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February 8, 2026Nanomaterials0 citationsOpen Access

Nonequilibrium Photocarrier and Phonon Dynamics in Dirac Semimetal NiTe2 Microcrystals Probed by Ultrafast Reflectivity Spectroscopy

SMShijie MaKSKaiwen SunPSPeng Suo

Key Points

  • This work aims to explore the nonequilibrium dynamics of photocarriers and phonons in the Dirac semimetal NiTe2.
  • Utilized time-resolved microscopic transient reflectivity spectroscopy
  • Conducted experiments with photoexcitation at 390 nm
  • Analyzed transient reflectivity kinetics with a triple-exponential decay function
  • Fastest relaxation occurs on a sub-picosecond timescale linked to electron-optical phonon coupling
  • Intermediate component averages ~8 ps, related to electron-hole recombination
  • Slower decay component ranges ~20-30 ps, assigned to anharmonic decay of optical to acoustic phonons

Abstract

Topological 3D Dirac semimetals are characterized by bulk Dirac cone band crossings and nontrivial topological surface states, giving rise to a wealth of exotic physical properties and attracting considerable attention in recent years. Understanding the nonequilibrium dynamics of Dirac semimetals in micro-size provides critical guidance for the design of micro- and nanoscale optoelectronic and ultrafast photonic devices. In this work, we employ time-resolved microscopic transient spectroscopy to investigate the nonequilibrium photocarrier and lattice dynamics in microcrystalline Dirac semimetal NiTe2, a prototypical 3D Dirac semimetal. Following photoexcitation at 390 nm, the transient reflectivity kinetics of NiTe2 can be well described with a triple-exponential decay function. The fastest relaxation component occurs on a sub-picosecond timescale and increases with pump fluence, which originates from electron-optical phonon coupling. An intermediate relaxation process with a characteristic time of ~8 ps is attributed to electron–hole recombination, while a slower decay component on the order of ~20–30 ps can be assigned to the anharmonic decay of optical phonons into acoustic phonons. Polarization-resolved measurements reveal nearly in-plane isotropic transient responses, which are insensitive to the polarization of probe light. These findings contribute to the physical insights for the development of future photonics and optoelectronic devices based on topological Dirac semimetals.

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Cite This Study

Ma et al. (2026) studied this question.

synapsesocial.com/papers/698828330fc35cd7a884777ehttps://doi.org/10.3390/nano16030204
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