Laser & Optoelectronics Progress, Volume. 56, Issue 23, 230001(2019)
Self-Assembled Colloidal Crystals in Field of Micro-Nano Optics
[4] Zheng H B, Ravaine S. Bottom-up assembly and applications of photonic materials[J]. Crystals, 6, 54(2016).
[9] Mathger L M. Rapid colour changes in multilayer reflecting stripes in the paradise whiptail, Pentapodus paradiseus[J]. Journal of Experimental Biology, 206, 3607-3613(2003).
[10] Rassart M, Colomer J F, Tabarrant T et al. Diffractive hygrochromic effect in the cuticle of the hercules beetle Dynastes hercules[J]. New Journal of Physics, 10, 033014(2008).
[14] Ramiro-Manzano F, Atienzar P, Rodriguez I et al[J]. Apollony photonic sponge based photoelectrochemical solar cells Chemical Communications, 2007, 242-244.
[18] Honda M, Kataoka K, Seki T et al. Confined stimuli-responsive polymer gel in inverse opal polymer membrane for colorimetric glucose sensor[J]. Langmuir, 25, 8349-8356(2009).
[20] Mahmood R, Mettry A, Hillier A C. Templating colloidal crystal growth using chirped surface relief gratings[J]. Langmuir, 34, 8828-8838(2018).
[22] Rogach A L, Kotov N A, Koktysh D S et al. Electrophoretic deposition of latex-based 3D colloidal photonic crystals: a technique for rapid production of high-quality opals[J]. Chemistry of Materials, 12, 2721-2726(2000).
[25] Wu Y Z, Chen C, Liu Y X et al. Fast fabrication of a self-cleaning coating constructed with scallion-like ZnO using a perfect colloidal monolayer enabled by a predictive self-assembly method[J]. Journal of Materials Chemistry A, 5, 5943-5951(2017).
[26] Luo C L, Yang R X, Yan W G et al. Rapid fabrication of large area binary polystyrene colloidal crystals[J]. Superlattices and Microstructures, 95, 33-37(2016).
[30] Ding F, Yang Y Q, Deshpande R A et al. A review of gap-surface plasmon metasurfaces: fundamentals and applications[J]. Nanophotonics, 7, 1129-1156(2018).
[32] Nho H W, Yoon T H. Structural colour of unary and binary colloidal crystals probed by scanning transmission X-ray microscopy and optical microscopy[J]. Scientific Reports, 7, 12424(2017).
[33] Wang L C. Ng R J H, Dinachali S S, et al. Large area plasmonic color palettes with expanded gamut using colloidal self-assembly[J]. ACS Photonics, 3, 627-633(2016).
[34] Park C, Koh K, Jeong U. Structural color painting by rubbing particle powder[J]. Scientific Reports, 5, 8340(2015).
[35] Zhang L J, Xiong Z, Shan L et al. Layer-by-layer approach to (2+1)D photonic crystal superlattice with enhanced crystalline integrity[J]. Small, 11, 4910-4921(2015).
[36] Nam H, Song K, Ha D et al. Inkjet printing based mono-layered photonic crystal patterning for anti-counterfeiting structural colors[J]. Scientific Reports, 6, 30885(2016).
[37] Lee S Y, Kim H, Kim S H et al. Uniform coating of self-assembled noniridescent colloidal nanostructures using the Marangoni effect and polymers[J]. Physical Review Applied, 10, 054003(2018).
[39] Umh H N, Yu S, Kim Y H et al. Tuning the structural color of a 2D photonic crystal using a bowl-like nanostructure[J]. ACS Applied Materials & Interfaces, 8, 15802-15808(2016).
[40] Meng Z P, Wu S L, Tang B T et al. Structurally colored polymer films with narrow stop band, high angle-dependence and good mechanical robustness for trademark anti-counterfeiting[J]. Nanoscale, 10, 14755-14762(2018).
