High Contrast Modulation of Plasmonic Signals Using Nanoscale Dual-frequency Liquid Crystals
Overview
Authors
Affiliations
We have designed and simulated a dual-frequency liquid crystal (DFLC) based plasmonic signal modulator capable of achieving over 15 dB modulation depth. The voltage-controlled DFLC is combined with a groove and slit configuration and its operation is discussed. Using the finite-difference time domain (FDTD) method, simulations were conducted to discover the groove-slit separation distance that enabled a practically useful modulation depth for the two states of the DFLC. Moreover, we have shown that significant improvement in modulation depth can be achieved by addition of a second groove to the design structure. Additionally, a performance analysis indicates a switching energy on the order of femtojoules and a switching speed on the order of 100 microseconds. Results of this investigation can be useful for the future design, simulation, and fabrication of DFLC-based plasmonic signal modulating devices, which have application in electro-optical and all-optical information systems.
Directional Scattering of Semiconductor Nanoparticles Embedded in a Liquid Crystal.
Garcia-Camara B, Algorri J, Urruchi V, Sanchez-Pena J Materials (Basel). 2017; 7(4):2784-2794.
PMID: 28788593 PMC: 5453371. DOI: 10.3390/ma7042784.
Liquid-Crystal-Enabled Active Plasmonics: A Review.
Si G, Zhao Y, Leong E, Liu Y Materials (Basel). 2017; 7(2):1296-1317.
PMID: 28788515 PMC: 5453087. DOI: 10.3390/ma7021296.
Active Control of SPR by Thermoresponsive Hydrogels for Biosensor Applications.
Toma M, Jonas U, Mateescu A, Knoll W, Dostalek J J Phys Chem C Nanomater Interfaces. 2013; 117(22):11705-11712.
PMID: 23762499 PMC: 3677233. DOI: 10.1021/jp400255u.