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An amorphous silicon photodiode with 2 THz gain-bandwidth product based on cycling excitation process.

Authors :
Lujiang Yan
Yugang Yu
Zhang, Alex Ce
Hall, David
Niaz, Iftikhar Ahmad
Miah, Mohammad Abu Raihan
Yu-Hsin Liu
Yu-Hwa Lo
Source :
Applied Physics Letters. 9/4/2017, Vol. 111 Issue 10, p1-5. 5p. 2 Diagrams, 3 Graphs.
Publication Year :
2017

Abstract

Since impact ionization was observed in semiconductors over half a century ago, avalanche photodiodes (APDs) using impact ionization in a fashion of chain reaction have been the most sensitive semiconductor photodetectors. However, APDs have relatively high excess noise, a limited gain-bandwidth product, and high operation voltage, presenting a need for alternative signal amplification mechanisms of superior properties. As an amplification mechanism, the cycling excitation process (CEP) was recently reported in a silicon p-n junction with subtle control and balance of the impurity levels and profiles. Realizing that CEP effect depends on Auger excitation involving localized states, we made the counter intuitive hypothesis that disordered materials, such as amorphous silicon, with their abundant localized states, can produce strong CEP effects with high gain and speed at low noise, despite their extremely low mobility and large number of defects. Here, we demonstrate an amorphous silicon low noise photodiode with gain-bandwidth product of over 2 THz, based on a very simple structure. This work will impact a wide range of applications involving optical detection because amorphous silicon, as the primary gain medium, is a low-cost, easy-to-process material that can be formed on many kinds of rigid or flexible substrates. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00036951
Volume :
111
Issue :
10
Database :
Academic Search Index
Journal :
Applied Physics Letters
Publication Type :
Academic Journal
Accession number :
125105036
Full Text :
https://doi.org/10.1063/1.5001170