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        <identifier>oai:www.ideals.illinois.edu:2142/72941</identifier>
        <datestamp>2023-07-11</datestamp>
        <setSpec>col_2142_5131</setSpec>
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        <thesis xmlns="http://www.ndltd.org/standards/metadata/etdms/1.1/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:dc="http://purl.org/dc/elements/1.1/" xsi:schemaLocation="http://www.ndltd.org/standards/metadata/etdms/1.1/ http://www.ndltd.org/standards/metadata/etdms/1.1/etdms11.xsd http://purl.org/dc/elements/1.1/ http://www.ndltd.org/standards/metadata/etdms/1.1/etdmsdc.xsd">
          <dc:contributor>Leburton, Jean-Pierre</dc:contributor>
          <dc:contributor>Leburton, Jean-Pierre</dc:contributor>
          <dc:contributor>Schulten, Klaus J.</dc:contributor>
          <dc:contributor>Lyding, Joseph W.</dc:contributor>
          <dc:contributor>Bashir, Rashid</dc:contributor>
          <dc:creator>Sathe, Chaitanya</dc:creator>
          <dc:date>2015-01-21T19:49:41Z</dc:date>
          <dc:date>2015-01-21T19:49:41Z</dc:date>
          <dc:date>2014-12</dc:date>
          <dc:date>2015-01-21</dc:date>
          <dc:date>2014-12</dc:date>
          <dc:description>Inexpensive and fast methods to sequence the genome of individuals using
nanopore technology can lead to tremendous advancement in the  eld of modern medicine. The thickness of the membranes employed in nanopore-based
sensors presents a fundamental limitation to the physical dimension, of the
translocating DNA molecule, that can be resolved. Typical solid-state membranes are too thick and usually fail to recognize single nucleotides on a DNA
strand. Graphene is a sub-nanometer membrane, comprising of carbon atoms
arranged in a honeycomb lattice, with remarkable electronic and mechanical
properties. The thickness of a graphene membrane (3  A) is comparable to
the vertical stacking distance between base pairs in the DNA (3.5  A) making
graphene an ideal candidate for DNA sequencing. Resolving at the atomic
level electric  eld-driven DNA translocation through graphene nanopores is
crucial to guide the design of graphene-based sequencing devices. Molecular
dynamics (MD) simulations, in principle, can achieve such resolution and are
employed to investigate the e ects of applied voltage, DNA conformation and
sequence as well as pore charge on the translocation characteristics of DNA.
In addition, graphene is electrically active and transverse electronic currents
along the graphene membrane can complement ionic current measurements,
and potentially extend the molecular sensing capability of graphene-based
nanopores. We have combined the self-consistent Poisson-Boltzmann formal-
ism with Non-Equilibrium Green's Function (NEGF) technique along with
charge densities of DNA arising from MD simulations to show detection of
rotational and positional conformation of a double-stranded DNA (dsDNA),
inside the nanopore, via sheet currents in graphene nanoribbons. Furthermore, we show the ability of such transverse electronic currents to detect
conformational transition, arising due to forced extension, of the dsDNA
molecule from helical to zipper form, and also detect ssDNA translocation
at single base pair resolution.</dc:description>
          <dc:description>Item withdrawn by Laura Spradlin (lspradl2@illinois.edu) on 2014-08-07T20:59:38Z
Item was in collections:
University of Illinois Theses &amp; Dissertations (ID: 1)
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          <dc:identifier>http://hdl.handle.net/2142/72941</dc:identifier>
          <dc:language>en</dc:language>
          <dc:rights>Copyright 2014 Chaitanya Sathe</dc:rights>
          <dc:subject>Nanopore</dc:subject>
          <dc:subject>DNA Sequencing</dc:subject>
          <dc:subject>Molecular Dynamics</dc:subject>
          <dc:subject>Graphene</dc:subject>
          <dc:subject>Electron Transport</dc:subject>
          <dc:title>Computational study of graphene nanopore sensor for DNA sensing</dc:title>
          <dc:type>text</dc:type>
          <degree>
            <department>Electrical &amp; Computer Eng</department>
            <departmentCode>1933</departmentCode>
            <discipline>Electrical &amp; Computer Engr</discipline>
            <disciplineCode>1200</disciplineCode>
            <grantor>University of Illinois at Urbana-Champaign</grantor>
            <level>Dissertation</level>
            <name>Ph.D.</name>
            <program>PHD:Electr &amp; Computer Eng-UIUC</program>
            <programCode>10KS1200PHD</programCode>
          </degree>
        </thesis>
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