DocumentCode
1395088
Title
Characterization of inversion and accumulation layer electron transport in 4H and 6H-SiC MOSFETs on implanted P-type regions
Author
Vathulya, Vickram R. ; White, Marvin H.
Author_Institution
Philips Res. Lab., Briarcliff Manor, NY, USA
Volume
47
Issue
11
fYear
2000
fDate
11/1/2000 12:00:00 AM
Firstpage
2018
Lastpage
2023
Abstract
The silicon carbide double implanted vertical MOSFET (SiC DIMOS) is a promising candidate for high power switching applications due to the absence of high electric field corners and compatibility with planar IC technology. In this work, we report on the channel mobility behavior in 4H and 6H-SiC MOSFETs fabricated with a low thermal budget process sequence, on implanted p-type regions which mirror the lateral carrier transport region in the DIMOS device. Channel mobilities are higher by an order of magnitude in 6H-SiC compared to 4H-SiC MOSFET´s suggesting the 6H-SiC polytype is better suited for fabricating the DIMOS structure in spite of the superior vertical bulk conduction in 4H-SiC. Moreover, channel mobility on accumulated surfaces is higher than values obtained on inverted surfaces. A strong correlation between the observed threshold voltages and channel mobilities is consistently explained by a modified MOSFET conductance formulation in the presence of slowly decaying bandtail states toward the SiC band edges
Keywords
accumulation layers; carrier mobility; field effect transistor switches; inversion layers; power MOSFET; semiconductor materials; silicon compounds; DIMOS; MOSFETs; SiC; accumulation layer; band edges; bandtail states; channel mobility behavior; conductance formulation; double implanted vertical MOSFET; electron transport; high power switching applications; implanted P-type regions; inversion layer; lateral carrier transport region; thermal budget process sequence; vertical bulk conduction; Aluminum; Annealing; Conducting materials; Electrons; Epitaxial layers; Fabrication; Implants; MOSFETs; Silicon carbide; Thermal conductivity;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/16.877161
Filename
877161
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