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Electrically tunable microlens arrays based on polarization-independent optical phase of nano liquid crystal droplets dispersed in polymer matrix
Author(s) -
Ji Hoon Yu,
Hung-Shan Chen,
PoJu Chen,
Ki Hoon Song,
Seong Cheol Noh,
Jae Myeong Lee,
Hongwen Ren,
YiHsin Lin,
Seung Hee Lee
Publication year - 2015
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.23.017337
Subject(s) - microlens , birefringence , materials science , optics , liquid crystal , polarization (electrochemistry) , optoelectronics , isotropy , phase (matter) , electric field , lens (geology) , physics , chemistry , quantum mechanics
Electrically tunable focusing microlens arrays based on polarization independent optical phase of nano liquid crystal droplets dispersed in polymer matrix are demonstrated. Such an optical medium is optically isotropic which is so-called an optically isotropic liquid crystals (OILC). We not only discuss the optical theory of OILC, but also demonstrate polarization independent optical phase modulation based on the OILC. The experimental results and analytical discussion show that the optical phase of OILC microlens arrays results from mainly orientational birefringence which is much larger than the electric-field-induced birefringence (or Kerr effect). The response time of OILC microlens arrays is fast~5.3ms and the tunable focal length ranges from 3.4 mm to 3.8 mm. The potential applications are light field imaging systems, 3D integrating imaging systems and devices for augment reality.

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