Yan Lei, Gong Ziyao, He Qinyong, Shen Dechao, Ge Anping, Dai Ye, Ma Guohong, Sun Liaoxin, Zhang Saifeng
Department of Physics, Shanghai University, Shanghai 200444, China.
State Key Laboratory of Infrared Physics, Shanghai Institute of Technical Physics, Chinese Academy of Sciences, Shanghai 200083, China.
Nanophotonics. 2024 Oct 23;13(24):4429-4439. doi: 10.1515/nanoph-2024-0404. eCollection 2024 Nov.
Optical logic gates based on nonlinear optical property of material with ultrafast response speed and excellent computational processing power can break the performance bottleneck of electronic transistors. As one of the layered 2D materials, TaNiS exhibits high anisotropic mobility, exotic electrical response, and intriguing optical properties. Due to the low-symmetrical crystal structures, it possesses in-plane anisotropic physical properties. The optical absorption information of TaNiS is investigated by anisotropic linear absorption spectra, femtosecond laser intensity scanning (-scan), and non-degenerate pump-probe technology. The -scan results show a distinct maximum of ∼4.9 % saturable absorption (SA) and ∼4 % reverse saturable absorption (RSA) at different polarization directions of the incident laser. And, these unique nonlinear optical (NLO) properties originate from the anisotropic optical transition probability. Furthermore, the novel TaNiS-based all-optical logic gates are proposed by manipulating the NLO absorption processes. And, the all-optical OR and NOR logic gates possess an ultrafast response speed approaching 1.7 THz. Meanwhile, an all-optical information transmission method with higher security and accuracy is achieved, which has promising potential to avoid the disclosure of information. This work provides a new path for designing versatile and novel optical applications based on TaNiS materials.
基于材料的非线性光学特性、具有超快响应速度和出色计算处理能力的光学逻辑门可以突破电子晶体管的性能瓶颈。作为层状二维材料之一,TaNiS具有高各向异性迁移率、奇特的电响应和有趣的光学特性。由于其低对称晶体结构,它具有面内各向异性物理特性。通过各向异性线性吸收光谱、飞秒激光强度扫描(-扫描)和非简并泵浦-探测技术研究了TaNiS的光吸收信息。-扫描结果表明,在入射激光的不同偏振方向上,分别有明显的约4.9%的饱和吸收(SA)和约4%的反饱和吸收(RSA)最大值。而且,这些独特的非线性光学(NLO)特性源于各向异性的光学跃迁概率。此外,通过操纵NLO吸收过程,提出了基于新型TaNiS的全光逻辑门。并且,全光或门和或非门具有接近1.7 THz的超快响应速度。同时,实现了一种具有更高安全性和准确性的全光信息传输方法,具有避免信息泄露的广阔潜力。这项工作为基于TaNiS材料设计多功能新型光学应用提供了一条新途径。