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Metal 3D nanoprinting with coupled fields

Author

Listed:
  • Bingyan Liu

    (ShanghaiTech University)

  • Shirong Liu

    (ShanghaiTech University)

  • Vasanthan Devaraj

    (Pusan National University)

  • Yuxiang Yin

    (ShanghaiTech University)

  • Yueqi Zhang

    (ShanghaiTech University)

  • Jingui Ai

    (ShanghaiTech University)

  • Yaochen Han

    (ShanghaiTech University)

  • Jicheng Feng

    (ShanghaiTech University)

Abstract

Metallized arrays of three-dimensional (3D) nanoarchitectures offer new and exciting prospects in nanophotonics and nanoelectronics. Engineering these repeating nanoarchitectures, which have dimensions smaller than the wavelength of the light source, enables in-depth investigation of unprecedented light–matter interactions. Conventional metal nanomanufacturing relies largely on lithographic methods that are limited regarding the choice of materials and machine write time and are restricted to flat patterns and rigid structures. Herein, we present a 3D nanoprinter devised to fabricate flexible arrays of 3D metallic nanoarchitectures over areas up to 4 × 4 mm2 within 20 min. By suitably adjusting the electric and flow fields, metal lines as narrow as 14 nm were printed. We also demonstrate the key ability to print a wide variety of materials ranging from single metals, alloys to multimaterials. In addition, the optical properties of the as-printed 3D nanoarchitectures can be tailored by varying the material, geometry, feature size, and periodic arrangement. The custom-designed and custom-built 3D nanoprinter not only combines metal 3D printing with nanoscale precision but also decouples the materials from the printing process, thereby yielding opportunities to advance future nanophotonics and semiconductor devices.

Suggested Citation

  • Bingyan Liu & Shirong Liu & Vasanthan Devaraj & Yuxiang Yin & Yueqi Zhang & Jingui Ai & Yaochen Han & Jicheng Feng, 2023. "Metal 3D nanoprinting with coupled fields," Nature Communications, Nature, vol. 14(1), pages 1-11, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-40577-3
    DOI: 10.1038/s41467-023-40577-3
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    References listed on IDEAS

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    1. Haitao Liu & Philippe Lalanne, 2008. "Microscopic theory of the extraordinary optical transmission," Nature, Nature, vol. 452(7188), pages 728-731, April.
    2. T. W. Ebbesen & H. J. Lezec & H. F. Ghaemi & T. Thio & P. A. Wolff, 1998. "Extraordinary optical transmission through sub-wavelength hole arrays," Nature, Nature, vol. 391(6668), pages 667-669, February.
    3. Andrey Vyatskikh & Stéphane Delalande & Akira Kudo & Xuan Zhang & Carlos M. Portela & Julia R. Greer, 2018. "Additive manufacturing of 3D nano-architected metals," Nature Communications, Nature, vol. 9(1), pages 1-8, December.
    4. Max A. Saccone & Rebecca A. Gallivan & Kai Narita & Daryl W. Yee & Julia R. Greer, 2022. "Additive manufacturing of micro-architected metals via hydrogel infusion," Nature, Nature, vol. 612(7941), pages 685-690, December.
    5. Jason Valentine & Shuang Zhang & Thomas Zentgraf & Erick Ulin-Avila & Dentcho A. Genov & Guy Bartal & Xiang Zhang, 2008. "Three-dimensional optical metamaterial with a negative refractive index," Nature, Nature, vol. 455(7211), pages 376-379, September.
    6. P. Galliker & J. Schneider & H. Eghlidi & S. Kress & V. Sandoghdar & D. Poulikakos, 2012. "Direct printing of nanostructures by electrostatic autofocussing of ink nanodroplets," Nature Communications, Nature, vol. 3(1), pages 1-9, January.
    7. Liang Yang & Hongrong Hu & Alexander Scholz & Florian Feist & Gabriel Cadilha Marques & Steven Kraus & Niklas Maximilian Bojanowski & Eva Blasco & Christopher Barner-Kowollik & Jasmin Aghassi-Hagmann , 2023. "Laser printed microelectronics," Nature Communications, Nature, vol. 14(1), pages 1-10, December.
    8. Alexander A. High & Robert C. Devlin & Alan Dibos & Mark Polking & Dominik S. Wild & Janos Perczel & Nathalie P. de Leon & Mikhail D. Lukin & Hongkun Park, 2015. "Visible-frequency hyperbolic metasurface," Nature, Nature, vol. 522(7555), pages 192-196, June.
    9. Minxiang Zeng & Yipu Du & Qiang Jiang & Nicholas Kempf & Chen Wei & Miles V. Bimrose & A. N. M. Tanvir & Hengrui Xu & Jiahao Chen & Dylan J. Kirsch & Joshua Martin & Brian C. Wyatt & Tatsunori Hayashi, 2023. "High-throughput printing of combinatorial materials from aerosols," Nature, Nature, vol. 617(7960), pages 292-298, May.
    10. Wooik Jung & Yoon-Ho Jung & Peter V. Pikhitsa & Jicheng Feng & Younghwan Yang & Minkyung Kim & Hao-Yuan Tsai & Takuo Tanaka & Jooyeon Shin & Kwang-Yeong Kim & Hoseop Choi & Junsuk Rho & Mansoo Choi, 2021. "Three-dimensional nanoprinting via charged aerosol jets," Nature, Nature, vol. 592(7852), pages 54-59, April.
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