Title :
Effects of Molecular Configuration and Driving Architecture on Electro-Optical Properties of Cholesteric Liquid Crystal Displays
Author :
Guan-Jhong Lin ; Tien-Jung Chen ; Yu-Ting Lin ; Jin-Jei Wu ; Ying-Jay Yang
Author_Institution :
Grad. Inst. of Electron. Eng., Nat. Taiwan Univ., Taipei, Taiwan
Abstract :
The effects of molecular configuration and driving architecture on the electro-optical properties of cholesteric liquid crystal (ChLC) displays are demonstrated. Two kinds of ChLC cells, composed by mixing the chiral dopant with the positive nematic LC (P-ChLC cell) and with the negative nematic LC (N-ChLC cell), are fabricated in order to make a detailed investigation. Compared with the conventional P-ChLC cell driven by the uniform vertical electric fields, the N-ChLC cell driven by the in-plane switching electric fields shows a higher output light transmittance and a more stable helical molecular configuration, which is attributed to the fact that the focal conic configuration does not exist in the N-ChLC cell. In addition, via the three-terminal-electrode driving architecture, a faster switching response (5.2 ms) of the N-ChLC cell at a low driving voltage is successfully achieved. This study not only exhibits the difference in the electro-optical properties of the P-ChLC and N-ChLC cells, but also provides a driving method for the N-ChLC cell to enhance its electro-optical performance, which is beneficial to the development of fast dynamic optical devices.
Keywords :
chirality; cholesteric liquid crystals; electro-optical devices; electrodes; liquid crystal displays; molecular configurations; nematic liquid crystals; ChLC display; N-ChLC cell; P-ChLC cell; chiral dopant; cholesteric liquid crystal display; electrooptical property; focal conic configuration; helical molecular configuration effect; in-plane switching electric field; negative nematic LC cell; positive nematic LC cell; three-terminal-electrode driving architecture; time 5.2 ms; uniform vertical electric field; Computer architecture; Dielectrics; Electric fields; Electrooptical waveguides; Optical switches; Reflection; Substrates; Three-terminal-electrode driving architecture; cholesteric liquid crystal (ChLC); molecular configuration; output light transmittance; switching response;
Journal_Title :
Display Technology, Journal of
DOI :
10.1109/JDT.2015.2447736