Crystalline FeOCl as a novel saturable absorber for broadband ultrafast photonic applications

IF 10 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Qingxi Zhao, Hongwei Chu, Zhongben Pan, Han Pan, Shengzhi Zhao, Dechun Li
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Abstract

Due to their tunable nonlinear coefficients, minimal energy loss, and high carrier densities, two-dimensional van der Waals materials have found extensive use as saturable absorbers for generating ultra-short pulses. The layered FeOCl material, a typical van der Waals material, demonstrates controllable optical properties through physical or chemical methods. However, its nonlinear optical characteristics have received limited attention. To explore the nonlinear optical properties of FeOCl in the near-infrared region, we synthesized crystalline FeOCl via a partial pyrolysis method and evaluated its broadband nonlinear absorption at 1.5-μm and 1-μm bands using an in-line balanced twin detector system. The results showed a modulation depth of 2.67 % and a saturation intensity of 4.62 MW cm−2 at the 1.5-μm band, while at the 1-μm band, the modulation depth was 2.81 % and the saturation intensity was 4.04 MW cm−2. Furthermore, FeOCl saturable absorbers were connected to Er-doped and Yb-doped fiber lasers, resulting in distinct mode-locking behaviors. Conventional soliton mode-locking was achieved in the Er-doped fiber laser, yielding a central wavelength of 1564.8 nm and a pulse duration of 1.11 ps. Noise-like pulse mode-locking was observed in the Yb-doped fiber laser with a central wavelength of 1034.1 nm and a pulse duration of 572 fs. These findings highlight the superior nonlinear optical properties of crystalline FeOCl material and its significant potential for near-infrared applications, paving the way for its future use in advanced ultrafast photonics.

Abstract Image

Abstract Image

晶体FeOCl作为宽带超快光子应用的新型饱和吸收材料
由于二维范德华材料具有非线性系数可调、能量损失最小和载流子密度高的特点,它们被广泛用作产生超短脉冲的可饱和吸收材料。层状FeOCl材料是一种典型的范德华材料,通过物理或化学方法证明了可控制的光学特性。然而,对其非线性光学特性的研究却很少。为了探索FeOCl在近红外区域的非线性光学性质,我们采用部分热解法合成了FeOCl晶体,并利用在线平衡双探测器系统评估了其在1.5 μm和1 μm波段的宽带非线性吸收。结果表明,在1.5 μm波段,调制深度为2.67%,饱和强度为4.62 MW cm-2;在1 μm波段,调制深度为2.81%,饱和强度为4.04 MW cm-2。此外,FeOCl可饱和吸收器连接到掺铒和掺镱光纤激光器,产生不同的锁模行为。在掺铒光纤激光器中实现了传统的孤子锁模,中心波长为1564.8 nm,脉冲持续时间为1.11 ps,在掺镱光纤激光器中实现了类噪声脉冲锁模,中心波长为1034.1 nm,脉冲持续时间为572 fs。这些发现突出了晶体FeOCl材料优越的非线性光学特性及其在近红外应用中的巨大潜力,为其未来在先进超快光子学中的应用铺平了道路。
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来源期刊
Materials Today Physics
Materials Today Physics Materials Science-General Materials Science
CiteScore
14.00
自引率
7.80%
发文量
284
审稿时长
15 days
期刊介绍: Materials Today Physics is a multi-disciplinary journal focused on the physics of materials, encompassing both the physical properties and materials synthesis. Operating at the interface of physics and materials science, this journal covers one of the largest and most dynamic fields within physical science. The forefront research in materials physics is driving advancements in new materials, uncovering new physics, and fostering novel applications at an unprecedented pace.
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