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铜功能化的SnSe纳米片实现超快光子学的非线性光学特性

Copper Functionalized SnSe Nanoflakes Enabling Nonlinear Optical Features for Ultrafast Photonics.

作者信息

Ren Ke, Yuan Hualei, Pan Zhongben, Li Zongsheng, Pan Han, Chu Hongwei, Li Dechun

机构信息

School of Information Science and Engineering, and Key Laboratory of Laser and Infrared System of Ministry of Education, Shandong University, Qingdao, 266237, China.

Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, 266101, China.

出版信息

Adv Sci (Weinh). 2024 Oct;11(38):e2401218. doi: 10.1002/advs.202401218. Epub 2024 Jul 24.

Abstract

This study enhances the ultrafast photonics application of tin selenide (SnSe) nanoflakes via copper (Cu) functionalization to overcome challenges such as low conductivity and weak near-infrared (NIR) absorption. Cu functionalization enhances concentration, induces strain, and reduces the bandgap through Sn substitution and Sn vacancy filling with Cu ions. Demonstrated by density functional theory calculations and experimental analyses, Cu-functionalized SnSe exhibits improved NIR optical absorption and superior third-order nonlinear optical properties. Z-scan measurements and femtosecond transient absorption spectroscopy reveal better performance of Cu-functionalized SnSe in terms of nonlinear optical properties and shorter carrier relaxation times compared to pristine SnSe. Furthermore, saturable absorbers based on both SnSe types, when integrated into an erbium-doped fiber laser, show that Cu functionalization leads to a decrease in pulse duration to 798 fs and an increase in 3 dB spectral bandwidth to 3.44 nm. Additionally, it enables stable harmonic mode-locking of bound-state solitons. This work suggests a new direction for improving wide bandgap 2D materials by highlighting the enhanced nonlinear optical properties and potential of Cu-functionalized SnSe in ultrafast photonics.

摘要

本研究通过铜(Cu)功能化增强了硒化锡(SnSe)纳米片的超快光子学应用,以克服诸如低导电性和近红外(NIR)吸收较弱等挑战。铜功能化提高了载流子浓度,诱导了应变,并通过用铜离子替代锡和填充锡空位来减小带隙。密度泛函理论计算和实验分析表明,铜功能化的SnSe表现出改善的近红外光吸收和优异的三阶非线性光学性质。Z扫描测量和飞秒瞬态吸收光谱表明,与原始SnSe相比,铜功能化的SnSe在非线性光学性质和更短的载流子弛豫时间方面表现出更好的性能。此外,基于这两种类型SnSe的可饱和吸收体集成到掺铒光纤激光器中时,表明铜功能化导致脉冲持续时间缩短至798 fs,3 dB光谱带宽增加至3.44 nm。此外,它还能实现束缚态孤子的稳定谐波锁模。这项工作通过突出铜功能化的SnSe在超快光子学中增强的非线性光学性质和潜力,为改善宽带隙二维材料指明了一个新方向。

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