Unconventional photoinduced charge density wave dynamics in <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML"><mml:mrow><mml:mn>2</mml:mn><mml:mi>H</mml:mi><mml:mtext>−</mml:mtext><mml:msub><mml:mi>NbSe</mml:mi><mml:mn>2</mml:mn></mml:msub></mml:mrow></mml:math>
Abstrak
We investigated temperature ($T$) dependent ultrafast near-infrared (NIR) transient reflectivity dynamics in coexisting superconducting (SC) and charge density wave (CDW) phases of two-dimensional 2H-NbSe$_{2}$ using NIR and visible excitations. With visible pump-photon excitation (400 nm) we find a slow high-energy quasiparticle relaxation channel which is present in all phases. In the CDW phase, we observe a distinctive transient response component, irrespective of the pump-photon energy. The component is marked by the absence of coherent amplitude mode oscillations and a relatively slow, picosecond rise time, which is different than in most of the typical CDW materials. In the SC phase, another tiny component emerges that is associated with optical suppression of the SC phase. The transient reflectivity relaxation in the CDW phase is dominated by phonon diffusive processes with an estimated low-$T$ heat diffusion constant anisotropy of $\sim30$. Strong excitation of the CDW phase reveals a weakly non-thermal CDW order parameter (OP) suppression. Unlike CDW systems with a larger gap, where the optical OP suppression involves only a small fraction of phonon degrees of freedom, the OP suppression in 2H-NbSe$_{2}$ is characterised by the excitation of a large amount of phonon degrees of freedom and significantly slower dynamics.
Topik & Kata Kunci
Penulis (25)
R. Venturini
Ankita Sarkar
P. Šutar
Z. Jaglivci'c
Y. Vaskivskyi
E. Goreshnik
D. Mihailovic
T. M. D. O. C. Matter
J. S. Institute
39 Jamova
1000 Ljubljana
Slovenia.
Faculty of Civil
Geodetic Engineering
U. Ljubljana
2. Jamovacesta
Ljubljana
Institute of Applied Mathematics
Physics
Mechanics
19 Jadranska
Dept. of Inorganic Chemistry
Technology
Center of Excellence on Nanoscience
Nanotechnology Nanocenter
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Cek di sumber asli →- Tahun Terbit
- 2023
- Bahasa
- en
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- Sumber Database
- Semantic Scholar
- DOI
- 10.1103/PhysRevB.108.235160
- Akses
- Open Access ✓