• Chinese Journal of Lasers
  • Vol. 48, Issue 11, 1111002 (2021)
Sen Guo1, Xin Zhao1, Zhaogang Nie1、*, Lin Ma1, Fangteng Zhang1, Weiren Zhao1, Xinzhong Li2, Jiahua Zhang3, and Wenchun Zhang4
Author Affiliations
  • 1School of Physics and Optoelectronic Engineering, Guangdong University of Technology, Guangzhou, Guangdong 510006, China
  • 2School of Physics and Engineering, Henan University of Science & Technology, Luoyang, Henan 471023, China;
  • 3State Key Laboratory of Luminescence and Applications, Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun, Jilin 130033, China
  • 4College of Traditional Chinese Medicine, Jiangxi University of Traditional Chinese Medicine, Nanchang, Jiangxi 330004, China
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    DOI: 10.3788/CJL202148.1111002 Cite this Article Set citation alerts
    Sen Guo, Xin Zhao, Zhaogang Nie, Lin Ma, Fangteng Zhang, Weiren Zhao, Xinzhong Li, Jiahua Zhang, Wenchun Zhang. Ultrafast Spectral Response of Many-Body Effects During Exciton Formation in Multilayer MoS2[J]. Chinese Journal of Lasers, 2021, 48(11): 1111002 Copy Citation Text show less
    Time-resolved spectroscopic measurement system as well as its spectroscopic characterization. (a) Schematic illustration of femtosecond transient absorption spectroscopy system; (b) laser spectrum of pump pulse; (c) cross-correlation trace of pump and probe pulses
    Fig. 1. Time-resolved spectroscopic measurement system as well as its spectroscopic characterization. (a) Schematic illustration of femtosecond transient absorption spectroscopy system; (b) laser spectrum of pump pulse; (c) cross-correlation trace of pump and probe pulses
    Static spectroscopic characterization of multilayer MoS2. (a) Static absorption spectrum of multilayer MoS2 collected at 77K with schematic illustration of energy levels at K valley of multilayer MoS2 shown in inset; (b) Raman spectrum of multilayer MoS2 excited by 532 nm laser
    Fig. 2. Static spectroscopic characterization of multilayer MoS2. (a) Static absorption spectrum of multilayer MoS2 collected at 77K with schematic illustration of energy levels at K valley of multilayer MoS2 shown in inset; (b) Raman spectrum of multilayer MoS2 excited by 532 nm laser
    Transient absorption spectra of multilayer MoS2. (a) 2D map of transient spectra of multilayer MoS2 in the time delay range of -200 fs--5 ps; (b) transient absorption spectra at 500 fs, 1.0 ps, 1.5 ps, 3.0 ps and 5.0 ps; (c) dynamic curve for A exciton transition corresponding to 618 nm probe wavelength
    Fig. 3. Transient absorption spectra of multilayer MoS2. (a) 2D map of transient spectra of multilayer MoS2 in the time delay range of -200 fs--5 ps; (b) transient absorption spectra at 500 fs, 1.0 ps, 1.5 ps, 3.0 ps and 5.0 ps; (c) dynamic curve for A exciton transition corresponding to 618 nm probe wavelength
    Temporal evolution of exciton resonance wavelength position of multilayer MoS2 versus pump power. λ(1)(t)> of (a) XA and (b) XB excitons versus pump power; initial wavelength positions at 50 fs and final wavelength positions at 2 ps of (c) XA and (d) XB excitons versus pump power; bi-exponential function fitting results of λ(1)(t)> of (e) XA and (f) XB excitons versus pump power
    Fig. 4. Temporal evolution of exciton resonance wavelength position of multilayer MoS2 versus pump power. <λ(1)(t)> of (a) XA and (b) XB excitons versus pump power; initial wavelength positions at 50 fs and final wavelength positions at 2 ps of (c) XA and (d) XB excitons versus pump power; bi-exponential function fitting results of <λ(1)(t)> of (e) XA and (f) XB excitons versus pump power
    Temporal evolution of exciton resonance wavelength position of multilayer MoS2 versus sample temperature. λ(1)(t)> of (a) XA and (b) XB excitons versus sample temperature; initial wavelength positions at 50 fs and final wavelength positions at 2 ps of (c) XA and (d) XB excitons versus sample temperature; bi-exponential function fitting results of λ(1)(t)> of (e) XA and (f) XB excitons versus sample temperature
    Fig. 5. Temporal evolution of exciton resonance wavelength position of multilayer MoS2 versus sample temperature. <λ(1)(t)> of (a) XA and (b) XB excitons versus sample temperature; initial wavelength positions at 50 fs and final wavelength positions at 2 ps of (c) XA and (d) XB excitons versus sample temperature; bi-exponential function fitting results of <λ(1)(t)> of (e) XA and (f) XB excitons versus sample temperature
    Sen Guo, Xin Zhao, Zhaogang Nie, Lin Ma, Fangteng Zhang, Weiren Zhao, Xinzhong Li, Jiahua Zhang, Wenchun Zhang. Ultrafast Spectral Response of Many-Body Effects During Exciton Formation in Multilayer MoS2[J]. Chinese Journal of Lasers, 2021, 48(11): 1111002
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