Kalaev Dmitri, Seo Han Gil, Tuller Harry L
Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.
Nanophotonics. 2022 Jun 13;11(17):3943-3952. doi: 10.1515/nanoph-2022-0079. eCollection 2022 Sep.
Temporal and spatial tuning of the refractive index of optical thin films is desired for flat optics applications. The redistribution of mobile ions in mixed ionic-electronic conductors (MIEC) has been demonstrated to serve as a viable means for achieving optical tuning down to the nanoscale. Here we studied the dynamic range of the optical tuning achievable in the refractive index, in the MIEC oxide - Pr Ce O (PCO), for = 0.1, 0.2 and 0.4, at 500 °C, by spectrophotometry. Significant increases in the modulation of both the imaginary and real optical constants in the visible and the adjacent spectra were obtained for increased doping levels. Device employing an electrochemical titration method was implemented to modulate the oxygen concentration, and thereby the optical transmission of PCO. Incorporation of a patterned top electrode allowed for the demonstration of spatial control of PCO thin film properties by video imaging of the optical switching process. The electrochemically induced optical state is shown to remain non-volatile upon quenching the device to room temperature under applied bias.
对于平面光学应用而言,光学薄膜折射率的时空调谐是十分必要的。在混合离子电子导体(MIEC)中,移动离子的重新分布已被证明是实现直至纳米尺度光学调谐的一种可行方法。在此,我们通过分光光度法研究了在500°C下,MIEC氧化物PrCeO(PCO)中,当x = 0.1、0.2和0.4时,折射率可实现的光学调谐动态范围。随着掺杂水平的提高,在可见光及相邻光谱范围内,虚部和实部光学常数的调制均显著增加。采用电化学滴定法的器件用于调节氧浓度,进而调节PCO的光传输。通过对光学开关过程进行视频成像,结合图案化的顶部电极,实现了对PCO薄膜特性的空间控制。结果表明,在施加偏压下将器件淬火至室温后,电化学诱导的光学状态保持非挥发性。