Bistable random momentum transfer in a linear on-chip resonator
Abstract
Optical switches and bifurcation rely on the nonlinear response of materials. Here, we demonstrate linear temporal bifurcation responses in a passive multimode microresonator, with strongly coupled chaotic and whispering gallery modes (WGMs). In microdisks, the chaotic modes exhibit broadband transfer within the deformed cavities, but their transient response is less explored and yields a random output of the analog signal distributed uniformly from “0” to “1.” Here, we build chaotic states by perturbing the multimode microring resonators with densely packed silicon nanocrystals on the waveguide surface. In vivo measurements reveal random and “digitized” output that ONLY populates around 0 and 1 intensity levels. The bus waveguide mode couples first to chaotic modes, then either dissipates or tunnels into stable WGMs. This binary pathway generates high-contrast, digitized outputs. The fully passive device enables real-time conversion of periodic clock signals into binary outputs with contrasts exceeding 12.3 dB, data rates of up to 10 7 · bits per second, and 20 dB dynamic range.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (9)
Tingyi Gu
Department of Electrical Engineering, University of Delaware
Lorry Chang
Department of Electrical Engineering, University of Delaware
Jiagui Wu
Mechanical Engineering, Columbia University
Lijun Wu
Hwaseob Lee
Department of Electrical Engineering, University of Delaware
Young-Kai Chen
Coherent
Masudur Rahim
Department of Electrical Engineering, University of Delaware
Po Dong
Coherent
Chee Wei Wong
Mechanical Engineering, Columbia University