Investigating the Electromechanical Sensitivity of Carbon-Nanotube-Coated Microfibers

The piezoresistance of carbon nanotube (CNT)-coated microfibers is examined using diametric compression. Diverse CNT forest morphologies were studied by changing the CNT length, diameter, and areal density via synthesis time and fiber surface treatment prior to CNT synthesis. Large-diameter (30–60 n...

Full description

Saved in:
Bibliographic Details
Published inSensors (Basel, Switzerland) Vol. 23; no. 11
Main Authors Bellott, Elizabeth, Li, Yushan, Gunter, Connor, Kovaleski, Scott, Maschmann, Matthew R.
Format Journal Article
LanguageEnglish
Published United States MDPI AG 30.05.2023
Subjects
Online AccessGet full text

Cover

Loading…
Abstract The piezoresistance of carbon nanotube (CNT)-coated microfibers is examined using diametric compression. Diverse CNT forest morphologies were studied by changing the CNT length, diameter, and areal density via synthesis time and fiber surface treatment prior to CNT synthesis. Large-diameter (30–60 nm) and relatively low-density CNTs were synthesized on as-received glass fibers. Small-diameter (5–30 nm) and-high density CNTs were synthesized on glass fibers coated with 10 nm of alumina. The CNT length was controlled by adjusting synthesis time. Electromechanical compression was performed by measuring the electrical resistance in the axial direction during diametric compression. Gauge factors exceeding three were measured for small-diameter (<25 μm) coated fibers, corresponding to as much as 35% resistance change per micrometer of compression. The gauge factor for high-density, small-diameter CNT forests was generally greater than those for low-density, large-diameter forests. A finite element simulation shows that the piezoresistive response originates from both the contact resistance and intrinsic resistance of the forest itself. The change in contact and intrinsic resistance are balanced for relatively short CNT forests, while the response is dominated by CNT electrode contact resistance for taller CNT forests. These results are expected to guide the design of piezoresistive flow and tactile sensors.
AbstractList The piezoresistance of carbon nanotube (CNT)-coated microfibers is examined using diametric compression. Diverse CNT forest morphologies were studied by changing the CNT length, diameter, and areal density via synthesis time and fiber surface treatment prior to CNT synthesis. Large-diameter (30–60 nm) and relatively low-density CNTs were synthesized on as-received glass fibers. Small-diameter (5–30 nm) and-high density CNTs were synthesized on glass fibers coated with 10 nm of alumina. The CNT length was controlled by adjusting synthesis time. Electromechanical compression was performed by measuring the electrical resistance in the axial direction during diametric compression. Gauge factors exceeding three were measured for small-diameter (<25 μm) coated fibers, corresponding to as much as 35% resistance change per micrometer of compression. The gauge factor for high-density, small-diameter CNT forests was generally greater than those for low-density, large-diameter forests. A finite element simulation shows that the piezoresistive response originates from both the contact resistance and intrinsic resistance of the forest itself. The change in contact and intrinsic resistance are balanced for relatively short CNT forests, while the response is dominated by CNT electrode contact resistance for taller CNT forests. These results are expected to guide the design of piezoresistive flow and tactile sensors.
Author Bellott, Elizabeth
Gunter, Connor
Maschmann, Matthew R.
Kovaleski, Scott
Li, Yushan
Author_xml – sequence: 1
  fullname: Bellott, Elizabeth
– sequence: 2
  fullname: Li, Yushan
– sequence: 3
  fullname: Gunter, Connor
– sequence: 4
  fullname: Kovaleski, Scott
