Fabrication of Antireflective Nanostructures on a Transmission Grating Surface Using a One-Step Self-Masking Method

Bibliographic Details
Title: Fabrication of Antireflective Nanostructures on a Transmission Grating Surface Using a One-Step Self-Masking Method
Authors: Ting Shao, Feng Tang, Laixi Sun, Xin Ye, Junhui He, Liming Yang, Wanguo Zheng
Source: Nanomaterials, Vol 9, Iss 2, p 180 (2019)
Publisher Information: MDPI AG, 2019.
Publication Year: 2019
Collection: LCC:Chemistry
Subject Terms: antireflection, subwavelength structures, self-masking etching, transmission grating, Chemistry, QD1-999
More Details: Suppression of Fresnel reflection from diffraction grating surfaces is very important for many optical configurations. In this work, we propose a simple method to fabricate subwavelength structures on fused-silica transmission grating for optical antireflection. The fabrication is a one-step self-masking reaction ion etching (RIE) process without using any masks. According to effective medium theory, random cone-shaped nanopillars which are integrated on the grating surface can act as an antireflective layer. Effects of the nanostructures on the reflection and transmission properties of the grating were investigated through experiments and simulations. The nanostructure surface exhibited excellent antireflection performance, where the reflection of the grating surface was suppressed to zero over a wide range of incident angles. Results also revealed that the etching process can change the duty cycle of the grating, and thus the diffraction orders if there are oblique lateral walls. The simulation results were in good agreement with the experimental ones, which verified our physical comprehension and the corresponding numerical model. The proposed method would offer a low-cost and convenient way to improve the antireflective performance of transmission-diffractive elements.
Document Type: article
File Description: electronic resource
Language: English
ISSN: 2079-4991
Relation: https://www.mdpi.com/2079-4991/9/2/180; https://doaj.org/toc/2079-4991
DOI: 10.3390/nano9020180
Access URL: https://doaj.org/article/4fbb96c181ec4f4fa4f9e1c66dcfda62
Accession Number: edsdoj.4fbb96c181ec4f4fa4f9e1c66dcfda62
Database: Directory of Open Access Journals
More Details
ISSN:20794991
DOI:10.3390/nano9020180
Published in:Nanomaterials
Language:English