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Site-specific fabrication of a melanin-like pigment through spatially confined progressive assembly on an initiator-loaded template

Title
Site-specific fabrication of a melanin-like pigment through spatially confined progressive assembly on an initiator-loaded template
Author(s)
Jeong, HaejinLee, JisooKim, SeunghwiMoon, HaeramHong, Seonki
Issued Date
2023-06
Citation
Nature Communications, v.14, no.1, pp.3432
Type
Article
Keywords
MUSSEL-INSPIRED POLYDOPAMINESURFACE-CHEMISTRYHYDROGELSMECHANISMADHESION
ISSN
2041-1723
Abstract
Melanin-like nanomaterials have emerged in surface biofunctionalization in a material-independent manner due to their versatile adhesion arising from their catechol-rich structures. However, the unique adhesive properties of these materials ironically raise difficulties in their site-specific fabrication. Here, we report a method for site-specific fabrication and patterning of melanin-like pigments, using progressive assembly on an initiator-loaded template (PAINT), different from conventional lithographical methods. In this method, the local progressive assembly could be naturally induced on the given surface pretreated with initiators mediating oxidation of the catecholic precursor, as the intermediates generated from the precursors during the progressive assembly possess sufficient intrinsic underwater adhesion for localization without diffusion into solution. The pigment fabricated by PAINT showed efficient NIR-to-heat conversion properties, which can be useful in biomedical applications such as the disinfection of medical devices and cancer therapies. © 2023. The Author(s).
URI
http://hdl.handle.net/20.500.11750/47563
DOI
10.1038/s41467-023-38622-2
Publisher
Nature Publishing Group
Related Researcher
  • 홍선기 Hong, Seonki
  • Research Interests Bio-inspired organic materials; Polymeric biomaterials; Surface biofunctionalization; biochip fabrication
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Appears in Collections:
Department of Physics and Chemistry Bioinspired Organic Materials Laboratory 1. Journal Articles

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