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单晶中低损耗横截面可变型I类光波导无源/有源集成器件的3D激光写入

3D Laser Writing of Low-Loss Cross-Section-Variable Type-I Optical Waveguide Passive/Active Integrated Devices in Single Crystals.

作者信息

Chen Daoyuan, Chen Zhi, Yang Yi, Wang Yuying, Han Xuhu, Lau Kuen Yao, Wu Zhemin, Zou Chen, Zhang Yu, Xu Beibei, Liu Xiaofeng, Ma Zhijun, Dong Guoping, Barillaro Giuseppe, Zhong Lijing, Qiu Jianrong

机构信息

State Key Laboratory of Extreme Photonics and Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou, 310027, China.

Zhejiang Lab, Hangzhou, 311100, China.

出版信息

Adv Mater. 2024 Aug;36(32):e2404493. doi: 10.1002/adma.202404493. Epub 2024 Jun 12.

Abstract

Optical waveguides fabricated in single crystals offer crucial passive/active optical components for photonic integrated circuits. Single crystals possess inherent advantages over their amorphous counterpart, such as lower optical losses in visible-to-mid-infrared band, larger peak emission cross-section, higher doping concentration. However, the writing of Type-I positive refractive index modified waveguides in single crystals using femtosecond laser technology presents significant challenges. Herein, this work introduces a novel femtosecond laser direct writing technique that combines slit-shaping with an immersion oil objective to fabricate low-loss Type-I waveguides in single crystals. This approach allows for precise control of waveguide shape, size, mode-field, and refractive index distribution, with a spatial resolution as high as 700 nm and a high positive refractive index variation on the order of 10, introducing new degrees of freedom to design and fabricate passive/active optical waveguide devices. As a proof-of-concept, this work successfully produces a 7 mm-long circular-shaped gain waveguide (≈10 µm in diameter) in an Er-doped YAG single crystal, exhibiting a propagation loss as low as 0.23 dB cm, a net gain of ≈3 dB and a polarization-insensitive character. The newly-developed technique is theoretically applicable to arbitrary single crystals, holding promising potential for various applications in integrated optics, optical communication, and photonic quantum circuits.

摘要

在单晶体中制造的光波导为光子集成电路提供了关键的无源/有源光学元件。与非晶态对应物相比,单晶体具有固有优势,例如在可见光到中红外波段的光损耗更低、峰值发射截面更大、掺杂浓度更高。然而,使用飞秒激光技术在单晶体中写入I型正折射率改性波导面临重大挑战。在此,这项工作介绍了一种新颖的飞秒激光直写技术,该技术将狭缝整形与浸油物镜相结合,以在单晶体中制造低损耗的I型波导。这种方法能够精确控制波导的形状、尺寸、模场和折射率分布,空间分辨率高达700纳米,正折射率变化高达10的量级,为无源/有源光波导器件的设计和制造引入了新的自由度。作为概念验证,这项工作在掺铒钇铝石榴石单晶体中成功制造了一条7毫米长的圆形增益波导(直径约10微米),其传播损耗低至0.23分贝/厘米,净增益约为3分贝,并且具有偏振不敏感特性。新开发的技术理论上适用于任意单晶体,在集成光学、光通信和光子量子电路的各种应用中具有广阔的前景。

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