[41] Bai L, Mai V C, Lim Y et al. Large-scale noniridescent structural color printing enabled by infiltration-driven nonequilibrium colloidal assembly[J]. Advanced Materials, 30, 1705667(2018).
[42] Wu S L, Liu B Q, Su X et al. Structural color patterns on paper fabricated by inkjet printer and their application in anticounterfeiting[J]. The Journal of Physical Chemistry Letters, 8, 2835-2841(2017).
[44] Keller K, Yakovlev A V, Grachova E V et al. Inkjet printing of multicolor daylight visible opal holography[J]. Advanced Functional Materials, 28, 1706903(2018).
[45] Stelling C, Bernhardt C, Retsch M. Subwavelength etched colloidal monolayers: a model system for tunable antireflective coatings[J]. Macromolecular Chemistry and Physics, 216, 1682-1688(2015).
[46] Bouabdellaoui M, Checcucci S, Wood T et al. Self-assembled antireflection coatings for light trapping based on SiGe random metasurfaces[J]. Physical Review Materials, 2, 035203(2018).
[47] Sanchez-Sobrado O, Mendes M J, Haque S et al. Colloidal-lithographed TiO2 photonic nanostructures for solar cell light trapping[J]. Journal of Materials Chemistry C, 5, 6852-6861(2017).
[48] Zhou L, Tan Y L, Ji D X et al. Self-assembly of highly efficient, broadband plasmonic absorbers for solar steam generation[J]. Science Advances, 2, e1501227(2016).
[49] Wang B M, Gao T C, Leu P W. Broadband light absorption enhancement in ultrathin film crystalline silicon solar cells with high index of refraction nanosphere arrays[J]. Nano Energy, 19, 471-475(2016).
[50] Shen X X, Cai L Z, Dong G Y et al. Impact of structure design of photonic crystals on LED light extraction efficiency[J]. Chinese Journal of Lasers, 41, s106006(2014).
[55] Wang P, Yu X C, Zhu Y C et al. Batch fabrication of broadband metallic planar microlenses and their arrays combining nanosphere self-assembly with conventional photolithography[J]. Nanoscale Research Letters, 12, 388(2017).
[57] Wang M, Zou C, Sun J et al. Asymmetric tunable photonic bandgaps in self-organized 3D nanostructure of polymer-stabilized blue phase I modulated by voltage polarity[J]. Advanced Functional Materials, 27, 1702261(2017).
[58] Kashiri M, Asgari A. Modeling of carrier dynamics in InGaAs/GaAs self-assembled quantum dot lasers[J]. Applied Optics, 55, 2042-2048(2016).
[65] Narasimhan V, Siddique R H, Lee J O et al. Multifunctional biophotonic nanostructures inspired by the longtail glasswing butterfly for medical devices[J]. Nature Nanotechnology, 13, 512-519(2018).
[66] Zhou H W, Liu J S, Liu H T et al. Compact dual-fiber surface-enhanced Raman scattering sensor with monolayer gold nanoparticles self-assembled on optical fiber[J]. Applied Optics, 57, 7931-7937(2018).
[67] Sadegh N, Khadem H, Tavassoli S H. High Raman-to-fluorescence ratio of Rhodamine 6G excited with 532 nm laser wavelength using a closely packed, self-assembled monolayer of silver nanoparticles[J]. Applied Optics, 55, 6125-6129(2016).
[68] Yuan Y, Abuhaimed G N, Liu Q K et al. Self-assembled nematic colloidal motors powered by light[J]. Nature Communications, 9, 5040(2018).
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Hongyang Xie, Xiaochang Yu, Qigan Gao, Yang Su, Zixiang Sun, Yiting Yu. Self-Assembled Colloidal Crystals in Field of Micro-Nano Optics[J]. Laser & Optoelectronics Progress, 2019, 56(23): 230001
Category: Reviews
Received: Apr. 12, 2019
Accepted: May. 21, 2019
Published Online: Nov. 27, 2019
The Author Email: Yiting Yu (yyt@nwpu.edu.cn)