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Thickness-Dependent Piezoelectric Property from Quasi-Two-Dimensional Zinc Oxide Nanosheets with Unit Cell Resolution

机译:来自四维二维氧化锌纳米片的厚度依赖性压电性能单位电池分辨率

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摘要

A quantitative understanding of the nanoscale piezoelectric property will unlock many application potentials of the electromechanical coupling phenomenon under quantum confinement. In this work, we present an atomic force microscopy- (AFM-) based approach to the quantification of the nanometer-scale piezoelectric property from single-crystalline zinc oxide nanosheets (NSs) with thicknesses ranging from 1 to 4 nm. By identifying the appropriate driving potential, we minimized the influences from electrostatic interactions and tip-sample coupling, and extrapolated the thickness-dependent piezoelectric coefficient (d33). By averaging the measured d33 from NSs with the same number of unit cells in thickness, an intriguing tri-unit-cell relationship was observed. From NSs with 3n unit cell thickness (n = 1, 2, 3), a bulk-like d33 at a value of ~9 pm/V was obtained, whereas NSs with other thickness showed a ~30% higher d33 of ~12 pm/V. Quantification of d33 as a function of ZnO unit cell numbers offers a new experimental discovery toward nanoscale piezoelectricity from nonlayered materials that are piezoelectric in bulk.
机译:对纳米级压电性质的定量理解将在量子禁闭下解锁机电耦合现象的许多应用势。在这项工作中,我们介绍了一种基于原子力显微镜(AFM-)的方法,以从单晶锌氧化物纳米片(NSS)的纳米压电性能的定量方法,厚度范围为1至4nm。通过识别适当的驾驶电位,我们最小化了静电相互作用和尖端样品耦合的影响,并推断出厚度依赖性压电系数(D33)。通过在厚度的具有相同数量的单位单元的NSS平均测量的D33,观察到有趣的三单元细胞关系。从具有3N单元厚度的NSS(n = 1,2,3),获得〜9μm/ v值的体状D33,而具有其他厚度的NSS显示为〜12 pm的d33〜30% / v。作为ZnO单位细胞编号的作为函数的D33的定量提供了一种向散装中压电的非粘土材料的纳米级压电的新实验发现。

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