4.7 Article

Chameleon-inspired multifunctional plasmonic nanoplatforms for biosensing applications

期刊

NPG ASIA MATERIALS
卷 14, 期 1, 页码 -

出版社

NATURE PORTFOLIO
DOI: 10.1038/s41427-022-00365-9

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资金

  1. European Union under the European Regional Development Fund [POIR.04.04.00-00-5ED7/18-00]
  2. National Agency for Academic Exchange (NAWA) [PPI/APM/2018/1/00045/U/001]
  3. Polish Ministry of Science and Higher Education
  4. Foundation for Polish Science (FNP)
  5. Air Force Office of Scientific Research (AFOSR)
  6. Air Force Research Laboratory (AFRL)
  7. U.S. Air Force [FA9550-18-1-0038]
  8. Sapienza University of Rome [RM11816431206A2C]
  9. EC [02.02.00-17-024/08-00]
  10. U.S. Air Force Materials and Manufacturing

向作者/读者索取更多资源

One of the fascinating areas in the field of smart biopolymers is biomolecule sensing. This article presents an innovative platform composed of nanocomposite hydrogels and electrospun materials for glucose sensing applications.
One of the most fascinating areas in the field of smart biopolymers is biomolecule sensing. Accordingly, multifunctional biomimetic, biocompatible, and stimuli-responsive materials based on hydrogels have attracted much interest. Within this framework, the design of nanostructured materials that do not require any external energy source is beneficial for developing a platform for sensing glucose in body fluids. In this article, we report the realization and application of an innovative platform consisting of two outer layers of a nanocomposite plasmonic hydrogel plus one inner layer of electrospun mat fabricated by electrospinning, where the outer layers exploit photoinitiated free radical polymerization, obtaining a compact and stable device. Inspired by the exceptional features of chameleon skin, plasmonic silver nanocubes are embedded into a poly(N-isopropylacrylamide)-based hydrogel network to obtain enhanced thermoresponsive and antibacterial properties. The introduction of an electrospun mat creates a compatible environment for the homogeneous hydrogel coating while imparting excellent mechanical and structural properties to the final system. Chemical, morphological, and optical characterizations were performed to investigate the structure of the layers and the multifunctional platform. The synergetic effect of the nanostructured system's photothermal responsivity and antibacterial properties was evaluated. The sensing features associated with the optical properties of silver nanocubes revealed that the proposed multifunctional system is a promising candidate for glucose-sensing applications.

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