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CuInPS范德华层状晶体中的超快非线性吸收和二次谐波产生

Ultrafast Nonlinear Absorption and Second Harmonic Generation in CuInPS van der Waals Layered Crystals.

作者信息

Mushtaq Aamir, Clink Liam, Noor Mohamed Yaseen, Kuz Conrad, DeAngelis Emma, Siebenaller Ryan, Fisher Adam, Verma Darpan, Myers Roberto C, Conner Benjamin S, Susner Michael A, Chowdhury Enam

机构信息

Department of Materials Science and Engineering, Ohio State University, 140 W 19th Ave, Columbus, Ohio43210, United States.

Department of Physics, Ohio State University, 191 W Woodruff Ave, Columbus, Ohio43210, United States.

出版信息

J Phys Chem Lett. 2022 Nov 17;13(45):10513-10521. doi: 10.1021/acs.jpclett.2c02965. Epub 2022 Nov 7.

Abstract

The advancement of ultrafast photonics and optoelectronic devices necessitates the exploration of new materials with optical and chemical stability to implement practical applications. Layered quaternary metal-thio/selenophosphate has attracted much interest over the past few years. Ferroelectric CuInPS (CIPS) is an emerging material that belongs to this family. When synthesized with Cu deficiencies, CIPS forms self-assembled in-plane heterostructures, which in turn exhibit properties that are both compositionally and thermally dependent. These characteristics can be explored for applications in nonlinear optoelectronic and photonic devices. Herein, we study the second and third order nonlinear optical behavior of CuInPS bulk heterostructure. We observed large two photon induced nonlinear absorptions and self-defocusing at 1032 nm pulsed laser excitation using the Z-scan technique. Furthermore, we identified a polarization-dependent second harmonic signal and determined the laser-induced optical damage threshold. Our observations allow for the designing of optoelectronic and ultrafast photonic devices based on these materials.

摘要

超快光子学和光电器件的发展需要探索具有光学和化学稳定性的新材料,以实现实际应用。层状四元金属硫代/硒代磷酸盐在过去几年中引起了广泛关注。铁电体CuInPS(CIPS)是属于这一家族的新兴材料。当在铜缺乏的情况下合成时,CIPS形成自组装的面内异质结构,进而表现出与成分和热相关的特性。这些特性可用于非线性光电器件和光子器件的应用探索。在此,我们研究了CuInPS体异质结构的二阶和三阶非线性光学行为。我们使用Z扫描技术在1032 nm脉冲激光激发下观察到了大的双光子诱导非线性吸收和自散焦现象。此外,我们识别出了偏振相关的二次谐波信号,并确定了激光诱导的光学损伤阈值。我们的观察结果有助于基于这些材料设计光电器件和超快光子器件。

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