Ultrafast Science, Volume. 2, Issue 1, 0001(2022)

Two-Beam Ultrafast Laser Scribing of Graphene Patterns with 90-nm Subdiffraction Feature Size

Xi Chen1...2,* and Min Gu12,* |Show fewer author(s)
Author Affiliations
  • 1Institute of Photonic Chips, University of Shanghai for Science and Technology, Shanghai 200093, China.
  • 2Centre for Artificial-Intelligence Nanophotonics, School of Optical-Electrical and Computer Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
  • show less
    References(49)

    [3] [3] El-Kady MF, Shao YL, Kaner RB. Graphene for batteries, supercapacitors and beyond. Nat Rev Mater. 2016;1(7):16033.

    [6] [6] Yuan Y, Jiang L, Li X, Zuo P, Xu C, Tian M, Zhang X, Wang S, Lu B, Shao C, et al. Laser photonic-reduction stamping for graphene-based micro-supercapacitors ultrafast fabrication. Nat Commun. 2020;11(1):6185.

    [12] [12] Li X, Zhang Q, Chen X, Gu M. Giant refractive-index modulation by two-photon reduction of fluorescent graphene oxides for multimode optical recording. Sci Rep. 2013;3:2819.

    [15] [15] Tao LQ, Tian H, Liu Y, Ju ZY, Pang Y, Chen YQ, Wang DY, Tian XG, Yan JC, Deng NQ, et al. An intelligent artificial throat with sound-sensing ability based on laser induced graphene. Nat Commun. 2017;8:14579.

    [16] [16] Pace G, Serri M, del Rio Castillo AE, Ansaldo A, Lauciello S, Prato M, Pasquale L, Luxa J, Mazánek V, Sofer Z, et al. Nitrogen-doped graphene based triboelectric nanogenerators. Nano Energy. 2021;87:106173.

    [17] [17] Stanford MG, Li JT, Chyan Y, Wang Z, Wang W, Tour JM. Laser-induced graphene triboelectric nanogenerators. ACS Nano. 2019;13(6):7166–7174.

    [19] [19] Huang NM, Lim HN, Chia CH, Yarmo MA, Muhamad MR. Simple room-temperature preparation of high-yield large-area graphene oxide. Int J Nanomedicine. 2011;6:3443–3448.

    [24] [24] Hooch Antink W, Choi Y, Seong K-d, Kim JM, Piao Y. Recent progress in porous graphene and reduced graphene oxide-based nanomaterials for electrochemical energy storage devices. Adv Mater Interfaces. 2018;5(5):Article 1701212.

    [25] [25] Liang L, Feng Z, Zhang Q, Cong TD, Wang Y, Qin X, Yi Z, Ang MJY, Zhou L, Feng H, et al. Continuous-wave near-infrared stimulated-emission depletion microscopy using downshifting lanthanide nanoparticles. Nat Nanotechnol. 2021;16(6):975–980.

    [26] [26] Beckham JL, Li JT, Stanford MG, Chen W, McHugh EA, Advincula PA, Wyss KM, Chyan Y, Boldman WL, Rack PD, et al. High-resolution laser-induced graphene from photoresist. ACS Nano. 2021;15(5):8976–8983.

    [37] [37] Sheng K-X, Xu Y-X, Li C, Shi G-Q. High-performance self-assembled graphene hydrogels prepared by chemical reduction of graphene oxide. New Carbon Mater. 2011;26(1):9−15.

    [40] [40] Luan VH, Tien HN, Hoa LT, Hien NTM, Oh E-S, Chung J, Kim EJ, Choi WM, Kong B-S, Hur SH. Synthesis of a highly conductive and large surface area graphene oxide hydrogel and its use in a supercapacitor. J Mater Chem A. 2013;1:208−211.

    [43] [43] Huo J, Zheng P, Wang X, Gou S. Three-dimensional sulphur/nitrogen co-doped reduced graphene oxide as high-performance supercapacitor binder-free electrodes. Appl Surf Sci. 2018;442:575−580.

    [44] [44] Chen Y, Liu Z, Sun L, Lu Z, Zhuo K. Nitrogen and sulfur co-doped porous graphene aerogel as an efficient electrode material for high performance supercapacitor in ionic liquid electrolyte. J Power Sources. 2018;390:215−223.

    [45] [45] Ramabadran U, Ryan G, Zhou X, Farhat S, Manciu F, Tong Y, Ayler R, Garner G. Reduced graphene oxide on nickel foam for supercapacitor electrodes. Materials (Basel). 2017;10(11):1295.

    [46] [46] Chen Y, Li Y, Yao F, Peng C, Cao C, Feng Y, Feng W. Nitrogen and fluorine co-doped holey graphene hydrogel as a binder-free electrode material for flexible solid-state supercapacitors. Sustain Energy Fuels. 2019;3:2237–2245.

    [49] [49] Goi E, Zhang Q, Chen X, Luan H, Gu M. Perspective on photonic memristive neuromorphic computing. PhotoniX. 2020;1(1):3.

    Tools

    Get Citation

    Copy Citation Text

    Xi Chen, Min Gu. Two-Beam Ultrafast Laser Scribing of Graphene Patterns with 90-nm Subdiffraction Feature Size[J]. Ultrafast Science, 2022, 2(1): 0001

    Download Citation

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

    Category: Research Articles

    Received: May. 19, 2022

    Accepted: Oct. 19, 2022

    Published Online: Sep. 28, 2023

    The Author Email: Chen Xi (xichen@usst.edu.cn), Gu Min (gumin@usst.edu.cn)

    DOI:10.34133/ultrafastscience.0001

    Topics