<?xml version='1.0' encoding='utf-8'?>
<?xml-stylesheet type="text/xsl" href="/v2/static/oai2.xsl"?>
<OAI-PMH xmlns="http://www.openarchives.org/OAI/2.0/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/ http://www.openarchives.org/OAI/2.0/OAI-PMH.xsd">
  <responseDate>2026-10-08T00:45:49Z</responseDate>
  <request identifier="oai:figshare.com:article/34044325" metadataPrefix="oai_dc" verb="GetRecord">https://api.figshare.com/v2/oai</request>
  <GetRecord>
    <record>
      <header>
        <identifier>oai:figshare.com:article/34044325</identifier>
        <datestamp>2026-10-01T11:14:12Z</datestamp>
        <setSpec>category_1</setSpec>
        <setSpec>category_146</setSpec>
        <setSpec>category_915</setSpec>
        <setSpec>category_16</setSpec>
        <setSpec>category_21</setSpec>
        <setSpec>category_873</setSpec>
        <setSpec>category_734</setSpec>
        <setSpec>category_106</setSpec>
        <setSpec>portal_63</setSpec>
        <setSpec>item_type_2</setSpec>
        <setSpec>month_year_10_2026</setSpec>
      </header>
      <metadata>
        <oai_dc:dc xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"  xmlns:oai_dc="http://www.openarchives.org/OAI/2.0/oai_dc/" xmlns:dc="http://purl.org/dc/elements/1.1/" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/oai_dc/ http://www.openarchives.org/OAI/2.0/oai_dc.xsd">
          <dc:title>Infiltration
Dynamics in Flexible Nanochannels</dc:title>
          <dc:creator>Deeptayan Datta (14652136)</dc:creator>
          <dc:creator>Sunando DasGupta (1506613)</dc:creator>
          <dc:creator>Monojit Chakraborty (1506691)</dc:creator>
          <dc:subject>Biophysics</dc:subject>
          <dc:subject>Space Science</dc:subject>
          <dc:subject>Physical Sciences not elsewhere classified</dc:subject>
          <dc:subject>Physiology</dc:subject>
          <dc:subject>Biotechnology</dc:subject>
          <dc:subject>Chemical Sciences not elsewhere classified</dc:subject>
          <dc:subject>Biological Sciences not elsewhere classified</dc:subject>
          <dc:subject>Science Policy</dc:subject>
          <dc:subject>enabling improved performance</dc:subject>
          <dc:subject>effect include coalescence</dc:subject>
          <dc:subject>current work extends</dc:subject>
          <dc:subject>initial transient dynamics</dc:subject>
          <dc:subject>time elastocapillary behavior</dc:subject>
          <dc:subject>microscale lithographic patterns</dc:subject>
          <dc:subject>instantaneous channel width</dc:subject>
          <dc:subject>study also examines</dc:subject>
          <dc:subject>influencing infiltration dynamics</dc:subject>
          <dc:subject>nanoscale systems remains</dc:subject>
          <dc:subject>wall elastic stiffness</dc:subject>
          <dc:subject>capillary forces interact</dc:subject>
          <dc:subject>flexible channel walls</dc:subject>
          <dc:subject>flexible walls</dc:subject>
          <dc:subject>channel width</dc:subject>
          <dc:subject>study highlights</dc:subject>
          <dc:subject>molecular dynamics</dc:subject>
          <dc:subject>infiltration dynamics</dc:subject>
          <dc:subject>channel deformation</dc:subject>
          <dc:subject>nanoscale systems</dc:subject>
          <dc:subject>wall wettability</dc:subject>
          <dc:subject>wall deformation</dc:subject>
          <dc:subject>wall bending</dc:subject>
          <dc:subject>elastic forces</dc:subject>
          <dc:subject>capillary forces</dc:subject>
          <dc:subject>wet hair</dc:subject>
          <dc:subject>well understood</dc:subject>
          <dc:subject>well established</dc:subject>
          <dc:subject>using water</dc:subject>
          <dc:subject>theoretical models</dc:subject>
          <dc:subject>solid materials</dc:subject>
          <dc:subject>soft robotics</dc:subject>
          <dc:subject>simulation data</dc:subject>
          <dc:subject>phenomena illustrating</dc:subject>
          <dc:subject>often rivaling</dc:subject>
          <dc:subject>new model</dc:subject>
          <dc:subject>liquid progression</dc:subject>
          <dc:subject>liquid interface</dc:subject>
          <dc:subject>liquid infiltration</dc:subject>
          <dc:subject>limited attention</dc:subject>
          <dc:subject>larger scales</dc:subject>
          <dc:subject>key parameters</dc:subject>
          <dc:subject>infiltration length</dc:subject>
          <dc:subject>generation micro</dc:subject>
          <dc:subject>even exceeding</dc:subject>
          <dc:description>Capillary forces at the liquid interface
can become dominant in
microscale and nanoscale systems, often rivaling or even exceeding
the elastic resistance of solid materials. Phenomena illustrating
this effect include coalescence of wet hair and the collapse of microscale
lithographic patterns, demonstrating how capillary forces can significantly
deform solid geometries. The early-time elastocapillary behavior in
nanoscale systems remains a strikingly overlooked research gap. While
fluid–structure interactions are well understood at larger
scales, the initial transient dynamics at the nanoscale, where elastic
and capillary forces interact, have received very limited attention.
This study investigates liquid infiltration into nanochannels and
examines the influence of capillary forces on flexible channel walls.
Molecular dynamics (MD) simulations are employed, using water as the
infiltrating liquid inside graphene channels. From the simulation
data, key parameters such as infiltration length and instantaneous
channel width are calculated. The behavior of liquid infiltration
in nanochannels with fixed and flexible walls is compared. The simulations
analyze the interaction between channel deformation and infiltration,
highlighting the contribution of capillary and elastic forces. The
study also examines the role of wall wettability, wall elastic stiffness,
and channel width in influencing infiltration dynamics and wall bending.
While theoretical models for liquid infiltration in fixed microchannels
are well established, the current work extends this understanding
to flexible nanochannels. A new model is developed based on the Euler–Bernoulli
beam theory to relate the channel width and infiltration length. Furthermore,
a modified Lucas–Washburn equation, incorporating Molecular
Kinetic Theory, is used to predict the liquid meniscus infiltration
profile. This combined theoretical approach effectively captures both
the wall deformation and the liquid progression. This study highlights
the importance of capillary–elastic interactions in technologies
such as self-assembled nanostructures and soft robotics, enabling
improved performance of next-generation micro/nanoscale systems.</dc:description>
          <dc:date>2026-10-01T00:00:00Z</dc:date>
          <dc:type>Dataset</dc:type>
          <dc:type>Media</dc:type>
          <dc:identifier>10.1021/acs.langmuir.6c04178.s003</dc:identifier>
          <dc:relation>https://figshare.com/articles/media/Infiltration_Dynamics_in_Flexible_Nanochannels/34044325</dc:relation>
          <dc:rights>CC BY-NC 4.0</dc:rights>
        </oai_dc:dc>
      </metadata>
    </record>
  </GetRecord>
</OAI-PMH>
