4.7 Article

Revealing of the ultrafast third-order nonlinear optical response and enabled photonic application in two-dimensional tin sulfide

期刊

PHOTONICS RESEARCH
卷 7, 期 5, 页码 494-502

出版社

OPTICAL SOC AMER
DOI: 10.1364/PRJ.7.000494

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资金

  1. National Natural Science Foundation of China (NSFC) [61435010, 61575089]
  2. Science and Technology Innovation Commission of Shenzhen [KQTD2015032416270385]
  3. China Postdoctoral Science Foundation [2017M612712, 2017M612730]
  4. Science and Technology Development Fund (STDF) [007/2017/A1]
  5. Macao SAR
  6. China
  7. Postgraduate Innovation Development Fund Project of Shenzhen University [PIDFP-ZR2018004]

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Black phosphorus (BP), a typical mono-elemental and two-dimensional (2D) material, has gathered significant attention owing to its distinct optoelectronic properties and promising applications, despite its main obstacle of long-term stability. Consequently, BP-analog materials with long-term chemical stability show additional potential. In this contribution, tin sulfide (SnS), a novel two-elemental and 2D structural BP-analog monochalcogenide, has been demonstrated to show enhanced stability under ambient conditions. The broadband nonlinear optical properties and carrier dynamics have been systematically investigated via Z-scan and transient absorption approaches. The excellent nonlinear absorption coefficient of 50.5 x 10(-3) cm/GW, 1 order of magnitude larger than that of BP, endows the promising application of SnS in ultrafast laser generation. Two different decay times of tau(1)similar to 873 fs and tau(2)similar to 96.9 ps allow the alteration between pure Q switching and continuous-wave (CW) mode locking in an identical laser resonator. Both mode-locked and Q-switched operations have been experimentally demonstrated using an SnS saturable absorber at the telecommunication window. Femtosecond laser pulses with tunable wavelength and high stability are easily obtained, suggesting the promising potential of SnS as an efficient optical modulator for ultrafast photonics. This primary investigation may be considered an important step towards stable and high-performance BP-analog material-based photonic devices. (c) 2019 Chinese Laser Press

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