4.8 Article

High-Performance Flexible Transparent Electrode with an Embedded Metal Mesh Fabricated by Cost-Effective Solution Process

Journal

SMALL
Volume 12, Issue 22, Pages 3021-3030

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.201600309

Keywords

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Funding

  1. National Natural Science Foundation of China [61306123]
  2. Early Career Scheme of the Research Grants Council of the Hong Kong Special Administrative Region [27205515]
  3. Science and Technology Innovation Commission of Shenzhen Municipality [JCYJ20140903112959959]
  4. University of Hong Kong [201411159212]
  5. US National Science Foundation [CMMI 1025020]

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A new structure of flexible transparent electrodes is reported, featuring a metal mesh fully embedded and mechanically anchored in a flexible substrate, and a cost-effective solution-based fabrication strategy for this new transparent electrode. The embedded nature of the metal-mesh electrodes provides a series of advantages, including surface smoothness that is crucial for device fabrication, mechanical stability under high bending stress, strong adhesion to the substrate with excellent flexibility, and favorable resistance against moisture, oxygen, and chemicals. The novel fabrication process replaces vacuum-based metal deposition with an electrodeposition process and is potentially suitable for high-throughput, large-volume, and low-cost production. In particular, this strategy enables fabrication of a high-aspect-ratio (thickness to linewidth) metal mesh, substantially improving conductivity without considerably sacrificing transparency. Various prototype flexible transparent electrodes are demonstrated with transmittance higher than 90% and sheet resistance below 1 ohm sq(-1), as well as extremely high figures of merit up to 1.5 x 10(4), which are among the highest reported values in recent studies. Finally using our embedded metal-mesh electrode, a flexible transparent thin-film heater is demonstrated with a low power density requirement, rapid response time, and a low operating voltage.

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