Advanced Photonics, Volume. 4, Issue 4, 046005(2022)
Thin liquid film as an optical nonlinear-nonlocal medium and memory element in integrated optofluidic reservoir computer On the Cover
Fig. 1. Schematic description of the key components in the integrated optofluidic system under study describing the underlying mechanism of the light–liquid interaction and the memory used for RC. (a) 3D perspective presenting a box-shaped liquid cell of length
Fig. 2. Numerical multiphysics simulation results presenting self-induced phase change in a single active WG covered with a thin liquid film. (a) Deformed gas–liquid interface under 0.1-mW CW light-induced TC effect at time
Fig. 3. Numerical results demonstrating self-induced nonlocal interaction between two adjacent WGs in (a)–(c) the close and (d)–(f) far separation regimes, due to continuous TM mode of wavelength 1550 nm injected to the active WG leading to TC-driven deformation of the liquid film; geometric parameters of WGs and the gold patch are provided in
Fig. 4. Numerical simulation results of the self-induced transmittance and reflection effects. (a) The underlying 3D geometric setup of the periodic SiN Bragg WG on silica substrate and (b) the corresponding 2D normal cross section in the
Fig. 5. Simulation results presenting RC computing of the XOR task by employing self-induced phase change (nonlinear) and self-induced coupling change (nonlocal) effects. (a) Schematic diagram presenting the MZI circuit with two linear couplers, where the liquid cell introduces self-induced phase change in one of the arms measured by a pair of detectors
Fig. 6. RC of analog task: classification of hand-written “zero” and “one” digits. (a) Sample of 20 images each of size
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Chengkuan Gao, Prabhav Gaur, Shimon Rubin, Yeshaiahu Fainman, "Thin liquid film as an optical nonlinear-nonlocal medium and memory element in integrated optofluidic reservoir computer," Adv. Photon. 4, 046005 (2022)
Category: Research Articles
Received: May. 6, 2022
Accepted: Jun. 21, 2022
Published Online: Jul. 25, 2022
The Author Email: Rubin Shimon (rubin.shim@gmail.com)