| Literature DB >> 32352741 |
Nanjing Hao1, Pengzhan Liu1, Hunter Bachman1, Zhichao Pei1, Peiran Zhang1, Joseph Rufo1, Zeyu Wang1, Shuaiguo Zhao1, Tony Jun Huang1.
Abstract
The integration of acoustics and microfluidics (termed acoustofluidics) presents a frontier in the engineering of functional micro-/nanomaterials. Acoustofluidic techniques enable active and precise spatiotemporal control of matter, providing great potential for the design of advanced nanosystems with tunable material properties. In this work, we introduce an acoustofluidic approach for engineering multifunctional three-dimensional nanostructure arrays and demonstrate their potential in enrichment and biosensing applications. In particular, our acoustofluidic device integrates an acoustic transducer with a sharp-edge-based acoustofluidic reactor that enables uniform patterning of zinc oxide (ZnO) nanoarrays with customizable lengths, densities, diameters, and other properties. The resulting ZnO nanoarray-coated glass capillaries can rapidly and efficiently capture and enrich biomolecules with sizes ranging from a few nanometers to several hundred nanometers. In order to enable the detection of these biomolecules, silver (Ag) nanoparticles are deposited onto the ZnO nanoarrays, and the integrated ZnO-Ag capillary device functions as a label-free plasmonic biosensing system for surface-enhanced Raman spectroscopy (SERS) based detection of exosomes, DNA oligonucleotides, and E. coli bacteria. The optical sensing enhancement of ZnO-Ag capillary is further validated through finite-difference time-domain (FDTD) simulations. These findings not only provide insights into the engineering of functional micro/nanomaterials using acoustofluidics but also shed light onto the development of portable microanalytical devices for point-of-care applications.Entities:
Keywords: SERS sensing; ZnO nanoarray; acoustics; acoustofluidics; microfluidics
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Year: 2020 PMID: 32352741 PMCID: PMC7415004 DOI: 10.1021/acsnano.0c02145
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881