4.8 Article

Ultrafast Carrier and Lattice Dynamics in Plasmonic Nanocrystalline Copper Sulfide Films

Journal

LASER & PHOTONICS REVIEWS
Volume 15, Issue 3, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/lpor.202000346

Keywords

coherent optical phonons; copper sulfide; nonequilibirium processes; plasmonics; ultrafast hot-carrier dynamics

Funding

  1. UK EPSRC Programme Grant Reactive Plasmonics [EP/M013812/1]
  2. US ARO grant [W911NF-161-0261]
  3. EPSRC [EP/M011631/1, EP/J018457/1, EP/M013812/1] Funding Source: UKRI

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The study demonstrates that mesoscopic plasmonic covellite nanocrystals exhibit faster carrier relaxation and lower thermalization time compared to traditional plasmonic materials. These findings suggest advantages of this new material for active control of optical processes.
Excited carrier dynamics in plasmonic nanostructures determines many important optical properties such as nonlinear optical response and photocatalytic activity. Here it is shown that mesoscopic plasmonic covellite nanocrystals with low free-carrier concentration exhibit a much faster carrier relaxation than in traditional plasmonic materials. A nonequilibrium hot-carrier population thermalizes within first 20 fs after photoexcitation. A decreased thermalization time in nanocrystals compared to a bulk covellite is consistent with the reduced Coulomb screening in ultrathin films. The subsequent relaxation of thermalized, equilibrium electron gas is faster than in traditional plasmonic metals due to the lower carrier concentration and agrees well with that in a bulk covellite showing no evidence of quantum confinement or hot-hole trapping at the surface states. The excitation of coherent optical phonon modes in a covellite is also demonstrated, revealing coherent lattice dynamics in plasmonic materials, which until now was mainly limited to dielectrics, semiconductors, and semimetals. These findings show advantages of this new mesoscopic plasmonic material for active control of optical processes.

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