Pregled bibliografske jedinice broj: 1150020
Laser drilling of metals in water: A model
Laser drilling of metals in water: A model // 16th International Conference On Laser Materials Processing
Osaka, Japan, 2021. (predavanje, nije recenziran, neobjavljeni rad, znanstveni)
CROSBI ID: 1150020 Za ispravke kontaktirajte CROSBI podršku putem web obrasca
Naslov
Laser drilling of metals in water: A model
Autori
Car, Julio ; Blažeka, Damjan ; Krstulović, Nikša
Vrsta, podvrsta i kategorija rada
Sažeci sa skupova, neobjavljeni rad, znanstveni
Skup
16th International Conference On Laser Materials Processing
Mjesto i datum
Osaka, Japan, 20.05.2021. - 21.05.2021
Vrsta sudjelovanja
Predavanje
Vrsta recenzije
Nije recenziran
Ključne riječi
laser drilling of craters, Gaussian laser pulse, laser energy deposition, lower and upper energy limit
Sažetak
Laser drilling of metals in water is essential method for synthesis of nanoparticles with adjustble size distribution and morphology given that there are many experimental parameters (energy, frequency, wavelength, pulse duration, number of pulses, radius of the pulse...) which determine characteristics of obtained nanoparticles. One of the most important quantites dependent on these parameters are volumes of craters from which concentration and diameter of produced nanoparticles may be determined. This paper shows that Gaussian profile of laser pulses used for drilling of craters, projects itself into the Gaussian profile of obtained crater depth vs. radius dependence. Comparison of volumes measured by optical microscopy and modeled ones show discrepancy in range ±10 % for Ag, ±15 % for Au and ±5 % for ZnO. Developed model states that there are 3 relevant points for full crater description given it has Gaussian profile: surface radius R_0, depth D and Gaussian waist ω which equals to radius at 1/e^2 depth. Comparison of volumes of craters measured by optical microscopy and modeled ones with 3 points gaussian fit show discrepancy in range ±10 % for Ag, ±15 % for ZnO and ±20 % for Au. Fluence profile of Gaussian laser pulses and areas of successive crater holes drilled with each pulse enables calculation of deposited energy in the crater where crucial parameters are ablation threshold of given metal for given wavelength and pulse duration and incident energy upon metal target. Obtained energies are bounded with lower limit which corresponds to minimal energy needed for heating, melting and evaporation of given volume of metal target and upper limit given as a maximal energy incident upon metal target for given number of pulses. Difference between upper limit energy and deposited energy equals to heat diffusion to the crater surroundings and difference between deposited energy and lower limit energy equals to heating of evaporated species up to plasma temperature and radiation of ignited plasma during laser ablation.
Izvorni jezik
Engleski
Znanstvena područja
Fizika
POVEZANOST RADA
Projekti:
IP-2019-04-6418 - Laserska sinteza nanočestica i primjene (LaSyNanoApp) (Krstulović, Nikša, HRZZ - 2019-04) ( CroRIS)
Ustanove:
Institut za fiziku, Zagreb