Wang Lei, Zhang Dawei, Luo Zheng-Dong, Taylor Patrick D, Tran Kevin, Ming Wenjie, Tang Jianbo, Sharma Pankaj, Spencer Michelle J S, Seidel Jan
School of Materials Science and Engineering, UNSW Sydney, Sydney NSW 2052, Australia.
ARC Centre of Excellence in Future Low-Energy Electronics Technologies (FLEET), UNSW Sydney, Sydney NSW 2052, Australia.
Mater Horiz. 2024 Dec 9;11(24):6486-6496. doi: 10.1039/d4mh00876f.
van der Waals ferroelectric CuInPS (CIPS) has drawn significant attention not only because of its unique properties but also owing to its technological potential for nanoelectronics. Mechanical polarization switching provides a new approach to modulating polarization states through flexoelectricity. This approach is particularly favourable for CIPS to avoid surface damage under an electric field due to the coupling between polarization switching and ionic motion. Here, we report anomalous downward-to-upward polarization switching under tip force in CIPS nanoflakes, which is believed to stem from the competition between piezoelectric and flexoelectric fields induced by tip pressure, together with the unique quadruple-well state present in CIPS. This work provides novel insights into the polarization switching mechanism of CIPS, elucidating the interplay between competing piezoelectric and flexoelectric fields, and it may pave the way for the design of electromechanical devices based on flexoelectric engineering.
范德华铁电体CuInPS(CIPS)不仅因其独特的性质,还因其在纳米电子学方面的技术潜力而备受关注。机械极化切换通过挠曲电效应提供了一种调制极化状态的新方法。这种方法对CIPS特别有利,可避免在电场下由于极化切换和离子运动之间的耦合而导致的表面损伤。在此,我们报道了CIPS纳米薄片在尖端力作用下出现的异常从下向上的极化切换,这被认为源于尖端压力引起的压电场和挠曲电场之间的竞争,以及CIPS中存在的独特四阱状态。这项工作为CIPS的极化切换机制提供了新的见解,阐明了竞争的压电场和挠曲电场之间的相互作用,并且可能为基于挠曲电工程的机电设备设计铺平道路。