Microresonator photonic wire bond integration for Kerr-microcomb generation

Zakary Burkley, Alain Takabayashi,Nikolay Pavlov,Victoria Rosborough, Galen Hoffman, Farzad Mokhtari-Koushyar, Taran Huffman, Mike Nelson,Charles Turner,Leif Johansson, Juergen Musolf,Henry Garrett, Thomas Liu,Gordon Morrison,Yanne Chembo, Brian Mattis, Thien-An Nguyen, Mackenzie Van Camp, Steven Turner,Maxim Karpov,John Jost, Lou Kanger

crossref(2024)

引用 0|浏览0
暂无评分
摘要
Abstract Extremely high-Q microresonators provide an attractive platform for a plethora of photonic applications including optical frequency combs, high-precision metrology, telecommunication, microwave generation, narrow linewidth lasers, and stable frequency references. Moreover, the desire for compactness and a low power threshold for nonlinear phenomena have spurred investigation into integrated and scalable solutions. Historically, crystalline microresonators with Q~10^9 were one of the first material platforms providing unprecedented optical performance in a small form factor. A key challenge, though, with these devices is in finding alternatives to fragile, bulky, and free-space couplers, such as tapered fibers, prisms, and cleaved fibers. Here, we present for the first time, the coupling of a photonic wire bond (PWB) to a MgF2-based microresonator to generate solitons and a pure, low-noise microwave signal based on Kerr-microcombs. These results open a path towards scalable heterogeneous integration of crystalline microresonators with integrated photonics. Moreover, because PWBs possess advantages over traditional coupling elements in terms of ease of fabrication, size, and flexibility, they constitute a more advanced optical interface for linear and nonlinear photonics.
更多
查看译文
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要