Paper
31 August 2015 Plasmonic enhancement of sensitivity in terahertz (THz) photo-conductive detectors
Author Affiliations +
Abstract
We demonstrate enhancement of sensitivity in terahertz photoconductive detectors achieved by incorporation of plasmonic structures into the photo-conductive region of the detector. Auston switches based on lowtemperature grown GaAs (LT GaAs) have been reliably used for detection of THz pulses over two decades. This material exhibits high electron mobility with sub-picosecond carrier lifetimes and high dark resistivity. This combination is difficult to achieve in other materials. Application of LT GaAs in THz devices is nevertheless limited due to absorption characteristics of this material. Plasmonic structures can be employed to modify the distribution of the optical field in the photoconductive region and hence modify the response of the THz photoconductive detectors. We will discuss design of plasmonic structures to enhance the response of THz detectors based on LT GaAs and demonstrate incorporation of such structures into THz detectors. We also apply the developed design in integrated photo-conductive probes for THz near-field microscopy, where the enhancement of the material absorption translates into an increase of the detector sensitivity and an improvement in spatial resolution. Performance on these near-field probes that provide a spatial resolution of 3- 5 micrometers (~1/100 of the wavelength) will be discussed and demonstrated.
© (2015) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Oleg Mitrofanov, Ting Shan Luk, Igal Brener, and John L. Reno "Plasmonic enhancement of sensitivity in terahertz (THz) photo-conductive detectors", Proc. SPIE 9585, Terahertz Emitters, Receivers, and Applications VI, 95850N (31 August 2015); https://doi.org/10.1117/12.2188177
Lens.org Logo
CITATIONS
Cited by 1 patent.
Advertisement
Advertisement
RIGHTS & PERMISSIONS
Get copyright permission  Get copyright permission on Copyright Marketplace
KEYWORDS
Terahertz radiation

Sensors

Gallium arsenide

Plasmonics

Near field optics

Near field

Spatial resolution

Back to Top