High-throughput computation and machine learning of refractive index of polymers

Author:

Mishra Ankit1ORCID,Rajak Pankaj1ORCID,Irie Ayu12,Fukushima Shogo3ORCID,Kalia Rajiv K.1,Nakano Aiichiro1ORCID,Nomura Ken-ichi1ORCID,Shimojo Fuyuki2ORCID,Vashishta Priya1ORCID

Affiliation:

1. Collaboratory for Advanced Computing and Simulations, University of Southern California 1 , Los Angeles, California 90089-0242, USA

2. Department of Physics, Kumamoto University 2 , Kumamoto 860-8555, Japan

3. Institute for Materials Research, Tohoku University 3 , Sendai 980-8577, Japan

Abstract

Refractive index (RI) of polymers plays a crucial role in the design of optoelectronic devices, including displays and image sensors. We have developed a framework for (1) high-throughput computation of RI values for computationally synthesized amorphous polymer structures based on a generalized polarizable reactive force-field (ReaxPQ+) model, which is orders-of-magnitude faster than quantum-mechanical methods; (2) prediction of composition–structure–RI relationships based on a machine-learning model based on graph attention neural network; and (3) computation of frequency-dependent RI combining ReaxPQ+ and Lorentz-oscillator models. The framework has been tested on a computational database of amorphous polymers.

Funder

Sony

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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