DocumentCode
1170513
Title
Characterization and modeling of bias-stressed InGaP/GaAs collector-up tunneling-collector HBTs fabricated with boron-ion implantation
Author
Mochizuki, Kazuhiro ; Tanaka, Ken-Ichi ; Uchiyama, Hiroyuki ; Ohta, Hiroshi ; Terano, Akihisa ; Kikawa, Takeshi ; Taniguchi, Takafumi ; Mita, Reiko
Author_Institution
Central Res. Lab., Hitachi Ltd., Tokyo, Japan
Volume
52
Issue
10
fYear
2005
Firstpage
2144
Lastpage
2149
Abstract
To characterize and model the degradation of collector-up (C-up) heterojunction bipolar transistors (HBTs), we bias stress InGaP/GaAs C-up tunneling-collector HBTs (TC-HBTs) fabricated under various conditions for etching the collector mesas and of implanting boron ions into the extrinsic emitter. Contrary to the previous reports on reduction in collector current IC of bias-stressed emitter-up HBTs fabricated with ion implantation, no IC Gummel shift is observed in the case of C-up TC-HBTs, probably due to the lower damage resulting from the lower ion dosage. On the other hand, the base current of the bias-stressed C-up TC-HBTs increases with the decrease of the ion dose and with the increase of the collector mesa undercut under the collector electrode that is also used as an implant mask. We attribute the increased base current to the increased carrier recombination at the extrinsic base surface. Making the area of the emitter-base junction smaller than that of the base-collector junction-using electron-cyclotron resonance plasma etching together with lateral spreading of heavily implanted boron ions-results in a stable current gain even after a 1030-h testing at a junction temperature of 210°C and a collector current density of 402kA/cm.
Keywords
III-V semiconductors; gallium arsenide; heterojunction bipolar transistors; indium compounds; ion implantation; phosphorus compounds; semiconductor device models; 210 C; InGaP-GaAs; base-collector junction; bias-stressed HBT; carrier recombination; collector-up tunneling-collector HBT; electron-cyclotron resonance plasma etching; emitter-base junction; implant mask; ion dose; ion implantation; Boron; Degradation; Electrodes; Etching; Gallium arsenide; Heterojunction bipolar transistors; Implants; Ion implantation; Plasma temperature; Stress; Gallium (Ga) materials/devices; heterojunction bipolar transistors (HBTs);
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/TED.2005.856800
Filename
1510902
Link To Document