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Title: Controlling plasma produced fluxes to liquid surfaces by acoustic structuring: applications to plasma driven solution electrochemistry
Abstract Plasmas interacting with liquid surfaces produce a complex interfacial layer where the local chemistry in the liquid is driven by fluxes from the gas phase of electrons, ions, photons, and neutral radicals. Typically, the liquid surface has at best mild curvature with the fluxes of impinging plasma species and applied electric field being nominally normal to the surface. With liquids such as water having a high dielectric constant, structuring of the liquid surface by producing a wavy surface enables local electric field enhancement due to polarization of the liquid, as well as producing regions of higher and lower advective gas flow across the surface. This structuring (or waviness) can naturally occur or can be achieved by mechanical agitation such as with acoustic transducers. Electric field enhancement at the peaks of the waves of the liquid produces local increases in sources of reactive species and incident plasma fluxes which may be advantageous for plasma driven solution electrochemistry (PDSE) applications. In this paper, results are discussed from a computational investigation of pulsed atmospheric pressure plasma jets onto structured water solutions containing AgNO3as may be used in PDSE for silver nanoparticle (NP) formation. The solution surface consists of standing wave patterns having wavelength and wave depth of hundreds of microns to 1 mm. The potential for structured liquid surfaces to facilitate spatially differentiated chemical selectivity and enhance NP synthesis in the context of PDSE is discussed.  more » « less
Award ID(s):
2032604
PAR ID:
10625698
Author(s) / Creator(s):
; ; ;
Publisher / Repository:
Institute of Physics
Date Published:
Journal Name:
Plasma Sources Science and Technology
Volume:
34
Issue:
3
ISSN:
0963-0252
Page Range / eLocation ID:
035004
Subject(s) / Keyword(s):
plasma driven solution electrochemistry (PDSE) atmospheric pressure plasma, nanoparticles, silver-nitrate solutions
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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