Department of Electronics and Electrical Engineering, Faculty of Science and Technology, Keio University, 3-14-1, Hiyoshi, Kohoku-ku, Yokohama, 223-8522, Japan.
Advanced ICT Research Institute, National Institute of Information and Communications Technology, 4-2-1 Nukuikitamachi, Koganei City, Tokyo, 184-8795, Japan.
Sci Rep. 2017 Sep 6;7(1):10688. doi: 10.1038/s41598-017-10035-4.
All-optical tunable buffering was recently achieved on a chip by using dynamically tuned coupled mode induced transparency, which is an optical analogue of electromagnetically induced transparency. However, the small Q s of about 10 used in those systems were limiting the maximum buffering time to a few hundred ps. Although employing an ultra-high Q whispering gallery mode (WGM) microcavity can significantly improve the maximum buffering time, the dynamic tuning of the WGM has remained challenging because thermo-optic and pressure tunings, which are widely used for WGM microcavities, have a very slow response. Here we demonstrate all-optical tunable buffering utilizing coupled ultra-high Q WGM cavities and the Kerr effect. The Kerr effect can change the refractive index instantaneously, and this allowed us to tune the WGM cavity very quickly. In addition, from among the various WGM cavities we employed a silica toroid microcavity for our experiments because it has an ultra-high Q factor (>2 × 10) and a small mode volume, and can be fabricated on a chip. Use of the Kerr effect and the silica toroid microcavity enabled us to observe an on-chip all-optical tunable buffering operation and achieve a maximum buffering time of 20 ns.
最近,人们通过使用动态调谐的耦合模式诱导透明效应在芯片上实现了全光可调缓冲,这是电磁感应透明的光学模拟。然而,这些系统中使用的 Q 值约为 10,限制了最大缓冲时间仅为几百皮秒。虽然采用超高 Q 值的回音壁模式(WGM)微腔可以显著提高最大缓冲时间,但 WGM 的动态调谐仍然具有挑战性,因为广泛用于 WGM 微腔的热光和压力调谐的响应速度非常慢。在这里,我们利用耦合的超高 Q 值 WGM 腔和克尔效应演示了全光可调缓冲。克尔效应可以瞬时改变折射率,这使得我们能够非常快速地调谐 WGM 腔。此外,在我们所采用的各种 WGM 腔中,我们选择使用二氧化硅微环作为实验腔,因为它具有超高 Q 值(>2×10)和小的模式体积,并且可以在芯片上制造。克尔效应和二氧化硅微环的使用使我们能够观察到芯片上的全光可调缓冲操作,并实现了 20 纳秒的最大缓冲时间。