Title :
High-breakdown-voltage AlInAs/GaInAs junction-modulated HEMT´s (JHEMT´s) with regrown ohmic contacts by MOCVD
Author :
Shealy, J.B. ; Hashemi, M.M. ; Kiziloglu, K. ; DenBaars, S.P. ; Mishra, U.K. ; Liu, T.K. ; Brown, J.J. ; Lui, M.
Author_Institution :
Dept. of Electr. & Comput. Eng., California Univ., Santa Barbara, CA, USA
Abstract :
A technology for increasing both the two-terminal gate-drain breakdown and subsequently the three-terminal-off-state breakdown of AlInAs/GaInAs high-electron-mobility transistors (HEMTs) to record values without substantial impact on other parameters is presented. The breakdown in these structures is dependent on the multiplication of electrons injected from the source (channel current) and the gate (gate leakage) into the channel. In addition, holes are generated by high fields at the drain and are injected back into the gate and source electrodes. These phenomena can be suppressed by increasing the gate barrier height and alleviating the fields at the drain. Both have been achieved by incorporating a p/sup +/-2DEG junction as the gate that modulates the 2DEG gas and by utilizing selective regrowth of the source and drain regions by MOCVD. The 1- mu m-gate-length devices fabricated have two-terminal gate-drain and three-terminal-off-state breakdown voltages of 31 V and 28 V, respectively.<>
Keywords :
III-V semiconductors; aluminium compounds; chemical vapour deposition; electric breakdown of solids; gallium arsenide; high electron mobility transistors; indium compounds; ohmic contacts; power transistors; two-dimensional electron gas; 1 micron; 240 mS/mm; 28 V; 2DEG gas; 31 V; AlInAs-GaInAs; JHEMT; MOCVD; gate barrier height; gate leakage; high breakdown voltage; high fields; high-electron-mobility transistors; junction-modulated HEMT; p/sup +/-2DEG junction; regrown ohmic contacts; selective regrowth; three-terminal offstate breakdown; two-terminal gate-drain breakdown; Current density; Electric breakdown; Electrodes; Electrons; Etching; Gate leakage; HEMTs; MOCVD; Molecular beam epitaxial growth; Ohmic contacts;
Journal_Title :
Electron Device Letters, IEEE