Qi Lu, Ruan Shuangchen, Zeng Yu-Jia
Key laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen, 518060, P. R. China.
College of New Materials and New Energies, Shenzhen Technology University, Shenzhen, 518118, P. R. China.
Adv Mater. 2021 Apr;33(13):e2005098. doi: 10.1002/adma.202005098. Epub 2021 Feb 12.
Although only a few 2D materials have been predicted to possess ferroelectricity, 2D ferroelectrics are expected to play a dominant role in the upcoming nano era as important functional materials. The ferroelectric properties of 2D ferroelectrics are significantly different than those of traditional bulk ferroelectrics owing to their intrinsic size and surface effects. To date, 2D ferroelectrics have been reported to exhibit diverse properties ranging from bulk photovoltaic and piezoelectric/pyroelectric effects to the spontaneous valley and spin polarization. These properties are either dependent on ferroelectric polarization or coupled with it for easy electric control, thus making 2D ferroelectrics applicable to multifunctional nanodevices. At present, cumulative efforts are being made to explore 2D ferroelectrics in theories, experiments, and applications. Herein, such theories and methods are briefly introduced. Subsequently, intrinsic and extrinsic origins of 2D ferroelectricity are separately summarized. In addition, invented or laboratory-validated 2D ferroelectric-based applications are listed. Finally, the existing challenges and prospects of 2D ferroelectrics are discussed.
尽管据预测只有少数二维材料具有铁电性,但二维铁电体作为重要的功能材料,有望在即将到来的纳米时代发挥主导作用。由于其固有的尺寸和表面效应,二维铁电体的铁电性能与传统的体相铁电体有显著不同。迄今为止,据报道二维铁电体表现出多种多样的特性,从体相光伏效应、压电/热释电效应到自发能谷和自旋极化。这些特性要么依赖于铁电极化,要么与之耦合以便于电控制,从而使二维铁电体适用于多功能纳米器件。目前,在理论、实验和应用方面都在不断努力探索二维铁电体。在此简要介绍这些理论和方法。随后,分别总结了二维铁电性的本征和非本征起源。此外,还列举了已发明的或经实验室验证的基于二维铁电体的应用。最后,讨论了二维铁电体目前存在的挑战和前景。