A
Sandwiched/Cracked Flexible Film for Multithermal Monitoring and Switching
Devices
Posted on 2017-08-30 - 00:00
Polydimethylsiloxane
(PDMS)-based flexible films have substantiated advantages in various
sensing applications. Here, we demonstrate the highly sensitive and
programmable thermal-sensing capability (thermal index, B, up to 126 × 103 K) of flexible films with tunable
sandwiched microstructures (PDMS/cracked single-walled carbon nanotube
(SWCNT) film/PDMS) when a thermal stimulus is applied. We found that
this excellent performance results from the following features of
the film’s structural and material design: (1) the sandwiched
structure allows the film to switch from a three-dimensional to a
two-dimensional in-plane deformation and (2) the stiffness of the
SWCNT film is decreased by introducing microcracks that make deformation
easy and that promote the macroscopic piezoresistive behavior of SWCNT
crack islands and the microscopic piezoresistive behavior of SWCNT
bundles. The PDMS layer is characterized by a high coefficient of
thermal expansion (α = 310 × 10–6 K–1) and low stiffness (∼2 MPa) that allow for
greater flexibility and higher temperature sensitivity. We determined
the efficacy of our sandwiched, cracked, flexible films in monitoring
and switching flexible devices when subjected to various stimuli,
including thermal conduction, thermal radiation, and light radiation.
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Tai, Yanlong; Chen, Tao; Lubineau, Gilles (2017). A
Sandwiched/Cracked Flexible Film for Multithermal Monitoring and Switching
Devices. ACS Publications. Collection. https://doi.org/10.1021/acsami.7b05467