4.8 Article

Ultrafast Carrier Dynamics and Bandgap Renormalization in Layered PtSe2

期刊

SMALL
卷 15, 期 34, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.201902728

关键词

2D platinum diselenide; bandgap renormalization; carrier dynamics; noble metal dichalcogenides; saturable absorption

资金

  1. CAS [XDB160307] Funding Source: Medline
  2. National Natural Science Foundation of China [61675217] Funding Source: Medline
  3. Science Foundation Ireland [12/IA/1306, 12/RC/2278, PI_15/IA/3131, 15/SIRG/3329, TIDA 207367] Funding Source: Medline
  4. Key Research Program of Frontier Science, CAS [QYZDB-SSW-JSC041] Funding Source: Medline
  5. Program of Shanghai Academic Research Leader [17XD1403900] Funding Source: Medline
  6. Strategic Priority Research Program of CAS [XDB160307] Funding Source: Medline
  7. Graphene Flagship [785219] Funding Source: Medline
  8. Science Foundation Ireland (SFI) [12/IA/1306] Funding Source: Science Foundation Ireland (SFI)

向作者/读者索取更多资源

Carrier interactions in 2D nanostructures are of central importance not only in condensed-matter physics but also for a wide range of optoelectronic and photonic applications. Here, new insights into the behavior of photoinduced carriers in layered platinum diselenide (PtSe2) through ultrafast time-resolved pump-probe and nonlinear optical measurements are presented. The measurements reveal the temporal evolution of carrier relaxation, chemical potential and bandgap renormalization in PtSe2. These results imply that few-layer PtSe2 has a semiconductor-like carrier relaxation instead of a metal-like one. The relaxation follows a triple-exponential decay process and exhibits thickness-dependent relaxation times. This occurs along with a band-filling effect, which can be controlled based on the number of layers and may be applied in saturable absorption for generating ultrafast laser pulses. The findings may provide means to study many-body physics in 2D materials as well as potentially leading to applications in the field of optoelectronics and ultrafast photonics.

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