Back to Search Start Over

A novel terahertz detector technology based on vacuum electronics

Authors :
Sadwick, Laurence P.
Yang, Tianxin
Kawai, Naoya
Buchmann, Tobias Olaf
Takahashi, Hisanari
Katsuyama, Kota
Lange, Simon Jappe
Sebek, Matej
Jepsen, Peter Uhd
Satozono, Hiroshi
Ohmura, Takayuki
Sadwick, Laurence P.
Yang, Tianxin
Kawai, Naoya
Buchmann, Tobias Olaf
Takahashi, Hisanari
Katsuyama, Kota
Lange, Simon Jappe
Sebek, Matej
Jepsen, Peter Uhd
Satozono, Hiroshi
Ohmura, Takayuki
Source :
Kawai , N , Buchmann , T O , Takahashi , H , Katsuyama , K , Lange , S J , Sebek , M , Jepsen , P U , Satozono , H & Ohmura , T 2023 , A novel terahertz detector technology based on vacuum electronics . in L P Sadwick & T Yang (eds) , Terahertz, RF, Millimeter, and Submillimeter-Wave Technology and Applications XVI . , 1242009 , SPIE - International Society for Optical Engineering , Proceedings of SPIE - The International Society for Optical Engineering , vol. 12420 , Terahertz, RF, Millimeter, and Submillimeter-Wave Technology and Applications XVI 2023 , San Francisco , California , United States , 30/01/2023 .
Publication Year :
2023

Abstract

A THz detector with both high sensitivity and fast time response has been required for industrial applications such as nondestructive testing (NDT), security, and spectroscopy. Through a collaboration with the Technical University of Denmark (DTU), we have recently developed a THz-sensitive point detector and imager based on metasurface and photomultiplier tube (PMT) and image intensifier (I.I.) technologies, respectively. A fast time response is one of the unique characteristics of these devices: the PMT-based point detector provides a nanosecond response time while the I.I.based imager is capable of frame rates up to 1000 fps. These devices have a double split-ring resonator (DSRR) at the photocathode for THz-electron conversion (metasurface). In this paper, we discuss the two devices and report on the development and results for increasing their sensitivity for ultrafast, broadband THz pulses by sharpening the field-enhancing antenna tips. This leads to a smaller tip diameter, which increases the electric field confinement and thus intensity at the tip, making the field emission more likely to occur at lower field strengths as a result. Both devices thus offer a sensitive and simple method to detect THz frequencies easily, with the I.I. offering a handheld, 9V battery-powered device.

Details

Database :
OAIster
Journal :
Kawai , N , Buchmann , T O , Takahashi , H , Katsuyama , K , Lange , S J , Sebek , M , Jepsen , P U , Satozono , H & Ohmura , T 2023 , A novel terahertz detector technology based on vacuum electronics . in L P Sadwick & T Yang (eds) , Terahertz, RF, Millimeter, and Submillimeter-Wave Technology and Applications XVI . , 1242009 , SPIE - International Society for Optical Engineering , Proceedings of SPIE - The International Society for Optical Engineering , vol. 12420 , Terahertz, RF, Millimeter, and Submillimeter-Wave Technology and Applications XVI 2023 , San Francisco , California , United States , 30/01/2023 .
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1397136111
Document Type :
Electronic Resource