Indirect exciton-phonon dynamics in MoS2 revealed by ultrafast electron
diffraction
- URL: http://arxiv.org/abs/2112.15240v2
- Date: Thu, 28 Dec 2023 01:11:06 GMT
- Title: Indirect exciton-phonon dynamics in MoS2 revealed by ultrafast electron
diffraction
- Authors: Jianbo Hu, Yang Xiang, Beatrice Matilde Ferrari, Emilio Scalise, and
Giovanni Maria Vanacore
- Abstract summary: Transition metal dichalcogenides layered nano-crystals are emerging as promising candidates for next-generation optoelectronic and quantum devices.
Here, we use ultrafast electron diffraction and ab initio calculations to investigate the many-body structural dynamics following nearly-resonant excitation of low-energy indirect excitons in MoS2.
Our results highlight the strong selectivity of phononic excitations directly associated with the specific indirect-exciton nature of the wavelength-dependent electronic transitions triggered in the system.
- Score: 5.782172606425799
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Transition metal dichalcogenides layered nano-crystals are emerging as
promising candidates for next-generation optoelectronic and quantum devices. In
such systems, the interaction between excitonic states and atomic vibrations is
crucial for many fundamental properties, such as carrier mobilities, quantum
coherence loss, and heat dissipation. In particular, to fully exploit their
valley-selective excitations, one has to understand the many-body exciton
physics of zone-edge states. So far, theoretical and experimental studies have
mainly focused on the exciton-phonon dynamics in high-energy direct excitons
involving zone-center phonons. Here, we use ultrafast electron diffraction and
ab initio calculations to investigate the many-body structural dynamics
following nearly-resonant excitation of low-energy indirect excitons in MoS2.
By exploiting the large momentum carried by scattered electrons, we identify
the excitation of in-plane K- and Q-phonon modes with E^' symmetry as key for
the stabilization of indirect excitons generated via near-infrared light at
1.55 eV, and we shed light on the role of phonon anharmonicity and the ensuing
structural evolution of the MoS2 crystal lattice. Our results highlight the
strong selectivity of phononic excitations directly associated with the
specific indirect-exciton nature of the wavelength-dependent electronic
transitions triggered in the system.
Related papers
- Superradiance of strongly interacting dipolar excitons in moiré quantum materials [0.08192907805418582]
We study the cooperative radiance of moir'e excitons that is demonstrated to emerge from the deep subwavelength nature of the moir'e lattice.
Our results show that interlayer moir'e excitons offer a unique platform for exploring cooperative optical phenomena in strongly interacting many-body systems.
arXiv Detail & Related papers (2024-10-11T15:08:58Z) - Visualizing Dynamics of Charges and Strings in (2+1)D Lattice Gauge Theories [103.95523007319937]
We study the dynamics of local excitations in a lattice of superconducting qubits.
For confined excitations, the magnetic field induces a tension in the string connecting them.
Our method allows us to experimentally image string dynamics in a (2+1)D LGT.
arXiv Detail & Related papers (2024-09-25T17:59:05Z) - Higher-order topological Peierls insulator in a two-dimensional
atom-cavity system [58.720142291102135]
We show how photon-mediated interactions give rise to a plaquette-ordered bond pattern in the atomic ground state.
The pattern opens a non-trivial topological gap in 2D, resulting in a higher-order topological phase hosting corner states.
Our work shows how atomic quantum simulators can be harnessed to investigate novel strongly-correlated topological phenomena.
arXiv Detail & Related papers (2023-05-05T10:25:14Z) - Emergent Quasiperiodicity from Polariton-phonon Hybrid Excitations in
Waveguide Quantum Optomechanics [2.798030314600194]
We investigate polariton-phonon hybrid excitations, which describe the collective excitations of emitter-photon polaritons and vibrational phonons.
We demonstrate the emergence of an interaction-induced quasiperiodic structure caused by the interplay between phonon scatterings and waveguide-mediated long-range couplings.
arXiv Detail & Related papers (2022-07-18T12:15:08Z) - Driving Force and Nonequilibrium Vibronic Dynamics in Charge Separation
of Strongly Bound Electron-Hole Pairs [59.94347858883343]
We study the dynamics of charge separation in one, two and three-dimensional donor-acceptor networks.
This allows us to identify the precise conditions in which underdamped vibrational motion induces efficient long-range charge separation.
arXiv Detail & Related papers (2022-05-11T17:51:21Z) - Engineering the Radiative Dynamics of Thermalized Excitons with Metal
Interfaces [58.720142291102135]
We analyze the emission properties of excitons in TMDCs near planar metal interfaces.
We find suppression or enhancement of emission relative to the point dipole case by several orders of magnitude.
nanoscale optical cavities are a viable pathway to generating long-lifetime exciton states in TMDCs.
arXiv Detail & Related papers (2021-10-11T19:40:24Z) - Probing Electron-Hole Coherence in Strongly-Driven Solids [2.2182171526013774]
High-harmonic generation (HHG) is a coherent optical process in which the incident photon energy is up-converted to the multiples of its initial energy.
In solids, under the influence of a strong laser field, electron-hole (e-h) pairs are generated and subsequently driven to high energy and momentum.
arXiv Detail & Related papers (2021-09-09T18:39:51Z) - Electronic decay process spectra including nuclear degrees of freedom [49.1574468325115]
We explore the ultra-rapid electronic motion spanning attoseconds to femtoseconds, demonstrating that it is equally integral and relevant to the discipline.
The advent of ultrashort attosecond pulse technology has revolutionized our ability to directly observe electronic rearrangements in atoms and molecules.
arXiv Detail & Related papers (2021-02-10T16:51:48Z) - Exciton-trion dynamics of a single molecule in a radio-frequency cavity [0.0]
Trions and neutral excitons can be efficiently induced in single molecules by tip-enhanced spectromicroscopic techniques.
Here, we investigate exciton-trion dynamics by phase fluorometry, combining radio-frequency scanning tunnelling luminescence with time-resolved single photon detection.
We generate excitons and trions in single Zinc Phthalocyanine (ZnPc) molecules on NaCl/Ag(111), determine their dynamics and trace the evolution of the system in the picosecond range with atomic resolution.
arXiv Detail & Related papers (2020-11-28T09:17:34Z) - Strongly entangled system-reservoir dynamics with multiphoton pulses
beyond the two-excitation limit: Exciting the atom-photon bound state [62.997667081978825]
We study the non-Markovian feedback dynamics of a two-level system interacting with the electromagnetic field inside a semi-infinite waveguide.
We compare the trapped excitation for an initially excited quantum emitter and an emitter prepared via quantized pulses containing up to four photons.
arXiv Detail & Related papers (2020-11-07T12:56:16Z) - Understanding Radiative Transitions and Relaxation Pathways in
Plexcitons [0.0]
Molecular aggregates on plasmonic nanoparticles have emerged as attractive systems for the studies of cavity quantum electrodynamics.
We show that while the metal is responsible for destroying the coherence of the excitation, the molecular aggregate significantly participates in dissipating the energy.
We show that the dynamics beyond a few femtoseconds has to be cast in the language of hot electron distributions and excitons.
arXiv Detail & Related papers (2020-02-13T17:20:29Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.