Light-Driven Liquid Crystal Circular Dammann Grating Fabricated by a Micro-Patterned Liquid Crystal Polymer Phase Mask

As one of the diffractive optical elements, circular Dammann grating has shown its excellent versatility in practical applications. The electrically switchable Dammann grating has been extensively investigated; however, the research on the optically tunable circular Dammann grating has received less...

Full description

Saved in:
Bibliographic Details
Published inPolymers Vol. 9; no. 8; p. 380
Main Authors Wang, Xiaoqian, Wu, Saibo, Yang, Weiqiang, Yuan, Conglong, Li, Xiao, Liu, Zhen, Tseng, Manchun, Chigrinov, Vladimir, Kwok, Hoising, Shen, Dong, Zheng, Zhigang
Format Journal Article
LanguageEnglish
Published Switzerland MDPI AG 21.08.2017
MDPI
Subjects
Online AccessGet full text

Cover

Loading…
More Information
Summary:As one of the diffractive optical elements, circular Dammann grating has shown its excellent versatility in practical applications. The electrically switchable Dammann grating has been extensively investigated; however, the research on the optically tunable circular Dammann grating has received less attention and reports on this subject have been insufficient in the past decade. In this paper, three-order and eight-order binary-phase liquid crystal circular Dammann gratings with two mutually orthogonal photo-induced alignments in every two adjacent alignment domains, fabricated by a micro-patterned liquid crystal polymer phase mask, are proposed to generate annular uniform-intensity patterns in the far field. A simple maskless optical tuning of an eight-order liquid crystal circular Dammann grating is demonstrated by controlling the polarization of an ultraviolet light as well as the energy dose. The proposed liquid crystal circular Dammann gratings with high efficiencies and desirable uniformities exhibit outstanding optical as well as electrical tunabilities, enabling the widespread prospective applications in adaptive photonic chips stimulated flexibly by only light or by the combination of light and electric field.
Bibliography:ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 14
content type line 23
These authors contributed equally to this work.
ISSN:2073-4360
2073-4360
DOI:10.3390/polym9080380