• Photonics Research
  • Vol. 7, Issue 3, 251 (2019)
Brian A. Ko1、2, Alexei V. Sokolov1、2, Marlan O. Scully1、2、3、4, Zhenrong Zhang1、5, and Ho Wai Howard Lee1、2、*
Author Affiliations
  • 1Department of Physics, Baylor University, Waco, Texas 76798, USA
  • 2The Institute for Quantum Science and Engineering, Texas A&M University, College Station, Texas 77843, USA
  • 3Princeton University, Princeton, New Jersey 08544, USA
  • 4e-mail: Scully@tamu.edu
  • 5e-mail: Zhenrong_Zhang@baylor.edu
  • show less
    DOI: 10.1364/PRJ.7.000251 Cite this Article Set citation alerts
    Brian A. Ko, Alexei V. Sokolov, Marlan O. Scully, Zhenrong Zhang, Ho Wai Howard Lee. Enhanced four-wave mixing process near the excitonic resonances of bulk MoS2[J]. Photonics Research, 2019, 7(3): 251 Copy Citation Text show less
    References

    [1] R. A. Bromley, R. B. Murray, A. D. Yoffe. The band structures of some transition metal dichalcogenides. III. Group VIA: trigonal prism materials. J. Phys. C, 5, 759-778(1972).

    [2] R. V. Kasowski. Band structure of MoS2 and NbS2. Phys. Rev. Lett., 30, 1175-1178(1973).

    [3] L. F. Mattheiss. Energy bands for 2H-NbSe2 and 2H–MoS2. Phys. Rev. Lett., 30, 784-787(1973).

    [4] L. F. Mattheiss. Band structures of transition-metal-dichalcogenide layer compounds. Phys. Rev. B, 8, 3719-3740(1973).

    [5] B. Radisavljevic, A. Radenovic, J. Brivio, V. Giacometti, A. Kis. Single-layer MoS2 transistors. Nat. Nanotechnol., 6, 147-150(2011).

    [6] B. Radisavljevic, M. B. Whitwick, A. Kis. Integrated circuits and logic operations based on single-layer MoS2. ACS Nano, 5, 9934-9938(2011).

    [7] J. Rechberger, P. Brunner, R. Dubach. High performance cutting tools with a solid lubricant physically vapour-deposited coating. Surf. Coat. Technol., 62, 393-398(1993).

    [8] N. M. Renevier, N. Lobiondo, V. C. Fox, D. G. Teer, J. Hampshire. Performance of MoS2/metal composite coatings used for dry machining and other industrial applications. Surf. Coat. Technol., 123, 84-91(2000).

    [9] G. Leopold. Gmelin Handbook of Inorganic and Organometallic Chemistry, B7(1995).

    [10] A. Splendiani, L. Sun, Y. Zhang, T. Li, J. Kim, C. Y. Chim, G. Galli, F. Wang. Emerging photoluminescence in monolayer MoS2. Nano Lett., 10, 1271-1275(2010).

    [11] K. Gołasa, M. Grzeszczyk, R. Bożek, P. Leszczyński, A. Wysmołek, M. Potemski, A. Babiński. Resonant Raman scattering in MoS2—from bulk to monolayer. Solid State Commun., 197, 53-56(2014).

    [12] X. Ling, W. Fang, Y. H. Lee, P. T. Araujo, X. Zhang, J. F. Rodriguez-Nieva, Y. Lin, J. Zhang, J. Kong, M. S. Dresselhaus. Raman enhancement effect on two-dimensional layered materials: graphene, h-BN and MoS2. Nano Lett., 14, 3033-3040(2014).

    [13] X. Yin, Z. Ye, D. A. Chenet, Y. Ye, K. O’Brien, J. C. Hone, X. Zhang. Edge nonlinear optics on a MoS2 atomic monolayer. Science, 344, 488-490(2014).

    [14] L. M. Malard, T. V. Alencar, A. P. M. Barboza, K. F. Mak, A. M. de Paula. Observation of intense second harmonic generation from MoS2 atomic crystals. Phys. Rev. B, 87, 201401(2013).

    [15] Y. Li, N. Dong, S. Zhang, X. Zhang, Y. Feng, K. Wang, L. Zhang, J. Wang. Giant two-photon absorption in monolayer MoS2. Laser Photon. Rev., 9, 427-434(2015).

    [16] J. Strempel, W. Kiefer. Polarized and depolarized continuum resonance Raman scattering of molecular iodine: accurate determination of repulsive states. Can. J. Chem., 69, 1732-1739(1991).

    [17] Z. He, D. V. Voronine, A. M. Sinyukov, Z. N. Liege, B. Birmingham, A. V. Sokolov, Z. Zhang, M. O. Scully. Tip-enhanced Raman scattering on bulk MoS2 substrate. IEEE J. Sel. Top. Quantum Electron., 23, 113-118(2017).

