2011IEEE Transactions on Electron DevicesRequires access

The Best Control of Parasitic BJT Effect in SOI-LDMOS With SiGe Window Under Channel

Ali A. Orouji, Mahsa Mehrad

Open publisher page 40 citations

Abstract

The floating-body effect and impact ionization generate excess holes that are amplified by the parasitic bipolar junction transistor (BJT) in silicon-on-insulator lateral double-diffused MOSFETs (SOI-LDMOS) that degrade the transistor performance. In this paper, a novel silicon germanium (SiGe) window LDMOS on SOI (SW-SOI) is reported where the buried oxide under the channel region becomes thinner and a SiGe window has been replaced in order to reduce the hole concentration in the channel and control the BJT effect significantly. The novel features of an SW-SOI are simulated and compared with a conventional LDMOS on SOI (C-SOI). In addition, reduced self-heating effects and higher breakdown voltage have been achieved as compared with the C-SOI. Hence, this paper illustrates the benefits of the high performance SW-SOI device over a conventional one and expands the application of SOI MOSFETs to high temperature.

About this research paper

What this paper is about

The floating-body effect and impact ionization generate excess holes that are amplified by the parasitic bipolar junction transistor (BJT) in silicon-on-insulator lateral double-diffused MOSFETs (SOI-LDMOS) that degrade the transistor performance. In this paper, a novel silicon germanium (SiGe) window LDMOS on SOI (SW-SOI) is reported where the buried oxide under the channel region becomes thinner and a SiGe window has been replaced in order to reduce the hole concentration in the channel and control the BJT effect significantly. The novel features of an SW-SOI are simulated and compared with a conventional LDMOS on SOI (C-SOI). In addition, reduced self-heating effects and higher breakdown voltage have been achieved as compared with the C-SOI. Hence, this paper illustrates the benefits of the high performance SW-SOI device over a conventional one and expands the application of SOI MOSFETs to high temperature.

Why it matters

OpenAlex reports 40 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

The floating-body effect and impact ionization generate excess holes that are amplified by the parasitic bipolar junction transistor (BJT) in silicon-on-insulator lateral double-diffused MOSFETs (SOI-LDMOS) that degrade the transistor performance. In this paper, a novel silicon germanium (SiGe) window LDMOS on SOI (SW-SOI) is reported where the buried oxide under the channel region becomes thinner and a SiGe window has been replaced in order to reduce the hole concentration in the channel and control the BJT effect significantly. The novel features of an SW-SOI are simulated and compared with a conventional LDMOS on SOI (C-SOI). In addition, reduced self-heating effects and higher breakdown voltage have been achieved as compared with the C-SOI. Hence, this paper illustrates the benefits of the high performance SW-SOI device over a conventional one and expands the application of SOI MOSFETs to high temperature.

Key concepts: Silicon on insulator, LDMOS, Bipolar junction transistor, Materials science, Optoelectronics, Breakdown voltage, Transistor, Impact ionization

Related papers

Back to paper searchBrowse research topicsOriginal source
The Best Control of Parasitic BJT Effect in SOI-LDMOS With SiGe Window Under Channel — Research Paper | ScholarLens