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Updated: Jun 20, 2026

Microembossing: A Convenient Process for Fabricating Microchannels on Nanocellulose Paper-Based Microfluidics
Published on: October 6, 2023
Fabrication of densely-packed nanoparticle layers@ cellulose nanofibril nanopaper via interface self-assembly and its
Huifang Yao1, Xiaolan Liu2, Lu Xue3
1Key Laboratory of Smart Drugs Control of Ministry of Education, Yunnan Key laboratory of Smart Drugs Control, Yunnan Police College, Kunming 650223, China; Hubei University of Police, Wuhan 430035, China.
Abstract:
Cellulose-based surface-enhanced Raman spectroscopy (SERS) substrates have emerged as a prominent research focus for advancing the practical application of SERS technology. Herein, a three-phase interfacial self-assembly strategy was developed to deposit nanoparticle layers onto the surface of cellulose nanofibril (CNF) nanopapers. This approach enables the fabrication of large-area monolayer or multilayer metallic nanoparticles (NPs) with diverse morphologies on the CNF surface, thereby constructing versatile SERS nanopapers with tunable surface plasmonic properties. The double-layered Au NPs@CNF nanopaper showed excellent SERS performance, achieving a minimum detectable concentration (MDC) of 10-13 M (4-aminothiophenol, 4-ATP) and 0.1 ppm (methamphetamine, MAMP) with a wide linear range. Featuring excellent optical transparency and a well-defined porous structure, the substrate facilitates efficient extraction and enrichment of target analytes. By attaching its non-metallic side to sample surfaces, it enables SERS detection as well as food-safe, nondestructive trace analysis. As a proof of concept, these SERS nanopapers were applied to rapidly detect thiram on apple peels, with an MDC of 0.1 ng/cm2, and to extract and identify dyes from textiles with minimal damage. These approaches prevent nanoparticle contamination on food surfaces and eliminate destructive sampling, providing a reliable and biosafe strategy for nondestructive in-situ SERS monitoring.

