Design and Fabrication of CMOS Microstructures to Locally Synthesize Carbon Nanotubes for Gas Sensing

Carbon nanotubes (CNTs) can be grown locally on custom-designed CMOS microstructures to use them as a sensing material for manufacturing low-cost gas sensors, where CMOS readout circuits are directly integrated. Such a local CNT synthesis process using thermal chemical vapor deposition (CVD) require...

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Published in:Sensors
Main Authors: Avisek Roy, Mehdi Azadmehr, Bao Q. Ta, Philipp Häfliger, Knut E. Aasmundtveit
Format: Article
Language:English
Published: MDPI AG 2019-10-01
Subjects:
Online Access:https://www.mdpi.com/1424-8220/19/19/4340
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author Avisek Roy
Mehdi Azadmehr
Bao Q. Ta
Philipp Häfliger
Knut E. Aasmundtveit
author_facet Avisek Roy
Mehdi Azadmehr
Bao Q. Ta
Philipp Häfliger
Knut E. Aasmundtveit
author_sort Avisek Roy
collection DOAJ
container_title Sensors
description Carbon nanotubes (CNTs) can be grown locally on custom-designed CMOS microstructures to use them as a sensing material for manufacturing low-cost gas sensors, where CMOS readout circuits are directly integrated. Such a local CNT synthesis process using thermal chemical vapor deposition (CVD) requires temperatures near 900 °C, which is destructive for CMOS circuits. Therefore, it is necessary to ensure a high thermal gradient around the CNT growth structures to maintain CMOS-compatible temperature (below 300 °C) on the bulk part of the chip, where readout circuits are placed. This paper presents several promising designs of CNT growth microstructures and their thermomechanical analyses (by ANSYS Multiphysics software) to check the feasibility of local CNT synthesis in CMOS. Standard CMOS processes have several conductive interconnecting metal and polysilicon layers, both being suitable to serve as microheaters for local resistive heating to achieve the CNT growth temperature. Most of these microheaters need to be partially or fully suspended to produce the required thermal isolation for CMOS compatibility. Necessary CMOS post-processing steps to realize CNT growth structures are discussed. Layout designs of the microstructures, along with some of the microstructures fabricated in a standard AMS 350 nm CMOS process, are also presented in this paper.
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spelling doaj-art-20f4e288628e407e8130601b862ebec02025-08-19T21:49:28ZengMDPI AGSensors1424-82202019-10-011919434010.3390/s19194340s19194340Design and Fabrication of CMOS Microstructures to Locally Synthesize Carbon Nanotubes for Gas SensingAvisek Roy0Mehdi Azadmehr1Bao Q. Ta2Philipp Häfliger3Knut E. Aasmundtveit4Department of Microsystems, University of South-Eastern Norway, 3184 Borre, NorwayDepartment of Microsystems, University of South-Eastern Norway, 3184 Borre, NorwayDepartment of Microsystems, University of South-Eastern Norway, 3184 Borre, NorwayDepartment of Informatics, University of Oslo, 0373 Oslo, NorwayDepartment of Microsystems, University of South-Eastern Norway, 3184 Borre, NorwayCarbon nanotubes (CNTs) can be grown locally on custom-designed CMOS microstructures to use them as a sensing material for manufacturing low-cost gas sensors, where CMOS readout circuits are directly integrated. Such a local CNT synthesis process using thermal chemical vapor deposition (CVD) requires temperatures near 900 °C, which is destructive for CMOS circuits. Therefore, it is necessary to ensure a high thermal gradient around the CNT growth structures to maintain CMOS-compatible temperature (below 300 °C) on the bulk part of the chip, where readout circuits are placed. This paper presents several promising designs of CNT growth microstructures and their thermomechanical analyses (by ANSYS Multiphysics software) to check the feasibility of local CNT synthesis in CMOS. Standard CMOS processes have several conductive interconnecting metal and polysilicon layers, both being suitable to serve as microheaters for local resistive heating to achieve the CNT growth temperature. Most of these microheaters need to be partially or fully suspended to produce the required thermal isolation for CMOS compatibility. Necessary CMOS post-processing steps to realize CNT growth structures are discussed. Layout designs of the microstructures, along with some of the microstructures fabricated in a standard AMS 350 nm CMOS process, are also presented in this paper.https://www.mdpi.com/1424-8220/19/19/4340carbon nanotubelocal cnt synthesiscmos–cnt integrationmicrostructuresmicroheatercmos-compatible temperature
spellingShingle Avisek Roy
Mehdi Azadmehr
Bao Q. Ta
Philipp Häfliger
Knut E. Aasmundtveit
Design and Fabrication of CMOS Microstructures to Locally Synthesize Carbon Nanotubes for Gas Sensing
carbon nanotube
local cnt synthesis
cmos–cnt integration
microstructures
microheater
cmos-compatible temperature
title Design and Fabrication of CMOS Microstructures to Locally Synthesize Carbon Nanotubes for Gas Sensing
title_full Design and Fabrication of CMOS Microstructures to Locally Synthesize Carbon Nanotubes for Gas Sensing
title_fullStr Design and Fabrication of CMOS Microstructures to Locally Synthesize Carbon Nanotubes for Gas Sensing
title_full_unstemmed Design and Fabrication of CMOS Microstructures to Locally Synthesize Carbon Nanotubes for Gas Sensing
title_short Design and Fabrication of CMOS Microstructures to Locally Synthesize Carbon Nanotubes for Gas Sensing
title_sort design and fabrication of cmos microstructures to locally synthesize carbon nanotubes for gas sensing
topic carbon nanotube
local cnt synthesis
cmos–cnt integration
microstructures
microheater
cmos-compatible temperature
url https://www.mdpi.com/1424-8220/19/19/4340
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