Ni Lifa, Li Xiaojin, Zhao Zhibin, Nam Jongwoo, Wu Pengfei, Wang Qingling, Lee Takhee, Liu Hongliang, Xiang Dong
Tianjin Key Laboratory of Micro-scale Optical Information Science and Technology, Institute of Modern Optics, Nankai University, Tianjin 300350, China.
Center of Single Molecule Sciences, College of Electronic Information and Optical Engineering, Nankai University, Tianjin 300350, China.
ACS Appl Mater Interfaces. 2021 Jun 30;13(25):29885-29893. doi: 10.1021/acsami.0c22925. Epub 2021 Jun 17.
Both ferroelectric crystals and liquid metal electrodes have attracted extensive attention for potential applications in next-generation devices and circuits. However, the interface information between ferroelectric crystals and liquid metal electrodes has so far been lacking. To better understand the optoelectronic properties of microscale ferroelectric crystals (potassium tantalate niobate, KTN) and its potential integration with liquid metal electrodes (a "printing ink" for flexible electric circuit production), microscale KTN crystals sandwiched by eutectic gallium indium (EGaIn, a liquid metal) with varied contact geometries were studied. Unlike the bulk KTN crystal junctions, the microscale KTN junctions show electrical rectifying characteristics upon light illumination, and the directionality of the rectification can be reversed by increasing the ambient temperature to a few degrees. Furthermore, a strong suppression of the current upon increasing voltage, that is, the quasi-negative differential resistance, is observed when the microscale KTN is half-enclosed by the EGaIn electrode. Our results show that trapping/detrapping of carriers affected by the crystal size and the ambient temperature is the dominant physical mechanism for these observations. These results not only facilitate a better understanding of charge transport through the microscale ferroelectric crystals but also advance the design of miniaturized hybrid devices.
铁电晶体和液态金属电极在下一代器件和电路的潜在应用中都引起了广泛关注。然而,迄今为止,铁电晶体和液态金属电极之间的界面信息尚付阙如。为了更好地理解微尺度铁电晶体(铌酸钾钽,KTN)的光电特性及其与液态金属电极(用于柔性电路生产的“印刷油墨”)的潜在集成,研究了由具有不同接触几何形状的共晶镓铟(EGaIn,一种液态金属)夹在中间的微尺度KTN晶体。与块状KTN晶体结不同,微尺度KTN结在光照下表现出整流特性,并且通过将环境温度升高几度可以反转整流的方向性。此外,当微尺度KTN被EGaIn电极半包围时,观察到电压增加时电流受到强烈抑制,即准负微分电阻。我们的结果表明,受晶体尺寸和环境温度影响的载流子俘获/去俘获是这些观察结果的主要物理机制。这些结果不仅有助于更好地理解通过微尺度铁电晶体的电荷传输,而且推动了小型化混合器件的设计。