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Nanophotonic device design based on large language models: multilayer and metasurface examples.
Myungjoon Kim1, Hyeonjin Park1, Jonghwa Shin1
1KAIST, Daejeon, Republic of Korea.
Nanophotonics (Berlin, Germany)
|April 28, 2025
Summary
Large language models (LLMs) can now design nanophotonic devices. These AI tools enable nonexperts to create optical multilayer films and metasurfaces with specific properties.
Area of Science:
- Nanophotonics
- Artificial Intelligence
- Computational Science
Background:
- Large language models (LLMs) excel in language tasks and are expanding into scientific applications.
- The use of LLMs for nanophotonic device design is an emerging and underexplored area.
- Nanophotonic design traditionally requires specialized domain expertise.
Purpose of the Study:
- To investigate the efficacy of LLMs in addressing nanophotonic design challenges.
- To determine if LLMs can enable nonexpert users to design nanophotonic devices.
- To explore LLM capabilities in optical response calculation and inverse design for nanophotonic structures.
Main Methods:
- Utilizing LLMs with in-context learning for numerical simulations of optical responses in multilayer films.
- Employing conversational interaction and feedback loops between LLMs and users for design optimization.
- Fine-tuning LLMs with text-based representations of optical metasurface structures and properties.
- Implementing text-based input/output reversal for generative metasurface design.
Main Results:
- LLMs with in-context learning allow nonexpert users to simulate optical responses of multilayer films.
- Conversational LLM interaction facilitates the creation of optimal multilayer film designs for target optical properties.
- Fine-tuned LLMs can successfully generate metasurface designs tailored to specific properties.
Conclusions:
- LLMs show significant potential to simplify and accelerate nanophotonic design.
- LLMs can democratize nanophotonic design, making it accessible to users without deep domain knowledge.
- This work paves the way for AI-driven innovation in nanophotonics.

