4.6 Article

Third-order optical nonlinearities of two-dimensional SnS under irradiation: implications for space use

Journal

JOURNAL OF MATERIALS CHEMISTRY C
Volume 10, Issue 47, Pages 18025-18032

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2tc03560j

Keywords

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Funding

  1. National Natural Science Foundation of China
  2. Key Research and Development Program of Gansu Province
  3. Open Fund of National Key Laboratory of Materials Behavior and Evaluation Technology in Space Environment
  4. Natural science foundation of Gansu province
  5. [NSFC 22073038]
  6. [21673106]
  7. [51525303]
  8. [21233001]
  9. [20YF3WA013]
  10. [6142910200106]
  11. [20JR10RA280]

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This study evaluates the performance of tin sulfide in a simulated space radiation environment. The results show that tin sulfide maintains its strong saturable absorption even under high dose gamma radiation. This research provides guidance for the rational design and screening of space radiation-tolerant nonlinear optical materials.
Space exploration urgently demands novel irradiation-tolerant materials to build the arsenal for outer space use, among which nonlinear optical materials and devices are ever-increasing attractive. Tin sulfide (SnS), a novel two dimensional (2D) BP-analog with enhanced stability under ambient conditions, has exhibited excellent optoelectronic properties on the ground, but its potential as a candidate for space optics remains to be explored. Herein, the spatial adaptability of SnS was evaluated in the simulated space radiation environment. When exposed to Co-60 gamma-rays at a dose equal to over 45 year accumulation in a typical earth orbit, SnS still maintained its strong third-order nonlinear saturable absorption ranging from visible to near-infrared spectra. Ultrafast spectroscopy is used to study the radiation effects and relevant damage mechanisms that are difficult to be revealed via conventional techniques. This work not only sheds light on the irradiation-induced ionization damage and defects in SnS from the unique perspective of ultrafast excited state dynamics but also provides general guidance for rational design and screening space radiation-tolerant nonlinear optical materials.

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