Showing posts with label Po-Han Chen. Show all posts
Showing posts with label Po-Han Chen. Show all posts

Thursday, January 17, 2019

Abstract-High-Transmittance 2π Electrically Tunable Terahertz Phase Shifter with CMOS-Compatible Driving Voltage Enabled by Liquid Crystals



Chan-Shan Yang  Chun Kuo, Po-Han Chen, Wei-Ta Wu, Ru-Pin Pan, Peichen Yu, Ci-Ling Pan,

Figure 1. (a) Schematic diagrams of three different configurations of indium–tin–oxide-nanowhiskers (ITO-NWhs)-based phase shifters, type A, B, and C, respectively. The cross-sectional images of (b) the substrate of ITO NWhs, (c) ITO NWhs coated with polyimide, and (d) ITO NWhs treated with the rubbing process.
https://www.mdpi.com/2076-3417/9/2/271/htm

We have investigated tunable terahertz (THz) phase shifters that are based on a sandwiched liquid crystal (LC) cell with indium–tin–oxide (ITO) nanowhiskers (NWhs) as transparent electrodes. More than 360° of phase shift at 1.0 THz was achieved at a driving voltage as low as ~2.6 V (rms). This is approximately 40 times smaller than that reported in previous works using an electrically tuned LC device. Significance of the NWhs in reducing the required voltage is demonstrated. Overall transmittance of the device is as high as 30%, which is accountable by absorption losses of ITO NWhs, quartz substrate and LC. Experimental results are in good agreement with a theoretical formulism while taking into account super-thick LC cells (~1 mm) and pretilt angles. We also propose and demonstrate a novel THz technique for measuring pretilt angles of liquid crystals.

Monday, April 14, 2014

Abstract-Voltage-controlled liquid-crystal terahertz phase shifter with indium–tin–oxide nanowhiskers as transparent electrodes



Chan-Shan Yang, Tsung-Ta Tang, Po-Han Chen, Ru-Pin Pan, Peichen Yu, and Ci-Ling Pan  »View Author Affiliations

Optics Letters, Vol. 39, Issue 8, pp. 2511-2513 (2014)
http://dx.doi.org/10.1364/OL.39.002511
Indium–tin–oxide nanowhiskers were employed as transparent electrodes in a liquid-crystal terahertz phase shifter. Transmittance of the device was as high as 75%. Phase shift exceeding π/2 at 1.0 THz is achieved in a 500μm-thick cell. The driving voltage required for the device operating as a quarter-wave plate was as low as 17.68 V (rms), an improvement of nearly an order of magnitude over previous work.
© 2014 Optical Society of America