Liu Yang, Yang Tiannan, Zhang Bing, Williams Teague, Lin Yen-Ting, Li Li, Zhou Yao, Lu Wenchang, Kim Seong H, Chen Long-Qing, Bernholc J, Wang Qing
Department of Materials Science and Engineering, The Pennsylvania State University, University Park, PA, 16802, USA.
Department of Physics, North Carolina State University, Raleigh, NC, 27695, USA.
Adv Mater. 2020 Dec;32(49):e2005431. doi: 10.1002/adma.202005431. Epub 2020 Nov 4.
Both experimental results and theoretical models suggest the decisive role of the filler-matrix interfaces on the dielectric, piezoelectric, pyroelectric, and electrocaloric properties of ferroelectric polymer nanocomposites. However, there remains a lack of direct structural evidence to support the so-called interfacial effect in dielectric nanocomposites. Here, a chemical mapping of the interfacial coupling between the nanofiller and the polymer matrix in ferroelectric polymer nanocomposites by combining atomic force microscopy-infrared spectroscopy (AFM-IR) with first-principles calculations and phase-field simulations is provided. The addition of ceramic fillers into a ferroelectric polymer leads to augmentation of the local conformational disorder in the vicinity of the interface, resulting in the local stabilization of the all-trans conformation (i.e., the polar β phase). The formation of highly polar and inhomogeneous interfacial regions, which is further enhanced with a decrease of the filler size, has been identified experimentally and verified by phase-field simulations and density functional theory (DFT) calculations. This work offers unprecedented structural insights into the configurational disorder-induced interfacial effect and will enable rational design and molecular engineering of the filler-matrix interfaces of electroactive polymer nanocomposites to boost their collective properties.
实验结果和理论模型均表明,填料 - 基体界面在铁电聚合物纳米复合材料的介电、压电、热释电和电致热性能方面起着决定性作用。然而,仍缺乏直接的结构证据来支持介电纳米复合材料中所谓的界面效应。在此,通过将原子力显微镜 - 红外光谱(AFM - IR)与第一性原理计算和相场模拟相结合,对铁电聚合物纳米复合材料中纳米填料与聚合物基体之间的界面耦合进行了化学映射。向铁电聚合物中添加陶瓷填料会导致界面附近局部构象无序增加,从而使全反式构象(即极性β相)局部稳定。实验已确定了高度极性且不均匀的界面区域的形成,并且随着填料尺寸的减小这种形成会进一步增强,相场模拟和密度泛函理论(DFT)计算也证实了这一点。这项工作为构型无序诱导的界面效应提供了前所未有的结构见解,并将有助于对电活性聚合物纳米复合材料的填料 - 基体界面进行合理设计和分子工程,以提高其综合性能。