Fast Multichannel Inverse Design through Augmented Partial Factorization.
ACS Photonics
; 11(2): 378-384, 2024 Feb 21.
Article
em En
| MEDLINE
| ID: mdl-38405390
ABSTRACT
Computer-automated design and discovery have led to high-performance nanophotonic devices with diverse functionalities. However, massively multichannel systems such as metasurfaces controlling many incident angles and photonic-circuit components coupling many waveguide modes still present a challenge. Conventional methods require Min forward simulations and Min adjoint simulations-2Min simulations in total-to compute the objective function and its gradient for a design involving the response to Min input channels. Here, we develop a formalism that uses the recently proposed augmented partial factorization method to obtain both the objective function and its gradient for a massively multichannel system in a single or a few simulations, achieving over 2 orders of magnitude speedup and reduced memory usage. We use this method to inverse design a metasurface beam splitter that separates the incident light to the target diffraction orders for all incident angles of interest, a key component of the dot projector for 3D sensing. This formalism enables efficient inverse design for a wide range of multichannel optical systems.
Texto completo:
1
Base de dados:
MEDLINE
Idioma:
En
Revista:
ACS Photonics
Ano de publicação:
2024
Tipo de documento:
Article
País de afiliação:
Estados Unidos