Zhang Zheng-Tao, Yang Qi-Qi, Zhen Xiao-Juan, Feng Zhan-Zu, Zhai Xin-Ping, Zhang Xiao-Dong, Huang Yi-Fan, Wang Qiang, Zhang Hao-Li
State Key Laboratory of Applied Organic Chemistry (SKLAOC), Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province, College of Chemistry and Chemical Engineering, Key Laboratory of Special Function Materials and Structure Design, Ministry of Education, Lanzhou University, Lanzhou 730000, China.
School of Electronic and Information Engineering, Lanzhou City University, Lanzhou 730000, China.
ACS Appl Mater Interfaces. 2021 May 12;13(18):21626-21634. doi: 10.1021/acsami.1c03042. Epub 2021 Apr 27.
The ever-increasing space exploration enterprise calls for novel and high-quality radiation-resistant materials, among which nonlinear optical materials and devices are particularly scarce. Two-dimensional (2D) materials have shown promising potential, but the radiation effects on their nonlinear optical properties remain largely elusive. We previously fabricated 2D bismuthene for mode-locking sub-ns laser; herein, their space adaption was evaluated under a simulated space radiation environment. The as-synthesized thin layers of bismuthene exhibited strong third-order nonlinear optical responses extending into the near-infrared region. Remarkably, when exposed to Co γ-rays and electron irradiation, the bismuthene showed only slight degradation in saturable absorption behaviors that were critical for mode-locking in space. Ultrafast spectroscopy was applied to address the radiation effects and damage mechanisms that are difficult to understand by routine techniques. This work offers a new bottom-up approach for preparing 2D bismuthene, and the elucidation of its fundamental excited-state dynamics after radiation also provides a guideline to optimize the material for eventual space applications.
不断发展的太空探索事业需要新型且高质量的抗辐射材料,其中非线性光学材料和器件尤为稀缺。二维(2D)材料已展现出巨大潜力,但其非线性光学性质的辐射效应仍 largely 难以捉摸。我们之前制备了用于锁模亚纳秒激光器的二维铋烯;在此,我们在模拟太空辐射环境下评估了它们的空间适应性。合成的铋烯薄层表现出延伸至近红外区域的强烈三阶非线性光学响应。值得注意的是,当暴露于钴γ射线和电子辐照时,铋烯在对太空锁模至关重要的饱和吸收行为中仅表现出轻微降解。超快光谱学被用于研究常规技术难以理解的辐射效应和损伤机制。这项工作为制备二维铋烯提供了一种新的自下而上的方法,对其辐射后基本激发态动力学的阐释也为最终优化该材料以用于太空应用提供了指导。