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激光刻蚀金刚石波导与金刚石微球共振耦合。

Laser-Inscribed Diamond Waveguide Resonantly Coupled to Diamond Microsphere.

机构信息

Department of Physics, Microphotonics Research Laboratory, Koç University, Rumelifeneri Yolu, Sarıyer, 34450 Istanbul, Turkey.

Department of Electrical Engineering and Computer Science, University of California, Irvine, CA 92697, USA.

出版信息

Molecules. 2020 Jun 10;25(11):2698. doi: 10.3390/molecules25112698.

Abstract

An all-diamond photonic circuit was implemented by integrating a diamond microsphere with a femtosecond-laser-written bulk diamond waveguide. The near surface waveguide was fabricated by exploiting the Type II fabrication method to achieve stress-induced waveguiding. Transverse electrically and transverse magnetically polarized light from a tunable laser operating in the near-infrared region was injected into the diamond waveguide, which when coupled to the diamond microsphere showed whispering-gallery modes with a spacing of 0.33 nm and high-quality factors of 10. By carefully engineering these high-quality factor resonances, and further exploiting the properties of existing nitrogen-vacancy centers in diamond microspheres and diamond waveguides in such configurations, it should be possible to realize filtering, sensing and nonlinear optical applications in integrated diamond photonics.

摘要

通过将金刚石微球与飞秒激光写入的块状金刚石波导集成,实现了全金刚石光子回路。近表面波导是通过利用 II 型制造方法来实现应力诱导波导而制造的。可调谐激光在近红外区域产生的横电和横磁偏振光被注入到金刚石波导中,当与金刚石微球耦合时,显示出具有 0.33nm 间距和 10 的高品质因数的 whispering-gallery 模式。通过仔细设计这些高品质因数共振,并进一步利用金刚石微球和金刚石波导中现有氮空位中心的特性,可以在集成金刚石光子学中实现滤波、传感和非线性光学应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e5e/7321077/f94b1b6bca77/molecules-25-02698-g001.jpg

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