– sequence: 5
  orcidid: 0000000207406228
  fullname: Maschmann, Matthew R.
  organization: ORCID:0000000207406228
BackLink https://www.osti.gov/biblio/2422052$$D View this record in Osti.gov
BookMark eNqNjrEOgkAQRC8GE0H9h4s9CR6Y0BOMFtqoNTnOBdbgbsKtJP69FBaWVjPF5L2JVEBMMFPhNjNZnBuTBD99oSLvH0li0jTNQ3U70ghesLWC1GrpQJc9OBn4Ca6zhM72-gLkUXBEeWtudGGHmik-W2J51RAXbAXu-oRu4AZrGPxKzRvbe1h_c6k2-_JaHGKeVJV3KBPcMdFkqkw23dqZ9K_RBy0hRF8
ContentType Journal Article
CorporateAuthor Univ. of Missouri, Columbia, MO (United States)
CorporateAuthor_xml – name: Univ. of Missouri, Columbia, MO (United States)
DBID OTOTI
DatabaseName OSTI.GOV
DatabaseTitleList
DeliveryMethod fulltext_linktorsrc
Discipline Engineering
Chemistry
EISSN 1424-8220
ExternalDocumentID 2422052
GroupedDBID ---
123
2WC
3V.
53G
5VS
7X7
88E
8FE
8FG
8FI
8FJ
AADQD
AAHBH
ABDBF
ABJCF
ABUWG
ADBBV
AENEX
AFKRA
AFZYC
ALIPV
ALMA_UNASSIGNED_HOLDINGS
ARAPS
BENPR
BPHCQ
BVXVI
CCPQU
CS3
D1I
DU5
E3Z
EBD
ESX
F5P
FYUFA
GROUPED_DOAJ
GX1
HCIFZ
HH5
HMCUK
HYE
IAO
KB.
KQ8
L6V
M1P
M48
M7S
MODMG
M~E
OK1
OTOTI
P2P
P62
PDBOC
PIMPY
PQQKQ
PROAC
PSQYO
RIG
RNS
RPM
TUS
UKHRP
XSB
~8M
ID FETCH-osti_scitechconnect_24220523
ISSN 1424-8220
IngestDate Mon Aug 12 05:46:43 EDT 2024
IsPeerReviewed true
IsScholarly true
Issue 11
Language English
LinkModel OpenURL
MergedId FETCHMERGED-osti_scitechconnect_24220523
Notes USDOE Office of Science (SC)
SC0022145
ORCID 0000000207406228
ParticipantIDs osti_scitechconnect_2422052
PublicationCentury 2000
PublicationDate 2023-05-30
PublicationDateYYYYMMDD 2023-05-30
PublicationDate_xml – month: 05
  year: 2023
  text: 2023-05-30
  day: 30
PublicationDecade 2020
PublicationPlace United States
PublicationPlace_xml – name: United States
PublicationTitle Sensors (Basel, Switzerland)
PublicationYear 2023
Publisher MDPI AG
Publisher_xml – name: MDPI AG
SSID ssj0023338
Score 4.864349
Snippet The piezoresistance of carbon nanotube (CNT)-coated microfibers is examined using diametric compression. Diverse CNT forest morphologies were studied by...
SourceID osti
SourceType Open Access Repository
SubjectTerms Chemistry
Engineering
Instruments & Instrumentation
Title Investigating the Electromechanical Sensitivity of Carbon-Nanotube-Coated Microfibers
URI https://www.osti.gov/biblio/2422052
Volume 23
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
link http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwnV3PT8IwFG4UD-rBKGpU1DTGm5kZ-6lHQAQ1ECKQ4InQ0gUPrglsMeGv972ujBoJUS8L61jD-jV938r33kfItS2A8_soChNYVDtwXYuF5bEF0cEJOQu4p-p0t9pBs-89D_zBws1eZ5ck7JbPV-aV_AdVaANcMUv2D8jmnUIDfAZ84QgIw_FXGBtFMnTSUz1ztfkQmNCrxr-LCnVtEaFysaZMxhYsqjJJmbBqcoScs4W6vAjVIzOTruLN6MYDNLQK4U5tF3c_35N5liNsbCNgno_WfphKsUzsoxQDb-lsspyKjTTWliDK8DqXCL9IGCChzbS7WDjC3JdwlApQ_8WitEkPnaebSsNYWj3Hs4COZF8RK9r0epzlHy_mXXkZqHL5INAKx_Yh8G66Zb9Atqr1duc1f812XeVfnvcNwVYCFgZt6O2TPc33aSUD74BsiLhItmsLm70i2TUqQh6S_jdIKUBKf0BKDUipjOhqSKkB6RG5eqz3ak0Lf-EQSA9W7uUoceLJUD-me0wKsYzFCaGBw11YMcd2eM89xqM7MQpYZIfhyIHTMT8lpTUdna29WiI7SxjPSSGZpuICCFfCLvUIfwG-BTj0
link.rule.ids 230,315,783,787,888
linkProvider ProQuest
openUrl ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fsummon.serialssolutions.com&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&rft.genre=article&rft.atitle=Investigating+the+Electromechanical+Sensitivity+of+Carbon-Nanotube-Coated+Microfibers&rft.jtitle=Sensors+%28Basel%2C+Switzerland%29&rft.au=Bellott%2C+Elizabeth&rft.au=Li%2C+Yushan&rft.au=Gunter%2C+Connor&rft.au=Kovaleski%2C+Scott&rft.date=2023-05-30&rft.pub=MDPI+AG&rft.issn=1424-8220&rft.eissn=1424-8220&rft.volume=23&rft.issue=11&rft.externalDocID=2422052
thumbnail_l http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=1424-8220&client=summon
thumbnail_m http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=1424-8220&client=summon
thumbnail_s http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=1424-8220&client=summon