A Novel Approach to Nanophotonic Black-Box Optimization Through Reinforcement Learning

Butz, Marco; Leifhelm, Alexander; Becker, Marlon; Risse, Benjamin; Schuck, Carsten

Forschungsartikel in Sammelband (Konferenz) | Peer reviewed

Zusammenfassung

After the use of Photonic integrated circuits (PICs) has led to a significant increase in the performance of devices employed in classical telecommunication schemes in the last years, complex quantum optics experiments have recently undergone a similar transition from free space setups to PICs. This development poses challenging requirements on the PICs' individual components in both footprint and performance and even raises the need for novel functionalities that are not accessible by conventional design methods. Recently, various design algorithms addressing this problem have been demonstrated. However, they all suffer from various drawbacks such as reliance on convex optimization methods in non-convex environments or the presence of gradient fields, which cannot always be accessed easily. Here, we show a novel inverse-design method based on reinforcement learning capable of producing pixel-discrete nanophotonic devices with arbitrary functionality and small footprints. Freely configurable design constraints can be realized through multiple interfaces enabling manipulation of the internal data flow. To demonstrate the capabilities of our method we show the fully automated design of a silicon-on-insulator waveguide-mode converter with > 95% conversion efficiency from scratch.

Details zur Publikation

Herausgeber*innenDPG
BuchtitelQ 30 Nano-optics
Seitenbereich1-1
ArtikelnummerQ 30.1
VerlagDeutsche Physikalische Gesellschaft
ErscheinungsortHannover
StatusVeröffentlicht
Veröffentlichungsjahr2023
Konferenz𝗗𝗣𝗚 𝗦𝗽𝗿𝗶𝗻𝗴𝗺𝗲𝗲𝘁𝗶𝗻𝗴 𝟮𝟬𝟮𝟯, Hannover, Deutschland
Link zum Volltexthttps://www.dpg-verhandlungen.de/year/2023/conference/samop/part/q/session/30/contribution/1
StichwörterPhotonic integrated circuits; reinforcement learning; Nanophotonic Black-Box Optimization; Inverse design; design constraints; mode converter; silicon-on-insulator waveguide-mode converter

Autor*innen der Universität Münster

Becker, Marlon
Professur für Geoinformatics for Sustainable Development (Prof. Risse)
Butz, Marco
Professur für Experimentelle Physik (Prof. Schuck)
Risse, Benjamin
Professur für Geoinformatics for Sustainable Development (Prof. Risse)
Schuck, Carsten
Professur für Experimentelle Physik (Prof. Schuck)