Pappas D, Fthenakis Z G, Ponomareva I
Department of Physics , University of South Florida , Tampa , Florida 33620 , United States.
Nano Lett. 2018 Sep 12;18(9):5996-6001. doi: 10.1021/acs.nanolett.8b02818. Epub 2018 Aug 14.
Piezoelectric and ferroelectric nanowires exhibit properties and phases that are not available in the bulk. They are extremely promising for functional nanoscale application. On the basis of atomistic first-principles-based simulations, we predict an all-mechanical polarization control in ferroelectric nanowires. We report that the application of uniaxial compressive stress to ferroelectric nanowires with poor surface charge compensation leads to a reversible phase switching between the polar phase with axial polarization and macroscopically nonpolar flux-closure phase. The phase switching is associated with anomalously large changes in polarization and piezoelectric and mechanical response. In particular, in PbTiO nanowires the values as large as 5400 pC/N and 140 TPa are predicted for the piezoelectric coefficient and elastic constant, respectively. Remarkably, the effect persists up to the gigahertz frequency which is potentially promising for nanoscale applications, such as nanogenerators, biomedical electronics, monitoring devices, nanosensors, nanotransducers, and nanoactuators.
压电和铁电纳米线展现出一些在体材料中不存在的特性和相。它们在功能性纳米尺度应用方面极具前景。基于基于原子第一性原理的模拟,我们预测了铁电纳米线中的全机械极化控制。我们报道,对表面电荷补偿不佳的铁电纳米线施加单轴压缩应力会导致轴向极化的极性相和宏观非极性磁通闭合相之间的可逆相切换。这种相切换与极化、压电和机械响应的异常大变化相关。特别是,在PbTiO纳米线中,预测压电系数和弹性常数分别高达5400 pC/N和140 TPa。值得注意的是,这种效应一直持续到吉赫兹频率,这对于纳米尺度应用,如纳米发电机、生物医学电子学、监测设备、纳米传感器、纳米换能器和纳米致动器等具有潜在的应用前景。