• Opto-Electronic Advances
  • Vol. 1, Issue 2, 170002 (2018)
Sicong Wang1, Xueying Ouyang1, Ziwei Feng1, Yaoyu Cao1, Min Gu2, and Xiangping Li1、*
Author Affiliations
  • 1Guangdong Provincial Key Laboratory of Optical Fiber Sensing and Communications, Institute of Photonics Technology, Jinan University, Guangzhou 510632, China
  • 2Laboratory of Artificial-Intelligence Nanophotonics and CUDOS (Centre for Ultrahigh bandwidth Devices for Optical Systems), School of Science, RMIT University, Melbourne, Victoria 3001, Australia
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    DOI: 10.29026/oea.2018.170002 Cite this Article
    Sicong Wang, Xueying Ouyang, Ziwei Feng, Yaoyu Cao, Min Gu, Xiangping Li. Diffractive photonic applications mediated by laser reduced graphene oxides[J]. Opto-Electronic Advances, 2018, 1(2): 170002 Copy Citation Text show less
    References

    [1] A K Geim, K S Novoselov. The rise of graphene. Nat Mater, 6, 183-191(2007).

    [2] S Stankovich, D A Dikin, G H B Dommett, K M Kohlhaas, E J Zimney et al. Graphene-based composite materials. Nature, 442, 282-286(2006).

    [3] G Eda, G Fanchini, M Chhowalla. Large-area ultrathin films of reduced graphene oxide as a transparent and flexible electronic material. Nat Nanotechnol, 3, 270-274(2008).

    [4] Y W Zhu, S Murali, W W Cai, X S Li, J W Suk et al. Graphene and graphene oxide: synthesis, properties, and applications. Adv Mater, 22, 3906-3924(2010).

    [5] G Eda, Y Y Lin, S Miller, C W Chen, W F Su et al. Transparent and conducting electrodes for organic electronics from reduced graphene oxide. Appl Phys Lett, 92, 233305(2008).

    [6] Y L Zhang, L Guo, S Wei, Y Y He, H Xia et al. Direct imprinting of microcircuits on graphene oxides film by femtosecond laser reduction. Nano Today, 5, 15-20(2010).

    [7] X S Li, Y W Zhu, W W Cai, M Borysiak, B Y Han et al. Transfer of large-area graphene films for high-performance transparent conductive electrodes. Nano Lett, 9, 4359-4363(2009).

    [8] M F El-Kady, V Strong, S Dubin, R B Kaner. Laser scribing of high-performance and flexible graphene-based electrochemical capacitors. Science, 335, 1326-1330(2012).

    [9] W Gao, N Singh, L Song, Z Liu, A L M Reddy et al. Direct laser writing of micro-supercapacitors on hydrated graphite oxide films. Nat Nanotechnol, 6, 496-500(2011).

    [10] M F El-Kady, R B Kaner. Scalable fabrication of high-power graphene micro-supercapacitors for flexible and on-chip energy storage. Nat Commun, 4, 1475(2013).

    [11] J T Robinson, F K Perkins, E S Snow, Z Q Wei, P E Sheehan. Reduced graphene oxide molecular sensors. Nano Lett, 8, 3137-3140(2008).

    [12] W W Li, X M Geng, Y F Guo, J Z Rong, Y P Gong et al. Reduced graphene oxide electrically contacted graphene sensor for highly sensitive nitric oxide detection. ACS Nano, 5, 6955-6961(2011).

    [13] X R Zheng, B H Jia, H Lin, L Qiu, D Li et al. Highly efficient and ultra-broadband graphene oxide ultrathin lenses with three-dimensional subwavelength focusing. Nat Commun, 6, 8433(2015).

    [14] X P Li, Q M Zhang, X Chen, M Gu. Giant refractive-index modulation by two-photon reduction of fluorescent graphene oxides for multimode optical recording. Sci Rep, 3, 2819(2013).

    [15] X P Li, H R Ren, X Chen, J Liu, Q Li et al. Athermally photoreduced graphene oxides for three-dimensional holographic images. Nat Commun, 6, 6984(2015).

    [16] C Gómez-Navarro, J C Meyer, R S Sundaram, A Chuvilin, S Kurasch et al. Atomic structure of reduced graphene oxide. Nano Lett, 10, 1144-1148(2010).

    [17] W Gao, L B Alemany, L J Ci, P M Ajayan. New insights into the structure and reduction of graphite oxide. Nat Chem, 1, 403-408(2009).

    [18] H Y He, J Klinowski, M Forster, A Lerf. A new structural model for graphite oxide. Chem Phys Lett, 287, 53-56(1998).

    [19] K P Loh, Q L Bao, G Eda, M Chhowalla. Graphene oxide as a chemically tunable platform for optical applications. Nat Chem, 2, 1015-1024(2010).

    [20] S Stankovich, D A Dikin, R D Piner, K A Kohlhaas, A Kleinhammes et al. Synthesis of graphene-based nanosheets via chemical reduction of exfoliated graphite oxide. Carbon, 45, 1558-1565(2007).

    [21] D R Dreyer, S Park, C W Bielawski, R S Ruoff. The chemistry of graphene oxide. Chem Soc Rev, 39, 228-240(2010).

    [22] X M Sun, Z Liu, K Welsher, J T Robinson, A Goodwin et al. Nano-graphene oxide for cellular imaging and drug delivery. Nano Res, 1, 203-212(2008).

