4.7 Article

Heterogeneously Assembled Metamaterials and Metadevices via 3D Modular Transfer Printing

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SCIENTIFIC REPORTS
卷 6, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/srep27621

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资金

  1. Basic Science Research Program [2012R1A2A1A03670391]
  2. Nano Material Technology Development Program [2014039957]
  3. Global Frontier Program [2014M3A6B3063709]
  4. Pioneer Research Center Program [2014M3C1A305237]
  5. Quatum Metamaterials Research Center Program through the National Research Foundation of Korea (NRF) - Ministry of Science [2008-0061893]
  6. World Class Institute (WCI) Program of the National Research Foundation of Korea (NRF) - Korea government [WCI 2011-001]
  7. Pioneering Nano-Based Convergence HRD Center (BK21 + program at Sungkyunkwan University)
  8. Basic Science Research Program of the National Research Foundation of Korea (NRF of Korea) - Ministry of Education, Science, and Technology, Korea [2009-0083540, NRF-2014R1A1A2057763]
  9. National Science Foundation [CMMI-1351370]
  10. Div Of Civil, Mechanical, & Manufact Inn
  11. Directorate For Engineering [1351370] Funding Source: National Science Foundation

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Metamaterials have made the exotic control of the flow of electromagnetic waves possible, which is difficult to achieve with natural materials. In recent years, the emergence of functional metadevices has shown immense potential for the practical realization of highly efficient photonic devices. However, complex and heterogeneous architectures that enable diverse functionalities of metamaterials and metadevices have been challenging to realize because of the limited manufacturing capabilities of conventional fabrication methods. Here, we show that three-dimensional (3D) modular transfer printing can be used to construct diverse metamaterials in complex 3D architectures on universal substrates, which is attractive for achieving on-demand photonic properties. Few repetitive processing steps and rapid constructions are additional advantages of 3D modular transfer printing. Thus, this method provides a fascinating route to generate flexible and stretchable 2D/3D metamaterials and metadevices with heterogeneous material components, complex device architectures, and diverse functionalities.

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