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Environmental damping and vibrational coupling of confined fluids within isolated carbon nanotubes

delete2024-07-03
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OA
AI
Y
Yuming Tu
M
Matthias Kuehne
R
Rahul Prasanna Misra
C
Cody L. Ritt
H
Hananeh Oliaei
S
Samuel Faucher
H
Haokun Li
X
Xintong Xu
A
Aubrey Penn
S
Sungyun Yang
J
Jing Yang
K
Kyle Sendgikoski
J
Joshika Chakraverty
J
John Cumings
A
Arun Majumdar
N
N. R. Aluru
J
Jordan A. Hachtel
D
Daniel Blankschtein
M
Michael S. Strano *
DOI:10.1038/s41467-024-49661-8delete
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Abstract

Abstract

En 中文
Because of their large surface areas, nanotubes and nanowires demonstrate exquisite mechanical coupling to their surroundings, promising advanced sensors and nanomechanical devices. However, this environmental sensitivity has resulted in several ambiguous observations of vibrational coupling across various experiments. Herein, we demonstrate a temperature-dependent Radial Breathing Mode (RBM) frequency in free-standing, electron-diffraction-assigned Double-Walled Carbon Nanotubes (DWNTs) that shows an unexpected and thermally reversible frequency downshift of 10 to 15%, for systems isolated in vacuum. An analysis based on a harmonic oscillator model assigns the distinctive frequency cusp, produced over 93 scans of 3 distinct DWNTs, along with the hyperbolic trajectory, to a reversible increase in damping from graphitic ribbons on the exterior surface. Strain-dependent coupling from self-tensioned, suspended DWNTs maintains the ratio of spring-to-damping frequencies, producing a stable saturation of RBM in the low-tension limit. In contrast, when the interior of DWNTs is subjected to a water-filling process, the RBM thermal trajectory is altered to that of a Langmuir isobar and elliptical trajectories, allowing measurement of the enthalpy of confined fluid phase change. These mechanisms and quantitative theory provide new insights into the environmental coupling of nanomechanical systems and the implications for devices and nanofluidic conduits. Nanotubes exhibit high vibrational coupling to the environment but lack a theoretical description. Vacuum-isolated, suspended double walled nanotubes provide a damping model for mass coupling, offering new nanomechanics and nanofluidics insights.
Keywords:
RAMAN-SPECTROSCOPY
WATER
ADSORPTION
DEPENDENCE
PRESSURE
GRAPHENE
BUNDLES
GROWTH
LONG
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Journal

Nature Communications cover
Nature Communications
IF:
15.7
Papers:
9.2W
Citations:
91.2W

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U
University of Illinois Urbana-Champaign
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2.4W
Papers: 2.0W
Citations: 35
S
Stanford University
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Papers: 8.2W
Citations: 17.0W
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University of Illinois System
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Citations: 644
University System of Maryland cover
University System of Maryland
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Papers: 5.6W
Citations: 113
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