Coded Liquid Crystal Metasurface for Achromatic Imaging in the Broadband Wavelength Range

Author(s):  
Qian Xu ◽  
Ti Sun ◽  
Chinhua Wang
2019 ◽  
Vol 2019 ◽  
pp. 1-11 ◽  
Author(s):  
Joanna Korec ◽  
Karol A. Stasiewicz ◽  
Olga Strzeżysz ◽  
Przemysław Kula ◽  
Leszek R. Jaroszewicz

The paper presents the results of design, manufacturing, and characterization of a hybrid broad band in-line fiber-optic device. It uses nematic liquid crystal as cladding with electro-steering properties in a biconical optical fiber taper structure. Liquid crystal mixtures denoted as 6CHBT and E7 are designed for electric as well as temperature control of electromagnetic wave propagation in a broad wavelength range. The applied taper with 10±0.5 μm diameters has losses lower than 0.5 dB in whole investigated spectrum range. Three kinds of initial liquid crystal molecules’ orientations (parallel, orthogonal, and twist) in relation to the light beam propagating in a taper were applied. The performance of a tuned cladding was studied at an electric field of the range of 0–190 V and the temperature range from 20°C up to 42°C and 59°C for 6CHBT and E7, respectively. The induced reorientation of liquid crystal molecules was measured at a broad wavelength range (550-1550 nm).


Author(s):  
D. L. Hovhannisyan ◽  
H. L. Margaryan ◽  
N. H. Hakobyan ◽  
V. M. Aroutiounian ◽  
V. V. Belyaev ◽  
...  

2013 ◽  
Author(s):  
Anbang Fu ◽  
Huaidong Zhang ◽  
Xinyu Zhang ◽  
Hongshi Sang ◽  
Tianyu Zhang ◽  
...  

2013 ◽  
Vol 2013 ◽  
pp. 1-3
Author(s):  
A. Anczykowska ◽  
S. Bartkiewicz ◽  
J. Mysliwiec

We present the method for coherence length measurement using coherence meter based on hybrid liquid crystal structures doped with gold nanoparticles. The results indicate that the method is able to determine the coherence length of coherent light sources with precision of 0.01 m at wavelength range from 200 to 800 nm for wide range of initial beam powers starting from 1 mW. Given the increasing use of laser technology in industry, military, or medicine, our research may open up a possible route for the development of improved techniques of coherent diagnostic light sources.


JETP Letters ◽  
1997 ◽  
Vol 66 (4) ◽  
pp. 271-274 ◽  
Author(s):  
B. A. Belyaev ◽  
N. A. Drokin ◽  
V. F. Shabanov ◽  
V. N. Shepov

2010 ◽  
Vol 428-429 ◽  
pp. 406-410
Author(s):  
Han Cheng Liu ◽  
Hua Wa Yu ◽  
Xiang An Yan ◽  
Jun Fang Wu

Liquid crystal device (LCD) used as spatial gating apparatus has a lot of new using at low light detecting, imaging spectrum and so on. Since LCD's lattice characteristic, it can come true point gating, local field gating and whole surface gating. It can carry out point-by-point control and feedback of imaging cooperating with CCD detector. Some characteristics of we used LCD, LCX023CMT (SONY), have been detected in order to use conveniently, those include spectra transmittance and which’s changing with gating voltage. The results show that when incident wavelength more than 650nm, this LCD couldn't be used as spatial gating because of polaroid's extinction ratio becoming worse; LCD can modulate the incident light from 400 to 650nm, and the modulates of wavelength range, extent and linearity were related to the modulate voltage clearly. The results indicate that LCD modulates the incident light better and better at voltage more than 2.5V for 550nm; the action modulated become linear with voltage approximately; the modulate extent goes to saturation at voltage more than 5V, and the spectral range modulated is steady in 400-650nm. At voltage more than 5V, transmittance of spectrum is a horizontal beeline almost with incident wavelength range from 400 to 650nm. This indicates that transmittance of spectrum in this range is same, and liquid crystal has none selectivity in colored light. As a result, there is no chromatism between transmitted and incident light. However, because that there is lower transmittance, the reflected light can be used which can ensure not only effective using ratio of light, but also the consistency between reflected and incident light.


2000 ◽  
Vol 42 (3) ◽  
pp. 577-579 ◽  
Author(s):  
B. A. Belyaev ◽  
N. A. Drokin ◽  
V. F. Shabanov ◽  
V. N. Shepov

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