DocumentCode
1504963
Title
Low multiplication noise thin Al0.6Ga0.4As avalanche photodiodes
Author
Tan, Chee Hing ; David, J.P.R. ; Plimmer, Stephen A. ; Rees, Graham J. ; Tozer, Richard C. ; Grey, Robert
Author_Institution
Dept. of Electron. & Electr. Eng., Sheffield Univ., UK
Volume
48
Issue
7
fYear
2001
fDate
7/1/2001 12:00:00 AM
Firstpage
1310
Lastpage
1317
Abstract
Avalanche multiplication and excess noise were measured on a series of Al0.6Ga0.4As p+in+ and n+ip+ diodes, with avalanche region thickness, w ranging from 0.026 μm to 0.85 μm. The results show that the ionization coefficient for electrons is slightly higher than for holes in thick, bulk material. At fixed multiplication values the excess noise factor was found to decrease with decreasing w, irrespective of injected carrier type. Owing to the wide Al0.6Ga0.4As bandgap extremely thin devices can sustain very high electric fields, giving rise to very low excess noise factors, of around F~3.3 at a multiplication factor of M~15.5 in the structure with w=0.026 μm. This is the lowest reported excess noise at this value of multiplication for devices grown on GaAs substrates. Recursion equation modeling, using both a hard threshold dead space model and one which incorporates the detailed history of the ionizing carriers, is used to model the nonlocal nature of impact ionization giving rise to the reduction in excess noise with decreasing w. Although the hard threshold dead space model could reproduce qualitatively the experimental results, better agreement was obtained from the history-dependent model
Keywords
III-V semiconductors; aluminium compounds; avalanche breakdown; avalanche photodiodes; gallium arsenide; impact ionisation; semiconductor device models; semiconductor device noise; 0.026 to 0.85 micron; Al0.6Ga0.4As; GaAs; GaAs substrate; avalanche multiplication; excess noise factor; hard threshold dead space model; high electric fields; history-dependent model; impact ionization; ionization coefficient; ionizing carriers; low multiplication noise; n+ip+ diodes; p+in+ diodes; recursion equation modeling; thin AlGaAs APDs; thin avalanche photodiodes; Charge carrier processes; Diodes; Equations; Gallium arsenide; History; Impact ionization; Noise measurement; Noise reduction; Photonic band gap; Thickness measurement;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/16.930644
Filename
930644
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