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Microstructure-Dependent Particulate Filtration using Multifunctional Metallic Nanowire Foams

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arxiv 2407.14946 v1 pith:G4LB2SHL submitted 2024-07-20 physics.app-ph cond-mat.mes-hall

Microstructure-Dependent Particulate Filtration using Multifunctional Metallic Nanowire Foams

classification physics.app-ph cond-mat.mes-hall
keywords filtrationsurfaceareafoamsnanowireefficiencyefficientmicrostructures
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The COVID-19 pandemic has shown the urgent need for the development of efficient, durable, reusable and recyclable filtration media for the deep-submicron size range. Here we demonstrate a multifunctional filtration platform using porous metallic nanowire foams that are efficient, robust, antimicrobial, and reusable, with the potential to further guard against multiple hazards. We have investigated the foam microstructures, detailing how the growth parameters influence the overall surface area and characteristic feature size, as well as the effects of the microstructures on the filtration performance. Nanogranules deposited on the nanowires during electrodeposition are found to greatly increase the surface area, up to 20 m$^{2}$/g. Surprisingly, in the high surface area regime, the overall surface area gained from the nanogranules has little correlation with the improvement in capture efficiency. However, nanowire density and diameter play a significant role in the capture efficiency of PM$_{0.3}$ particles, as do the surface roughness of the nanowire fibers and their characteristic feature sizes. Antimicrobial tests on the Cu foams show a >99.9995% inactivation efficiency after contacting the foams for 30 seconds. These results demonstrate promising directions to achieve a highly efficient multifunctional filtration platform with optimized microstructures.

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