Ultrafast carrier and lattice cooling in Ti2CTx MXene thin films
File(s)
Author(s)
Type
Journal Article
Abstract
Metallic MXenes are promising two-dimensional materials for energy storage,
(opto)electronics, and photonics due to their high electrical conductivity and strong light-matter
interaction. Energy dissipation in MXenes is fundamental for photovoltaic and photothermal
applications. Here we apply ultrafast laser spectroscopy across a broad time range (fs-μs) to
study the cooling dynamics of electrons and lattice in emerging Ti2CTx thin films compared to
widely studied Ti3C2Tx thin films. Carrier cooling time in Ti2CTx is persistently ~2.6 ps without
hot-phonon bottleneck. After hot carrier cooling is completed, the transient absorption (TA)
spectra of Ti2CTx MXene can be well described by thermochromic effect. Heat dissipation in
MXene thin films occurs over hundreds of nanoseconds with thermal diffusivity ~ 0.06 mm2
s
−1
for Ti2CTx and ~ 0.02 mm2
s
−1
for Ti3C2Tx, likely due to inefficient inter-flake heat transfer.
Our results unravel the energy dissipation dynamics in Ti2CTx films, showcasing the potential
applications in energy conversion.
(opto)electronics, and photonics due to their high electrical conductivity and strong light-matter
interaction. Energy dissipation in MXenes is fundamental for photovoltaic and photothermal
applications. Here we apply ultrafast laser spectroscopy across a broad time range (fs-μs) to
study the cooling dynamics of electrons and lattice in emerging Ti2CTx thin films compared to
widely studied Ti3C2Tx thin films. Carrier cooling time in Ti2CTx is persistently ~2.6 ps without
hot-phonon bottleneck. After hot carrier cooling is completed, the transient absorption (TA)
spectra of Ti2CTx MXene can be well described by thermochromic effect. Heat dissipation in
MXene thin films occurs over hundreds of nanoseconds with thermal diffusivity ~ 0.06 mm2
s
−1
for Ti2CTx and ~ 0.02 mm2
s
−1
for Ti3C2Tx, likely due to inefficient inter-flake heat transfer.
Our results unravel the energy dissipation dynamics in Ti2CTx films, showcasing the potential
applications in energy conversion.
Date Issued
2024-12-25
Date Acceptance
2024-11-18
Citation
Nano Letters: a journal dedicated to nanoscience and nanotechnology, 2024, 24 (51), pp.16333-16341
ISSN
1530-6984
Publisher
American Chemical Society
Start Page
16333
End Page
16341
Journal / Book Title
Nano Letters: a journal dedicated to nanoscience and nanotechnology
Volume
24
Issue
51
Copyright Statement
© 2024 The Authors. Published by American Chemical Society. This publication is licensed under
CC-BY 4.0 .
CC-BY 4.0 .
License URL
Identifier
https://pubs.acs.org/doi/10.1021/acs.nanolett.4c04583
Publication Status
Published
Date Publish Online
2024-11-22