材料科学
压电
纤锌矿晶体结构
剥脱关节
平面的
纳米
基质(水族馆)
纳米技术
纳米材料
纳米压痕
压电系数
金属
复合材料
石墨烯
锌
冶金
计算机图形学(图像)
地质学
海洋学
计算机科学
作者
Nasir Mahmood,Hareem Khan,Kevin Tran,K. Pramoda,Ali Zavabeti,Paul Atkin,Mohammad B. Ghasemian,Jiong Yang,Chenglong Xu,Sherif Abdulkader Tawfik,Michelle J. S. Spencer,Jian Zhen Ou,Khashayar Khoshmanesh,Christopher McConville,Yongxiang Li,Kourosh Kalantar‐zadeh
标识
DOI:10.1016/j.mattod.2020.11.016
摘要
Synthesizing two dimensional (2D) nanomaterials with controlled sub-nanometer thicknesses from non-layered crystals presents both significant challenges and vast opportunities. However, mechanical exfoliation techniques and physical/wet chemical deposition processes are widely disadvantageous for applicability to non-layered structures. Here we have utilized a simple self-limiting approach to prepare large sheets of 2D zinc oxide (ZnO) at the metal-melt/air interface. These ultra-thin sheets demonstrated highly crystalline hexagonal structures. The specific ZnO hexagonal sheet thickness and its interaction with the substrate were found to have a critical impact on d33. This unusual structure resulted in an exceptionally high out of plane piezoelectricity, yielding a giant value of 80 ± 0.8 pm/V at 2.5 unit-cell thickness for d33, which is 5 Zn-O layers in the wurtzite crystal. This out of plane piezoelectricity value is approximately 8 times larger than that of the value for bulk ZnO. Theoretical studies were carried out to elucidate the impact of the thickness and the substrate's role on the polarization of the layers. The existence of a large piezoelectricity offered by the synergy of the substrate and specific thickness of ultrathin films offers the opportunity for other groups of potentially piezoelectric materials to be explored.
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