Fr. 158.00

Low Energy Photon Detection

English · Hardback

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Description

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This thesis showcases innovative new approaches aimed at advancing the next generation of long wave infrared (LWIR) light detectors and cameras. Detecting LWIR light at room temperature has posed a persistent challenge due to the low energy of photons. The pursuit of an affordable, high-performance LWIR camera capable of room temperature detection has spanned several decades. The two approaches detailed within are designed to offer high detectivity, swift response times, and room temperature operation. The first involves harnessing the Dirac plasmon and the Seebeck effect in graphene to create a photo-thermoelectric detector. The second entails the use of an oscillating circuit integrated with phase change materials and the modulation of frequency induced by infrared illumination to achieve LWIR detection. Finally, the graphene-based detectors are integrated with readout circuits to enable the development of a dense pixel focal plane which has strong potential for commercialization. The journey from novel material to device to functional camera presented here is essential reading for researchers in the field of photon detection.

List of contents

Chapter 1: Introduction.- Chapter 2: Dynamically Tunable Long Wave Infared Detection.- Chapter 3: Frequency Modulation Based Infrared Detection.- Chapter 4: Dense Pixel Array Integration.- Chapter 5: Conclusion and Future.

About the author










Dr. Tianyi Guo obtained a Ph.D in Physics from the University of Central Florida in 2023. He is currently a postdoctoral scholar at the University of Centra Florida. His research is focused on long wave infrared detections with plasmonic and phase change materials.


Product details

Authors Tianyi Guo
Publisher Springer, Berlin
 
Languages English
Product format Hardback
Released 22.10.2024
 
EAN 9783031715433
ISBN 978-3-0-3171543-3
No. of pages 51
Dimensions 155 mm x 7 mm x 235 mm
Weight 221 g
Illustrations XIII, 51 p. 31 illus., 29 illus. in color.
Series Springer Theses
Subject Natural sciences, medicine, IT, technology > Physics, astronomy > Electricity, magnetism, optics

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