Shi Xiaowen, Nazirkar Nimish Prashant, Kashikar Ravi, Karpov Dmitry, Folarin Shola, Barringer Zachary, Williams Skye, Kiefer Boris, Harder Ross, Cha Wonsuk, Yuan Ruihao, Liu Zhen, Xue Dezhen, Lookman Turab, Ponomareva Inna, Fohtung Edwin
Department of Materials Science and Engineering, Rensselaer Polytechnic Institute, 110 8th Street, Troy, New York 12180, United States.
Department of Physics, University of South Florida, 4202 East Fowler Avenue, ISA 5103, Tampa, Florida 33620-5700, United States.
ACS Appl Mater Interfaces. 2024 Feb 14;16(6):7522-7530. doi: 10.1021/acsami.3c06018. Epub 2024 Jan 30.
The piezoelectric response is a measure of the sensitivity of a material's polarization to stress or its strain to an applied field. Using X-ray Bragg coherent diffraction imaging, we observe that topological vortices are the source of a 5-fold enhancement of the piezoelectric response near the vortex core. The vortices form where several low-symmetry ferroelectric phases and phase boundaries coalesce. Unlike bulk ferroelectric solid solutions in which a large piezoelectric response is associated with coexisting phases in the proximity of the triple point, the largest responses for pure BaTiO at the nanoscale are in spatial regions of extremely small spontaneous polarization at vortex cores. The response decays inversely with polarization away from the vortex, analogous to the behavior in bulk ceramics as the cation compositions are varied away from the triple point. We use first-principles-based molecular dynamics to augment our observations, and our results suggest that nanoscale piezoelectric materials with a large piezoelectric response can be designed within a parameter space governed by vortex cores. Our findings have implications for the development of next-generation nanoscale piezoelectric materials.
压电响应是衡量材料极化对应力的敏感度或其应变对施加电场的敏感度的指标。利用X射线布拉格相干衍射成像技术,我们观察到拓扑涡旋是涡旋核心附近压电响应增强5倍的来源。涡旋形成于几个低对称铁电相和相界合并的地方。与大块铁电固溶体不同,在大块铁电固溶体中,大的压电响应与三相点附近共存相有关,而在纳米尺度上,纯钛酸钡的最大响应出现在涡旋核心处自发极化极小的空间区域。响应随着远离涡旋的极化而呈反比衰减,类似于随着阳离子组成远离三相点时大块陶瓷中的行为。我们使用基于第一性原理的分子动力学来补充我们的观察结果,我们的结果表明,可以在由涡旋核心控制的参数空间内设计出具有大压电响应的纳米尺度压电材料。我们的发现对下一代纳米尺度压电材料的开发具有启示意义。