    [23] Z Liu, J T Robinson, X M Sun, H J Dai. PEGylated nanographene oxide for delivery of water-insoluble cancer drugs. J Am Chem Soc, 130, 10876-10877(2008).

    [24] D Y Pan, J C Zhang, Z Li, M H Wu. Hydrothermal route for cutting graphene sheets into blue-luminescent graphene quantum dots. Adv Mater, 22, 734-738(2010).

    [25] V C Tung, M J Allen, Y Yang, R B Kaner. High-throughput solution processing of large-scale graphene. Nat Nanotechnol, 4, 25-29(2009).

    [26] X R Zheng, H Lin, T S Yang, B H Jia. Laser trimming of graphene oxide for functional photonic applications. J Phys D Appl Phys, 50, 074003(2017).

    [27] R Trusovas, G Račiukaitis, G Niaura, J Barkauskas, G Valušis et al. Recent advances in laser utilization in the chemical modification of graphene oxide and its applications. Adv Opt Mater, 4, 37-65(2016).

    [28] J Robertson, E P O'Reilly. Electronic and atomic structure of amorphous carbon. Phys Rev B, 35, 2946-2957(1987).

    [29] D X Yang, A Velamakanni, G Bozoklu, S Park, M Stoller et al. Chemical analysis of graphene oxide films after heat and chemical treatments by X-ray photoelectron and Micro-Raman spectroscopy. Carbon, 47, 145-152(2009).

    [30] N A Kotov, I Dékány, J H Fendler. Ultrathin graphite oxide-polyelectrolyte composites prepared by self-assembly: transition between conductive and non-conductive states. Adv Mater, 8, 637-641(1996).

    [31] X L Li, H L Wang, J T Robinson, H Sanchez, G Diankov et al. Simultaneous nitrogen doping and reduction of graphene oxide. J Am Chem Soc, 131, 15939-15944(2009).

    [32] Z Q Wei, D B Wang, S Kim, S Y Kim, Y K Hu et al. Nanoscale tunable reduction of graphene oxide for graphene electronics. Science, 328, 1373-1376(2010).

    [33] Y Zhou, Q L Bao, B Varghese, L A L Tang, C K Tan et al. Microstructuring of graphene oxide nanosheets using direct laser writing. Adv Mater, 22, 67-71(2010).

    [34] Y Zhou, K P Loh. Making patterns on graphene. Adv Mater, 22, 3615-3620(2010).

    [35] V Strong, S Dubin, M F El-Kady, A Lech, Y Wang et al. Patterning and electronic tuning of laser scribed graphene for flexible all-carbon devices. ACS Nano, 6, 1395-1403(2012).

    [36] R Trusovas, K Ratautas, G Račiukaitis, J Barkauskas, I Stankevičienė et al. Reduction of graphite oxide to graphene with laser irradiation. Carbon, 52, 574-582(2013).

    [37] V A Smirnov, A A Arbuzov, Y M Shul'ga, S A Baskakov, V M Martynenko et al. Photoreduction of graphite oxide. High Energy Chem, 45, 57-61(2011).

    [38] Y L Zhang, L Guo, H Xia, Q D Chen, J Feng et al. Photoreduction of graphene oxides: methods, properties, and applications. Adv Opt Mater, 2, 10(2014).

    [39] X P Li, T H Lan, C H Tien, M Gu. Three-dimensional orientation-unlimited polarization encryption by a single optically configured vectorial beam. Nat Commun, 3, 998(2012).

    [40] X P Li, Y Y Cao, M Gu. Superresolution-focal-volume induced 3.0 Tbytes/disk capacity by focusing a radially polarized beam. Opt Lett, 36, 2510-2512(2011).

    [41] S Kawata, Y Inouye, P Verma. Plasmonics for near-field nano-imaging and superlensing. Nat Photonics, 3, 388-394(2009).

    [42] M Khorasaninejad, W T Chen, R C Devlin, J Oh, A Y Zhu et al. Metalenses at visible wavelengths: diffraction-limited focusing and subwavelength resolution imaging. Science, 352, 1190-1194(2016).

    [43] G X Zheng, H Mühlenbernd, M Kenney, G X Li, T Zentgraf et al. Metasurface holograms reaching 80% efficiency. Nat Nanotechnol, 10, 308-312(2015).

    [44] L Q Huang, X Z Chen, H Mühlenbernd, H Zhang, S M Chen et al. Three-dimensional optical holography using a plasmonic metasurface. Nat Commun, 4, 2808(2013).

    [45] X Li, L W Chen, Y Li, X H Zhang, M B Pu et al. Multicolor 3D meta-holography by broadband plasmonic modulation. Sci Adv, 2, e1601102(2016).

    [46] H R Ren, X P Li, Q M Zhang, M Gu. On-chip noninterference angular momentum multiplexing of broadband light. Science, 352, 805(2016).

    [47] X P Li, J Liu, L C Cao, Y T Wang, G F Jin et al. Light-control-light nanoplasmonic modulator for 3D micro-optical beam shaping. Adv Opt Mater, 4, 70-75(2016).

    Sicong Wang, Xueying Ouyang, Ziwei Feng, Yaoyu Cao, Min Gu, Xiangping Li. Diffractive photonic applications mediated by laser reduced graphene oxides[J]. Opto-Electronic Advances, 2018, 1(2): 170002
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