Department of Mechanical Engineering, National University of Singapore, 9 Engineering Drive 1, Singapore, 117576, Singapore.
Department of Chemical and Biomolecular Engineering, National University of Singapore, 4 Engineering Drive 4, Singapore, 117585, Singapore.
Nanoscale. 2017 Aug 24;9(33):12163-12169. doi: 10.1039/c7nr04245k.
Experimental investigation of functional properties of metal-organic frameworks (MOFs) at nanoscale precision is challenging and rarely reported. In this study, we report the piezo- and ferroelectric properties of NUS-6 MOF nanocrystals using dual AC resonance tracking piezoresponse force microscopy and piezoresponse force spectroscopy for the first time. Both NUS-6-(Hf) and NUS-6-(Zr) nanocrystals displayed anomalous piezoelectricity with the calculated piezoelectric coefficient d constants of 2.0-3.5 pm V and 1.5-2.5 pm V, respectively. Moreover, NUS-6-(Hf) showed much better polarization-switching behaviors (ferroelectricity) than NUS-6-(Zr), featured by very low coercive biases in the ferroelectric hysteresis (PR) loop. Furthermore, elasticity and thermal stability of the NUS-6 nanocrystals have been presented. The results have opened a realm of probing piezo- and ferro-electric properties as well as mechanical properties of MOF nanocrystals, which are promising materials for applications in integrated microelectromechanical systems (MEMS).
对纳米级精度的金属有机骨架(MOF)的功能特性进行实验研究具有挑战性,且鲜有报道。在本研究中,我们首次使用双交流共振跟踪压电力显微镜和压电力光谱法报告了 NUS-6 MOF 纳米晶体的压电和铁电性能。NUS-6-(Hf)和 NUS-6-(Zr)纳米晶体均表现出异常的压电性,计算得到的压电系数 d 常数分别为 2.0-3.5 pm V 和 1.5-2.5 pm V。此外,NUS-6-(Hf)表现出比 NUS-6-(Zr)更好的极化开关行为(铁电性),其铁电滞后(PR)回线中的矫顽偏置非常低。此外,还呈现了 NUS-6 纳米晶体的弹性和热稳定性。这些结果为探测 MOF 纳米晶体的压电和铁电性能以及机械性能开辟了一个领域,这些性能有望在集成微机电系统(MEMS)中得到应用。