Broadband Saturable Absorption Response of Metallic (Nb and Ta) Carbides for Photonic Devices

IF 2.5 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Erkang Li, Chunhui Lu, Yanqing Ge, Yayan Xi, Xinlong Xu
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引用次数: 0

Abstract

Metallic carbides such as NbC and TaC, as emerging 2D materials, show excellent conductivity, broadband linear optical response, as well as strong light-matter interaction. However, exploring the nonlinear optical properties of the NbC and TaC is still absent in the optical communication band, which is desirable to boost the development of broadband photonic devices. Herein, dispersion-less broadband saturable absorption in the near-infrared wavelength in both NbC and TaC by a Z-scan system is observed. The nonlinear absorption coefficients of NbC and TaC are superior to those of graphene, Nb2C, and Ta2C MXenes, which can be described well with a three-level model. Motivated by the excellent saturable absorption property in the near-infrared region, all-optical modulators with high modulation depth as well as Q-switched lasers with µs-level pulse width at 1550 nm are successfully achieved. This work suggests a great potential of metallic carbides for high-performance of photonic devices.

Abstract Image

光子器件中金属(Nb和Ta)碳化物的宽带可饱和吸收响应
金属碳化物(如NbC和TaC)作为新兴的二维材料,具有优异的导电性、宽带线性光学响应以及强的光-物质相互作用。然而,在光通信波段,对NbC和TaC的非线性光学性质的探索仍然缺乏,这对于促进宽带光子器件的发展是可取的。本文用z扫描系统观察了NbC和TaC在近红外波段的无色散宽带可饱和吸收。NbC和TaC的非线性吸收系数优于石墨烯、Nb2C和Ta2C MXenes,这可以用三能级模型很好地描述。在近红外区域优异的饱和吸收特性的激励下,成功地实现了高调制深度的全光调制器以及脉冲宽度为1550 nm的µs级调q激光器。这表明金属碳化物在高性能光子器件中具有巨大的潜力。
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来源期刊
Annalen der Physik
Annalen der Physik 物理-物理:综合
CiteScore
4.50
自引率
8.30%
发文量
202
审稿时长
3 months
期刊介绍: Annalen der Physik (AdP) is one of the world''s most renowned physics journals with an over 225 years'' tradition of excellence. Based on the fame of seminal papers by Einstein, Planck and many others, the journal is now tuned towards today''s most exciting findings including the annual Nobel Lectures. AdP comprises all areas of physics, with particular emphasis on important, significant and highly relevant results. Topics range from fundamental research to forefront applications including dynamic and interdisciplinary fields. The journal covers theory, simulation and experiment, e.g., but not exclusively, in condensed matter, quantum physics, photonics, materials physics, high energy, gravitation and astrophysics. It welcomes Rapid Research Letters, Original Papers, Review and Feature Articles.
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