Acta Optica Sinica, Volume. 44, Issue 4, 0431001(2024)

Design and Optical Characteristics of Photonic Moiré Superlattice Films

Fuyuan Zhao and Xiaohong Sun*
Author Affiliations
  • Henan Key Laboratory of Laser and Opto-Electric Information Technology, School of Electrical and Information Engineering, Zhengzhou University, Zhengzhou 450001, Henan, China
  • show less
    References(25)

    [1] Cao Y, Fatemi V, Demir A et al. Correlated insulator behaviour at half-filling in magic-angle graphene superlattices[J]. Nature, 556, 80-84(2018).

    [2] Huang S Q, Kim K, Efimkin D K et al. Topologically protected helical states in minimally twisted bilayer graphene[J]. Physical Review Letters, 121, 037702(2018).

    [3] San-Jose P, Prada E. Helical networks in twisted bilayer graphene under interlayer bias[J]. Physical Review B, 88, 121408(2013).

    [4] MacDonald A H. Bilayer graphene′s wicked, twisted road[J]. Physics, 12, 12(2019).

    [5] Wang T G, Yuan N F, Fu L. Moiré surface states and enhanced superconductivity in topological insulators[J]. Physical Review X, 11, 021024(2021).

    [6] Dean C R, Wang L, Maher P et al. Hofstadter′s butterfly and the fractal quantum Hall effect in moiré superlattices[J]. Nature, 497, 598-602(2013).

    [7] Wang L, Gao Y D, Wen B et al. Evidence for a fractional fractal quantum Hall effect in graphene superlattices[J]. Science, 350, 1231-1234(2015).

    [8] He P, Koon G K W, Isobe H et al. Graphene Moiré superlattices with giant quantum nonlinearity of chiral Bloch electrons[J]. Nature Nanotechnology, 17, 378-383(2022).

    [9] Cao Y, Fatemi V, Fang S et al. Unconventional superconductivity in magic-angle graphene superlattices[J]. Nature, 556, 43-50(2018).

    [10] Cao Y, Rodan-Legrain D, Rubies-Bigorda O et al. Tunable correlated states and spin-polarized phases in twisted bilayer-bilayer graphene[J]. Nature, 583, 215-220(2020).

    [11] Pan Z P, Li W, Qi Y X et al. Design and analysis of photonic crystal vertical-cavity surface-emitting lasers[J]. Acta Optica Sinica, 42, 1414002(2022).

    [12] Zhang J Y, Wang R, Wang B N et al. A reconfigurable visible light filter based on nanofilms with a black layer[J]. Acta Optica Sinica, 41, 2231001(2021).

    [13] Sun X H, Wu F, Wang S M et al. Design of gradient photonic crystal lens array using two-parameter hexagonal prism interferometer[J]. Acta Optica Sinica, 40, 0222002(2020).

    [14] Zhang X R, Yang H, Sun X H. Study on focusing characteristics of double-period graded photonic crystal lens based on biconical interferometry[J]. Laser & Optoelectronics Progress, 59, 1709001(2022).

    [15] Sun D W, Li C H, Yi L J et al. High absorption broadband solar energy absorber based on two-dimensional photonic crystal[J]. Acta Optica Sinica, 41, 0516002(2021).

    [16] Huang C M, Ye F W, Chen X F et al. Localization-delocalization wavepacket transition in Pythagorean aperiodic potentials[J]. Scientific Reports, 6, 32546(2016).

    [17] Wang P, Zheng Y L, Chen X F et al. Localization and delocalization of light in photonic moiré lattices[J]. Nature, 577, 42-46(2020).

    [18] Mao X R, Shao Z K, Luan H Y et al. Magic-angle lasers in nanostructured moiré superlattice[J]. Nature Nanotechnology, 16, 1099-1105(2021).

    [19] Tang H N, Du F, Carr S et al. Modeling the optical properties of twisted bilayer photonic crystals[J]. Light: Science & Applications, 10, 157(2021).

    [20] Yang H, Zhai J N, Huo S et al. Localization of light in 2D photonic Moiré superlattices[J]. Journal of Physics D: Applied Physics, 55, 495111(2022).

    [21] Escuti M J, Crawford G P. Holographic photonic crystals[J]. Optical Engineering, 43, 1973-1987(2004).

    [22] Bittner S, Dietz B, Miski-Oglu M et al. Extremal transmission through a microwave photonic crystal and the observation of edge states in a rectangular Dirac billiard[J]. Physical Review B, 85, 064301(2012).

    [23] He W Y, Chan C T. The emergence of Dirac points in photonic crystals with mirror symmetry[J]. Scientific Reports, 5, 8186(2015).

    [24] Malko D, Neiss C, Viñes F et al. Competition for graphene: graphynes with direction-dependent Dirac cones[J]. Physical Review Letters, 108, 086804(2012).

    [25] Hou J, Citrin D S, Wu H M et al. Slab-thickness dependence of photonic bandgap in photonic-crystal slabs[J]. IEEE Journal of Selected Topics in Quantum Electronics, 18, 1636-1642(2012).

    Tools

    Get Citation

    Copy Citation Text

    Fuyuan Zhao, Xiaohong Sun. Design and Optical Characteristics of Photonic Moiré Superlattice Films[J]. Acta Optica Sinica, 2024, 44(4): 0431001

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Thin Films

    Received: Oct. 16, 2023

    Accepted: Nov. 30, 2023

    Published Online: Feb. 29, 2024

    The Author Email: Sun Xiaohong (iexhsun@zzu.edu.cn)

    DOI:10.3788/AOS231663

    CSTR:32393.14.AOS231663

    Topics