| Literature DB >> 31132266 |
Marincan Pardede1, Eric Jobiliong1, Kurnia Lahna, Rinaldi Idroes, Hery Suyanto2, Alion Mangasi Marpaung3, Syahrun Nur Abdulmadjid, Nasrullah Idris, Muliadi Ramli, Rinda Hedwig4, Zener Sukra Lie4, Tjung Jie Lie5, Indra Karnadi6, Ivan Tanra6, Dennis Kwaria5, Maria Margaretha Suliyanti7, Ali Khumaeni8, Wahyu Setia Budi8, Koo Hendrik Kurniawan5, Kiichiro Kagawa5,9, May On Tjia5,10.
Abstract
This study is aimed at elucidating the physical processes responsible for the excellent spectral qualities in terms of full width at half-maximum (fwhm) and signal-to-noise (S/N) ratio shown in a special double pulse laser-induced spectroscopy. Apart from the use of atmospheric He ambient gas, the achievement is due to the first laser for generating He gas plasma and the subsequent use of the second laser pulse for target ablation, in opposite order of the two-laser operations in conventional double pulse LIBS. This setup allows adjustments of the many experimental parameters to yield the optimal condition resulting in 0.03 nm fwhm and around 1000× S/N ratio of Cu I 521.8 nm and far surpasses the spectral qualities obtained by other techniques. This is obtained by allowing the crucial separation of the target plasma from the He gas plasma and thereby enabling the He-assisted excitation (HAE) to play its full and unique role of nonthermal excitation, taking advantage of metastable excited He atoms in the He plasma and the Penning-like energy transfer process. This excellent performance is further verified by its successful application analysis of Cr in low alloy steel samples, with the presence of smooth linear calibration lines, signifying the absence of the self-absorption effect well-known in ordinary LIBS.Entities:
Year: 2019 PMID: 31132266 DOI: 10.1021/acs.analchem.9b01618
Source DB: PubMed Journal: Anal Chem ISSN: 0003-2700 Impact factor: 6.986