DocumentCode
1303594
Title
Comparison between wurtzite phase and zincblende phase GaN MESFETs using a full band Monte Carlo simulation
Author
Farahmand, Maziar ; Brennan, Kevin F.
Author_Institution
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
Volume
47
Issue
3
fYear
2000
fDate
3/1/2000 12:00:00 AM
Firstpage
493
Lastpage
497
Abstract
Cutoff frequency, breakdown voltage, and the transconductance of wurtzite and zincblende phase GaN MESFETs have been calculated using a self-consistent, full band Monte Carlo simulation. The effect of interface states on the device performance is modeled by including uniformly depleted regions at the device surface under the passivation layers. It is found that the drain current increases gradually with increasing drain-source voltage at the onset of breakdown for both phases. The calculated breakdown voltage for the wurtzite device is considerably higher than the breakdown voltage calculated for the zincblende device. On the other hand, the zincblende device is calculated to have higher transconductance and cutoff frequency than the wurtzite device. The higher breakdown voltage of the wurtzite phase device is attributed to the higher density of electronic states for this phase compared to the zincblende phase. The higher cutoff frequency and transconductance of the zincblende phase device is apparently due to the greater electron velocity overshoot for this phase compared to that for the wurtzite phase. The maximum cutoff frequency and transconductance of a 0.1 μm gate-length zincblende GaN MESFET are calculated to be 220 GHz and 210 mS/mm, respectively. The corresponding quantities for the wurtzite GaN device are calculated to be 160 GHz and 158 mS/mm
Keywords
III-V semiconductors; Monte Carlo methods; Schottky gate field effect transistors; gallium compounds; interface states; microwave field effect transistors; passivation; semiconductor device breakdown; semiconductor device models; semiconductor device reliability; 0.1 micron; 160 GHz; 220 GHz; GaN; MESFETs; breakdown voltage; cutoff frequency; device surface; drain current; drain-source voltage; electron velocity overshoot; full band Monte Carlo simulation; interface states; passivation layers; transconductance; uniformly depleted regions; wurtzite phase; zincblende phase; Breakdown voltage; Cutoff frequency; Electrons; Gallium nitride; Interface states; MESFETs; Monte Carlo methods; Passivation; Substrates; Transconductance;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/16.824713
Filename
824713
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