端基官能化一步获得。Py-PEB与极性聚合物(如聚(ε-己内酯)和聚氨酯)的混溶性较差,因此即使在低添加剂浓度(0.1-1 wt%)下,共混物也会发生微相分离,并且发射以准分子为主。在变形时,准分子与单体发射强度的比率会随着施加的应力或应变而降低。尽管聚异戊二烯的实验表明该方法并非普遍适用,并且添加剂在聚合物中的(不)溶解性必须仔细调整,但该方法似乎具有通用性。