» Articles » PMID: 32342089

In Situ Generation of Plasma-activated Aerosols Via Surface Acoustic Wave Nebulization for Portable Spray-based Surface Bacterial Inactivation

Overview
Journal Lab Chip
Specialties Biotechnology
Chemistry
Date 2020 Apr 29
PMID 32342089
Citations 8
Authors
Affiliations
Soon will be listed here.
Abstract

The presence of reactive species in plasma-activated water is known to induce oxidative stresses in bacterial species, which can result in their inactivation. By integrating a microfludic chipscale nebulizer driven by surface acoustic waves (SAWs) with a low-temperature atmospheric plasma source, we demonstrate an efficient technique for in situ production and application of plasma-activated aerosols for surface disinfection. Unlike bulk conventional systems wherein the water is separately batch-treated within a container, we show in this work the first demonstration of continuous plasma-treatment of water as it is transported through a paper strip from a reservoir onto the chipscale SAW device. The significantly larger surface area to volume ratio of the water within the paper strip leads to a significant reduction in the duration of the plasma-treatment, while maintaining the concentration of the reactive species. The subsequent nebulization of the plasma-activated water by the SAW then allows the generation of plasma-activated aerosols, which can be directly sprayed onto the contaminated surface, therefore eliminating the storage of the plasma-activated water and hence circumventing the typical limitation in conventional systems wherein the concentration of the reactive species diminishes over time during storage, resulting in a reduction in the efficacy of bacterial inactivation. In particular, we show up to 96% reduction in Escherichia coli colonies through direct spraying with the plasma-activated aerosols. This novel, low-cost, portable and energy-efficient hybrid system necessitates only minimal maintenance as it only requires the supply of tap water and battery power for operation, and is thus suitable for decontamination in home environments.

Citing Articles

A rapid prototyped atmospheric non-thermal plasma-activated aerosol device and anti-bacterial characterisation.

de Oliveira Mallia J, Griffin S, Buttigieg C, Gatt R Front Chem. 2024; 12:1416982.

PMID: 38947958 PMC: 11211520. DOI: 10.3389/fchem.2024.1416982.


Leveraging Plasma-Activated Seawater for the Control of Human Norovirus and Bacterial Pathogens in Shellfish Depuration.

Pandiscia A, Lorusso P, Manfredi A, Sanchez G, Terio V, Randazzo W Foods. 2024; 13(6).

PMID: 38540842 PMC: 10969863. DOI: 10.3390/foods13060850.


A Comprehensive Review of Surface Acoustic Wave-Enabled Acoustic Droplet Ejection Technology and Its Applications.

Ning J, Lei Y, Hu H, Gai C Micromachines (Basel). 2023; 14(8).

PMID: 37630082 PMC: 10456473. DOI: 10.3390/mi14081543.


Conformational-switch biosensors as novel tools to support continuous, real-time molecular monitoring in lab-on-a-chip devices.

Parolo C, Idili A, Heikenfeld J, Plaxco K Lab Chip. 2023; 23(5):1339-1348.

PMID: 36655710 PMC: 10799767. DOI: 10.1039/d2lc00716a.


Recent advances in acoustic microfluidics and its exemplary applications.

Li Y, Cai S, Shen H, Chen Y, Ge Z, Yang W Biomicrofluidics. 2022; 16(3):031502.

PMID: 35712527 PMC: 9197543. DOI: 10.1063/5.0089051.