    [18] D. Li, W. Xiong, L. Jiang, Z. Xiao, H. R. Golgir, M. Wang, X. Huang, Y. Zhou, Z. Lin, J. Song, S. Ducharme, L. Jiang, J. F. Silvain, Y. Lu. Multimodal nonlinear optical imaging of MoS2 and MoS2-based van der Waals heterostructures. ACS Nano, 10, 3766-3775(2016).

    [19] K. S. Novoselov, D. Jiang, F. Schedin, T. J. Booth, V. V. Khotkevich, S. V. Morozov, A. K. Geim. Two-dimensional atomic crystals. Proc. Natl. Acad. Sci. USA, 102, 10451-10453(2005).

    [20] H. Li, Q. Zhang, C. C. R. Yap, B. K. Tay, T. H. T. Edwin, A. Olivier, D. Baillargeat. From bulk to monolayer MoS2: evolution of Raman scattering. Adv. Funct. Mater., 22, 1385-1390(2012).

    [21] J.-S. Park, T. Joo. Nuclear dynamics in electronic ground and excited states probed by spectrally resolved four wave mixing. J. Chem. Phys., 116, 10801-10808(2002).

    [22] C. Hirose, H. Ishida, K. Iwatsu, N. Watanabe, J. Kubota, A. Wada, K. Domen. In situ SFG spectroscopy of film growth. I. General formulation and the analysis of the signal observed during the deposition of formic acid on Pt(110)-(1×2) surface. J. Chem. Phys., 108, 5948-5956(1998).

    [23] R. Coehoorn, C. Haas, R. A. de Groot. Electronic structure of MoSe2, MoS2, andWSe2. II. The nature of the optical band gaps. Phys. Rev. B, 35, 6203-6206(1987).

    [24] R. Wang, H. C. Chien, J. Kumar, N. Kumar, H. Y. Chiu, H. Zhao. Third-harmonic generation in ultrathin films of MoS2. ACS Appl. Mater. Interface, 6, 314-318(2014).

    [25] R. K. Jain, M. B. Klein. Degenerate four‐wave mixing near the band gap of semiconductors. Appl. Phys. Lett., 35, 454-456(1979).

    [26] K. F. Mak, C. Lee, J. Hone, J. Shan, T. F. Heinz. Atomically thin MoS2: a new direct-gap semiconductor. Phys. Rev. Lett., 105, 136805(2010).

    [27] S.-Y. Ding, J. Yi, J.-F. Li, B. Ren, D.-Y. Wu, R. Panneerselvam, Z.-Q. Tian. Nanostructure-based plasmon-enhanced Raman spectroscopy for surface analysis of materials. Nat. Rev. Mater., 1, 16021(2016).

    [28] R. I. Woodward, R. T. Murray, C. F. Phelan, R. E. P. D. Oliveira, T. H. Runcorn, E. J. R. Kelleher, S. Li, E. C. D. Oliveira, G. J. M. Fechine, G. Eda, C. J. S. D. Matos. Characterization of the second- and third-order nonlinear optical susceptibilities of monolayer MoS2 using multiphoton microscopy. 2D Mater., 4, 011006(2016).

    [29] D. B. S. Soh, C. Rogers, D. J. Gray, E. Chatterjee, H. Mabuchi. Optical nonlinearities of excitons in monolayer MoS2. Phys. Rev. B, 97, 165111(2018).

    [30] R. W. Boyd. Nonlinear Optics(2008).

    [31] F. Zahid, L. Liu, Y. Zhu, J. Wang, H. Guo. A generic tight-binding model for monolayer, bilayer and bulk MoS2. AIP Adv., 3, 052111(2013).

    [32] A. R. Beal, H. P. Hughes. Kramers-Kronig analysis of the reflectivity spectra of 2H-MoS2, 2H-MoSe2 and 2H-MoTe2. J. Phys. C, 12, 881-890(1979).

    [33] Z. Wang, Z. Dong, Y. Gu, Y. H. Chang, L. Zhang, L. J. Li, W. Zhao, G. Eda, W. Zhang, G. Grinblat, S. A. Maier, J. K. Yang, C. W. Qiu, A. T. Wee. Giant photoluminescence enhancement in tungsten-diselenide-gold plasmonic hybrid structures. Nat. Commun., 7, 11283(2016).

    Brian A. Ko, Alexei V. Sokolov, Marlan O. Scully, Zhenrong Zhang, Ho Wai Howard Lee. Enhanced four-wave mixing process near the excitonic resonances of bulk MoS2[J]. Photonics Research, 2019, 7(3): 251
    Download Citation