Showing posts with label Ride Wang. Show all posts
Showing posts with label Ride Wang. Show all posts

Tuesday, April 9, 2019

Abstract-Enhanced on-chip terahertz sensing with hybrid metasurface/lithium niobate structures

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Ride Wang, Qiang Wu, Yaqing Zhang, Xitan Xu, Qi Zhang, Wenjuan Zhao, Bin Zhang, Wei Cai, Jianghong Yao, Jingjun Xu

(a) Schematic of THz detection of an analyte using a microrod array metasurface as an on-chip sensor. A column of y-polarized dipoles located inside the LN waveguide is used to excite THz waves (blue oscillation signal). The thickness of the SiO2 layer is h =2 μm. The inset shows the detailed design parameters: pal and g are 20, 10, 55, and 15 μm, respectively. (b) Enhanced field confined to the surface of the composite structure. (c) and (d) Distribution of the field components Ey and Ez at f =0.529 THz.

https://aip.scitation.org/doi/abs/10.1063/1.5087609

Recognizing special molecules is crucial in many biochemical processes, and thus, highly enhanced sensing methods are in high demand. In this work, we designed a microrod array metasurface with a SiO2-loaded subwavelength lithium niobate waveguide as a unique platform for enhanced experimental fingerprint detection of lactose. The metasurface could lead to strong surface wave modes due to the near-field coupling of the spoof localized surface plasmon, which also could provide a stronger interaction length between light and matter. The selectivity was remarkable in the transmission spectrum at an intrinsic characteristic frequency of 0.529 THz with a thin layer of lactose, while it was faint while transmitting terahertz (THz) waves normally through a lactose layer of the same thickness. Together with the ability to freely design the shape of the metasurface and the electromagnetic properties, we believe that this platform can function as an elegant on-chip-scale enhanced THz sensing platform.

Saturday, December 16, 2017

Abstract-Surface enhancement of THz wave by coupling a subwavelength LiNbO3 slab waveguide with a composite antenna structure



Qi Zhang, Jiwei Qi, Qiang Wu, Yao Lu, Wenjuan Zhao, Ride Wang, Chongpei Pan, Shibiao Wang,  Jingjun Xu

https://www.nature.com/articles/s41598-017-17712-4?utm_source=feedburner&utm_medium=feed&utm_campaign=Feed%3A+srep%2Frss%2Fcurrent+%28Scientific+Reports%29&utm_content=Google+Feedfetcher

Highly intense terahertz electromagnetic field and efficiently surface localized terahertz field in subwavelength volumes are of vital importance for terahertz photonics integration, also will greatly accelerate the development for integrated applications in biochemical sensing, imaging, terahertz spectroscopy, enhancement of nonlinear effects and even quantum research. In this paper, we achieved large terahertz field enhancement and surface field localization through depositing a pair of Au composite antennas on a LiNbO3 subwavelength slab waveguide, which can serve as an excellent on-chip platform for terahertz research and application. The antennas consist of two opposing tip-to-tip triangles separated by a gap, and each triangle combines with a strip antenna. Time-resolved imaging and finite-difference time-domain method were used to resolve the characteristics of the designed antennas experimentally and simulatively. Through these methods, we demonstrated outstanding abilities of the platform: leading to a large electric field enhancement, concentrating almost full terahertz energy on the waveguide’s surface when they are resonant with the terahertz waves and tunable resonant frequency. These abilities make the subwavelength waveguide coupling with the composite antennas be able to sever as a good integrated device to identify terahertz-sensitive small objects, or an excellent platform to terahertz spectroscopy and quantum research.