Single-Molecule Carbon Nanotube Field-Effect Transistors for Genomic Applications

Single-molecule carbon nanotube-based field-effect transistors are promising all-electronic devices for probing interactions of various biological and chemical molecules at the single- molecule level. Such devices consist of point-functionalized carbon nanotubes which are charge sensitive in the vic...

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Main Author: Trocchia, Scott
Language:English
Published: 2018
Subjects:
Online Access:https://doi.org/10.7916/D8RF76GR
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spelling ndltd-columbia.edu-oai-academiccommons.columbia.edu-10.7916-D8RF76GR2019-05-09T15:15:42ZSingle-Molecule Carbon Nanotube Field-Effect Transistors for Genomic ApplicationsTrocchia, Scott2018ThesesElectrical engineeringNanotechnologyField-effect transistorsCarbon nanotubesGenomicsSingle-molecule carbon nanotube-based field-effect transistors are promising all-electronic devices for probing interactions of various biological and chemical molecules at the single- molecule level. Such devices consist of point-functionalized carbon nanotubes which are charge sensitive in the vicinity of a generated defect on the nanotube sidewall. Of particular interest is the characterization of the kinetic rates and thermodynamics of DNA duplex formation through repeated association (hybridization) and dissociation (melting) events on timescales unmatched by conventional single-molecule methods. In this work, we study the kinetics and thermodynamics of DNA duplex formation with two types of single-walled nanotubes: CVD-grown and solution-processed. In both assessments, we are able to extract kinetic and thermodynamic parameters governing the hybridization and melting of DNA oligonucleotides. In the latter case, devices are spun onto a wafer surface from an organic suspension, revealing consistent electrical characteristics. Significant effort is made to expand this work to wafer-level, in an effort to make the fabrication manufacturable.Englishhttps://doi.org/10.7916/D8RF76GR
collection NDLTD
language English
sources NDLTD
topic Electrical engineering
Nanotechnology
Field-effect transistors
Carbon nanotubes
Genomics
spellingShingle Electrical engineering
Nanotechnology
Field-effect transistors
Carbon nanotubes
Genomics
Trocchia, Scott
Single-Molecule Carbon Nanotube Field-Effect Transistors for Genomic Applications
description Single-molecule carbon nanotube-based field-effect transistors are promising all-electronic devices for probing interactions of various biological and chemical molecules at the single- molecule level. Such devices consist of point-functionalized carbon nanotubes which are charge sensitive in the vicinity of a generated defect on the nanotube sidewall. Of particular interest is the characterization of the kinetic rates and thermodynamics of DNA duplex formation through repeated association (hybridization) and dissociation (melting) events on timescales unmatched by conventional single-molecule methods. In this work, we study the kinetics and thermodynamics of DNA duplex formation with two types of single-walled nanotubes: CVD-grown and solution-processed. In both assessments, we are able to extract kinetic and thermodynamic parameters governing the hybridization and melting of DNA oligonucleotides. In the latter case, devices are spun onto a wafer surface from an organic suspension, revealing consistent electrical characteristics. Significant effort is made to expand this work to wafer-level, in an effort to make the fabrication manufacturable.
author Trocchia, Scott
author_facet Trocchia, Scott
author_sort Trocchia, Scott
title Single-Molecule Carbon Nanotube Field-Effect Transistors for Genomic Applications
title_short Single-Molecule Carbon Nanotube Field-Effect Transistors for Genomic Applications
title_full Single-Molecule Carbon Nanotube Field-Effect Transistors for Genomic Applications
title_fullStr Single-Molecule Carbon Nanotube Field-Effect Transistors for Genomic Applications
title_full_unstemmed Single-Molecule Carbon Nanotube Field-Effect Transistors for Genomic Applications
title_sort single-molecule carbon nanotube field-effect transistors for genomic applications
publishDate 2018
url https://doi.org/10.7916/D8RF76GR
work_keys_str_mv AT trocchiascott singlemoleculecarbonnanotubefieldeffecttransistorsforgenomicapplications
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