4.8 Article

Selectively Plasmon-Enhanced Second-Harmonic Generation from Monolayer Tungsten Diselenide on Flexible Substrates

期刊

ACS NANO
卷 12, 期 2, 页码 1859-+

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.7b08682

关键词

two-dimensional materials; second-harmonic generation; gap plasmon; transition-metal dichalcogenides; tungsten diselenide (WSe2); sub-20 nm nanostructures

资金

  1. Agency for Science, Technology, and Research (A*STAR) [0926030138]
  2. SERC [092154099]
  3. MOE [R 144-000-382-112]
  4. Royal Society
  5. Ministry of Education (MOE), Singapore, under AcRF [MOE2015-T2-2-123]
  6. A*STAR Pharos Program [R-263-000-B91-305, 152 70 00014, 1527300025]
  7. EPSRC Reactive Plasmonics Programme [EP/M013812/1]
  8. A*STAR-JCO [1437C00135]
  9. Taiwan Consortium of Emergent Crystalline Materials (TCECM)
  10. KAUST (Saudi Arabia)
  11. NUS Graduate School for Integrative Sciences and Engineering (NGS)
  12. National Research Foundation [NRF-CRP 8-2011-07]
  13. Lee-Lucas Chair in Physics
  14. EPSRC [EP/M013812/1] Funding Source: UKRI
  15. Engineering and Physical Sciences Research Council [EP/M013812/1] Funding Source: researchfish

向作者/读者索取更多资源

Monolayer two-dimensional transition-metal dichalcogenides (2D TMDCs) exhibit promising characteristics in miniaturized nonlinear optical frequency converters, due to their inversion asymmetry and large second-order nonlinear susceptibility. However, these materials usually have very short light interaction lengths with the pump laser because they are atomically thin, such that second-harmonic generation (SHG) is generally inefficient. In this paper, we fabricate a judiciously structured 150 nm-thick planar surface consisting of monolayer tungsten diselenide and sub-20 nm-wide gold trenches on flexible substrates, reporting similar to 7000-fold SHG enhancement without peak broadening or background in the spectra as compared to WSe2 on as-grown sapphire substrates. Our proof-of-concept experiment yields effective second-order nonlinear susceptibility of 2.1 X 10(4) pm/V. Three orders of magnitude enhancement is maintained with pump wavelength ranging from 800 to 900 nm, breaking the limitation of narrow pump wavelength range for cavity-enhanced SHG. In addition, SHG amplitude can be dynamically controlled via selective excitation of the lateral gap plasmon by rotating the laser polarization. Such a fully open, flat, and ultrathin profile enables a great variety of functional samples with high SHG from one patterned silicon substrate, favoring scalable production of nonlinear converters. The surface accessibility also enables integration with other optical components for information processing in an ultrathin and flexible form.

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