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Jean-Paul Mosnier

Researcher at Dublin City University

Publications -  133
Citations -  3284

Jean-Paul Mosnier is an academic researcher from Dublin City University. The author has contributed to research in topics: Pulsed laser deposition & Laser. The author has an hindex of 28, co-authored 132 publications receiving 2892 citations.

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In-Package Atmospheric Pressure Cold Plasma Treatment of Strawberries

TL;DR: In this paper, strawberries were treated with atmospheric cold plasma (ACP), generated with a 60-kV dielectric barrier discharge (DBD) pulsed at 50-Hz across a 40mm electrode gap, generated inside a sealed package containing ambient air (42% relative humidity).
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In-package atmospheric pressure cold plasma treatment of cherry tomatoes

TL;DR: It is implicate that cold plasma could be employed as a means for decontamination of cherry tomatoes while retaining product quality, and differences among weight loss, pH and firmness for control and treated cherry tomatoes were insignificant towards the end of storage life.
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Surface excitonic emission and quenching effects in ZnO nanowire/nanowall systems: Limiting effects on device potential

TL;DR: In this article, a two-step vapor phase transport method on sapphire was used to obtain high energy excitonic emission at low temperatures close to the band-edge which was assigned to the surface exciton in ZnO at $\ensuremath{\sim}3.366\phantom{\rule{0.3em}{0ex}}\mathrm{eV}$.
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Cold Plasma in Modified Atmospheres for Post-harvest Treatment of Strawberries

TL;DR: In this article, the decontamination of strawberries inside a sealed package with two different gas mixtures, viz. 65% O2+16% N2+19% CO2 and 90% N 2+10% O 2, was reported.
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Influence of high voltage atmospheric cold plasma process parameters and role of relative humidity on inactivation of Bacillus atrophaeus spores inside a sealed package

TL;DR: Rapid in-package HVACP inactivation of bacterial spores within 30-60s demonstrates the promising potential application for reduction of spores on medical devices and heat-sensitive materials.