Highly efficient nonuniform finite difference method for three-dimensional electrically stimulated liquid crystal photonic devices

Author:

Guo Zhenghao1,Liu Mengjun1,Chen Zijia1,Yang Ruizhi1,Li Peiyun1,Da Haixia23,Yuan Dong1ORCID,Zhou Guofu1,Shui Lingling1,Ye Huapeng1ORCID

Affiliation:

1. South China Normal University

2. Nanjing University of Posts and Telecommunications

3. Key Laboratory of Radio Frequency and Micro-Nano Electronics of Jiangsu Province

Abstract

Liquid crystal (LC) photonic devices have attracted intensive attention in recent decades, due to the merits of tunability, cost-effectiveness, and high efficiency. However, the precise and efficient simulation of large-scale three-dimensional electrically stimulated LC photonic devices remains challenging and resource consuming. Here we report a straightforward nonuniform finite difference method (NFDM) for efficiently simulating large-scale LC photonic devices by employing a spatially nonuniform mesh grid. We show that the NFDM can be further accelerated by approximately 504 times by using the improved successive over-relaxation method (by 12 times), the symmetric boundary (by 4 times), the momentum gradient descent algorithm (by 3.5 times), and the multigrid (by 3 times). We experimentally fabricated the large-scale electrically stimulated LC photonic device, and the measured results demonstrate the effectiveness and validity of the proposed NFDM. The NFDM allocates more grids to the core area with steep electric field gradient, thus reducing the distortion of electric field and the truncation error of calculation, rendering it more precise than the finite element method and traditional finite difference method with similar computing resources. This study demonstrates an efficient and highly reliable method to simulate the large-scale electrically stimulated LC photonic device, and paves the way for customizing a large-scale LC photonic device with designable functionalities.

Funder

National Natural Science Foundation of China

Science and Technology Program of Guangzhou

Natural Science Foundation of Guangdong Province

Special Program on Key Fields for Colleges and Universities of Guangdong Province

Guangdong Provincial Key Laboratory of Optical Information Materials and Technology

Publisher

Optica Publishing Group

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