Cold Plasma Jet Coupled Nanosecond Laser Ablation Scheme For Plasmonic Nanostructured Surfaces

Author:

Khan Taj Muhammad12ORCID,Aslam Nazim3,Iqbal Amjad45,Abbasi Shahab Ahmed3,Ali Dilawar6

Affiliation:

1. National Institute of Lasers and Optronics College Pakistan Institute of Engineering and Applied Sciences Nilore Islamabad 45650 Pakistan

2. School of Physics and CRANN Trinity College Dublin the University of Dublin Dublin 2 Ireland

3. Department of Physics University of Azad Jammu and Kashmir Muzaffarbad 13100 Pakistan

4. Department of Advanced Materials Technologies Faculty of Materials Engineering Silesian University of Technology Gliwice 44‐100 Poland

5. CEMMPRE ‐ Centre for Mechanical Engineering Materials and Processes Department of Mechanical Engineering University of Coimbra Rua Luis Reis Santos Coimbra 3030‐788 Portugal

6. Department of Physics GC University Lahore 54000 Pakistan

Abstract

AbstractThis paper describes a study where an argon cold plasma jet, generated by a dielectric‐barrier discharge (DBD), is combined with nanosecond laser ablation (248 nm, 25 ns, 10 Hz) to deposit silver particle aerosols onto the substrate at atmospheric pressure. The deposition of the particle is examined using various microscopy techniques and absorption spectroscopy for the plasma jet produced by operating DBD in the normal and reversed mode. Plasma facilitated the deposition process by delivering the particle to the substrate and significantly influenced its morphology depending on the jet interaction, length, and substrate position. In both cases, the particles are clustered; however, there is less deposit for the plasma ignited in the reverse mode. The theoretical analysis of the deposition process is performed using ANSYS software and evaluated in terms of plasma‐induced flow velocity. This study infers that the hybrid plasma‐laser deposition scheme considered is attractive for material processing and deposition, especially overextended substrate distances, and for altering the properties of the deposited particles for practical utilization in surface‐enhanced Raman spectroscopy, solar cells, and catalysis.

Funder

Science Foundation Ireland

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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