DocumentCode
3086347
Title
Comparison of self-heating effect (SHE) in short-channel bulk and ultra-thin BOX SOI MOSFETs: Impacts of doped well, ambient temperature, and SOI/BOX thicknesses on SHE
Author
Takahashi, Tatsuro ; Matsuki, Tomohiro ; Shinada, Takuro ; Inoue, Yasuyuki ; Uchida, Kazunori
Author_Institution
Dept. of Electron. & Electr. Eng., Keio Univ., Yokohama, Japan
fYear
2013
fDate
9-11 Dec. 2013
Abstract
Self-heating effects (SHEs) of bulk and SOI FETs including 6-nm ultra-thin (UT) BOX devices are systematically investigated and compared using the four-terminal gate resistance technique. For bulk FETs, it has been verified for the first time that the SHE is not negligible in nanoscale devices mainly owing to a decrease in the thermal conductivity of the more heavily doped well. Furthermore, it has been demonstrated that the magnitude of the SHE strongly depends on the chip (ambient) temperature (Tchip). For SOI FETs, the impacts of BOX/SOI thinning are evaluated and explained in terms of the thermal conductivities of materials within heat dissipation paths. It has been demonstrated that the device temperature of 6-nm UT BOX SOI FETs is close to that of bulk FETs at Tchip under operating conditions. A thermal-aware device design of the UT Body and BOX (UTBB) structure is proposed on the basis of the evaluated BOX/SOI thickness dependences of the SHE. The SHE of UTBB FETs with a raised source/drain and/or shorter contact pitch could be comparable to that of bulk FETs in deeply scaled nodes. In addition, the doping concentration under the BOX should be optimized in order to achieve low and Tchip-independent SHE.
Keywords
MOSFET; buried layers; heating; semiconductor device packaging; semiconductor doping; thermal management (packaging); BOX thicknesses; BOX/SOI thinning; SOI thicknesses; chip ambient temperature; doped well impact; heavily doped well; self-heating effect; short channel bulk SOI MOSFET; thermal aware device design; ultra-thin BOX SOI MOSFET; Field effect transistors; Heating; Logic gates; Nanoscale devices; Resistance; Silicon; Temperature dependence;
fLanguage
English
Publisher
ieee
Conference_Titel
Electron Devices Meeting (IEDM), 2013 IEEE International
Conference_Location
Washington, DC
Type
conf
DOI
10.1109/IEDM.2013.6724581
Filename
6724581
Link To Document