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Smart integration of cold plasma stream and surface discharge with ns laser ablation for composite nanomaterial
by
Muhammad Akhtar, Hafiz
, khan, Mahtab Ahmad
, Abdullah, M
, Latif, Muhammad
, Khan, Taj Muhammad
in
Ablation
/ Air flow
/ Catalysis
/ Chemical composition
/ Cold plasmas
/ Dielectric barrier discharge
/ Fluence
/ Gas flow
/ Laser ablation
/ Lasers
/ Nanomaterials
/ Pulse duration
/ Surface energy
/ Surface properties
/ Ultraviolet emission
/ Zinc oxide
2024
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Smart integration of cold plasma stream and surface discharge with ns laser ablation for composite nanomaterial
by
Muhammad Akhtar, Hafiz
, khan, Mahtab Ahmad
, Abdullah, M
, Latif, Muhammad
, Khan, Taj Muhammad
in
Ablation
/ Air flow
/ Catalysis
/ Chemical composition
/ Cold plasmas
/ Dielectric barrier discharge
/ Fluence
/ Gas flow
/ Laser ablation
/ Lasers
/ Nanomaterials
/ Pulse duration
/ Surface energy
/ Surface properties
/ Ultraviolet emission
/ Zinc oxide
2024
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Do you wish to request the book?
Smart integration of cold plasma stream and surface discharge with ns laser ablation for composite nanomaterial
by
Muhammad Akhtar, Hafiz
, khan, Mahtab Ahmad
, Abdullah, M
, Latif, Muhammad
, Khan, Taj Muhammad
in
Ablation
/ Air flow
/ Catalysis
/ Chemical composition
/ Cold plasmas
/ Dielectric barrier discharge
/ Fluence
/ Gas flow
/ Laser ablation
/ Lasers
/ Nanomaterials
/ Pulse duration
/ Surface energy
/ Surface properties
/ Ultraviolet emission
/ Zinc oxide
2024
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Smart integration of cold plasma stream and surface discharge with ns laser ablation for composite nanomaterial
Journal Article
Smart integration of cold plasma stream and surface discharge with ns laser ablation for composite nanomaterial
2024
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Overview
In this paper, smart integration of cold dielectric barrier discharge (DBD) plasma in various geometrical arrangements with laser ablation at atmospheric pressure for nanomaterial was described. A composite Co:ZnO target was ablated in an airflow by a nanosecond (ns) laser (wavelength: 1064 nm, pulse duration: 30 ns) using fluence of 5 J-cm−2 at a repetition rate of 10 Hz. The nanomaterial produced under vertical and oblique plasma streams, surface discharge and gas flow, were compared. Utilization surface discharge markedly improved the material adhesion by altering surface intrinsic behavior, inducing anticipated surface energy activation, chemical changes, and the formation of a densely packed solid structure. Under all conditions, the material consistently retained its crystalline nature, elemental composition, and ultraviolet emission characteristics. These preliminary findings hold promise for additional research, suggesting avenues for making complex materials in a flexible environment. Such new advancements could facilitate applications in the biomedical, catalysis, pharmaceutical, and surgical device domains.
Publisher
Springer Nature B.V
Subject
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