Showing posts with label Haizi Yao. Show all posts
Showing posts with label Haizi Yao. Show all posts

Friday, November 10, 2017

Abstract-Terahertz Chiral SSPPs Mode on the Helically Grooved Metal Wire



Haizi Yao, Shuncong Zhong,

https://link.springer.com/chapter/10.1007/978-981-10-4109-9_14

Terahertz wave (λ = 30 μm–3 mm@f = 0.1–10 THz) is such a band of electromagnetic wave that locates between light and microwave. Many chiral biomolecules, such as protein and amino acid, have their own unique structure vibrating frequencies at Terahertz region, therefore they have the “fingerprint” terahertz absorption spectrum. It is meaningful to study the chirality of chiral macromolecules through their terahertz circular dichroism (CD) response which is defined as the differential absorption of two opposite chiral terahertz wave. In the present work, we used the Finite-element-method (FEM) to investigate terahertz spoof surface plasmon polariton (SSPP) wave propagating on the helically grooved metal wire. Different from the metal wire decorated by the periodic grooves the helically grooved metal wire can support a kind of chiral SSPP surface mode. Due to the chirality of helical grooves, the normal degenerate HE1 SSPP mode on helically grooved metal wire decompose into two opposite chiral modes, i.e., HE−1 and HE+1 SSPP surface modes. Mode analysis showed that the dispersion curves of HE+1 mode deviated from that of HE−1 modes, and thus form a broad frequency band where the chiral HE+1 mode could exists exclusively. Super-chiral terahertz field concentration that may be achieved on the helically grooved metal wire through chiral HE+1 mode can find important applications in near-field circular dichroism spectroscopy in terahertz frequencies.

Saturday, October 7, 2017

Abstract-Free-standing double-layer terahertz band-pass filters fabricated by femtosecond laser micro-machining



Yanzhang Lin, Haizi Yao, Xuewei Ju, Ying Chen, Shuncong Zhong, and Xiangfeng Wang

https://www.osapublishing.org/oe/abstract.cfm?uri=oe-25-21-25125

We report on the fabrication and transmission properties of free-standing single-layer and double-layer THz bandpass filters. These filters are fabricated on aluminum foils using femtosecond laser micro-machining. The aluminum foils are periodically patterned with cross apertures with a total area of 1.75×1.75 cm2, also known as frequency-selective surfaces. Their terahertz transmission properties were simulated using the FDTD method and measured using a time-domain terahertz spectroscopy system. The simulation results agree with the measurements results very well. The performance of single-layer bandpass filters is as good as the commercial equivalents on the market. The double-layer filters show extraordinary transmission peaks with changing spacing between the two layers. We show the contour map of the electric field distribution across the apertures, and ascribe the new transmission peaks to the interference and coupling of surface plasmon polaritons between the two layers.
© 2017 Optical Society of America

Monday, July 28, 2014

Abstract-Plasmonic corrugated cylinder–cone terahertz probe



Haizi Yao and Shuncong Zhong  »View Author Affiliations

JOSA A, Vol. 31, Issue 8, pp. 1856-1860 (2014)
http://dx.doi.org/10.1364/JOSAA.31.001856

The spoof surface plasmon polariton (SPP) effect on the electromagnetic field distribution near the tip of a periodically corrugated metal cylinder–cone probe working at the terahertz regime was studied. We found that radially polarized terahertz radiation could be coupled effectively through a spoof SPP into a surface wave and propagated along the corrugated surface, resulting in more than 20× electric field enhancement near the tip of probe. Multiple resonances caused by the antenna effect were discussed in detail by finite element computation and theoretical analysis of dispersion relation for spoof SPP modes. Moreover, the key figures of merit such as the resonance frequency of the SPP can be flexibly tuned by modifying the geometry of the probe structure, making it attractive for application in an apertureless background-free terahertz near-field microscope.
© 2014 Optical Society of America