Printing large-scale nanoparticle superlattices for multichannel detection

Weidong Zhao, Haochen Ye, Xiao Li, Jiaxing Liu, Xinyuan Zhou, Xiangyu Chen, Zhenjie Xue*, Zhou Yang*, Tie Wang*

*Corresponding author for this work

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Abstract

Challenges in the emerging applications of superlattices integrated into functional devices necessitate scalable, high-quality, and patterned architectures. These bottlenecks result from the complexity of assembly pathways and a lack of understanding of the key factors that determine the order degree. In this study, we constructed highly ordered superlattices by adding excessive nonvolatile ligands. The dynamics of the assembly process was observed in real time by in situ Raman spectroscopy, which revealed that the excess ligands reduced the diffusion velocity and extended the time for nanoparticles to self-regulate at the evaporation front. Pixelated superlattice architectures were produced on demand over large areas using inkjet printing techniques. Furthermore, a multichannel surface-enhanced Raman scattering (SERS) detection chip was developed. The SERS chip allows repeated detection of a sample and simultaneous detection of multiple analytes without interference. A new understanding of assembly behavior provides broad opportunities for the development and production of superlattice-related devices.

Original languageEnglish
Pages (from-to)2194-2205
Number of pages12
JournalChem
Volume9
Issue number8
DOIs
Publication statusPublished - 10 Aug 2023

Keywords

  • SDG3: Good health and well-being
  • SERS
  • drying-mediated assembly
  • in situ Raman
  • inkjet printing
  • patterned superlattice

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Zhao, W., Ye, H., Li, X., Liu, J., Zhou, X., Chen, X., Xue, Z., Yang, Z., & Wang, T. (2023). Printing large-scale nanoparticle superlattices for multichannel detection. Chem, 9(8), 2194-2205. https://doi.org/10.1016/j.chempr.2023.03.031