节点文献

A theoretical study of the signal enhancement mechanism of coaxial DP-LIBS

  • 推荐 CAJ下载
  • PDF下载
  • 不支持迅雷等下载工具,请取消加速工具后下载。

【作者】 宋震王俊霄王钢张雷王树青张婉飞马晓飞刘珍荣罗学彬马维光叶泽甫朱竹君尹王保贾锁堂

【Author】 Zhen SONG;Junxiao WANG;Gang WANG;Lei ZHANG;Shuqing WANG;Wanfei ZHANG;Xiaofei MA;Zhenrong LIU;Xuebin LUO;Weiguang MA;Zefu YE;Zhujun ZHU;Wangbao YIN;Suotang JIA;State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy,Shanxi University;Collaborative Innovation Center of Extreme Optics, Shanxi University;National Energy R & D Center of Petroleum Refining Technology (RIPP,SINOPEC);Shanxi Xinhua Chemical Defense Equipment Research Institute Co.Ltd.;Shanxi Gemeng US-China Clean Energy R & D Center Co.Ltd.;

【通讯作者】 张雷;尹王保;

【机构】 State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy,Shanxi UniversityCollaborative Innovation Center of Extreme Optics, Shanxi UniversityNational Energy R & D Center of Petroleum Refining Technology (RIPP,SINOPEC)Shanxi Xinhua Chemical Defense Equipment Research Institute Co.Ltd.Shanxi Gemeng US-China Clean Energy R & D Center Co.Ltd.

【摘要】 In the field of dual-pulse laser-induced breakdown spectroscopy(DP-LIBS) research, the pursuit of methods for determining pulse intervals and other parameters quickly and conveniently in order to achieve optimal spectral signal enhancement is paramount. To aid researchers in identification of optimal signal enhancement conditions and more accurate interpretation of the underlying signal enhancement mechanisms, theoretical simulations of the spatiotemporal processes of coaxial DP-LIBS-induced plasma have been established in this work. Using a model based on laser ablation and two-dimensional axisymmetric fluid dynamics, plasma evolutions during aluminum–magnesium alloy laser ablation under single-pulse and coaxial dualpulse excitations have been simulated. The influences of factors, such as delay time, laser fluence,plasma temperature, and particle number density, on the DP-LIBS spectral signals are investigated.Under pulse intervals ranging from 50 to 1500 ns, the time evolutions of spectral line intensity,dual-pulse emission enhancement relative to the single-pulse results, laser irradiance, spatial distribution of plasma temperature and species number density, as well as laser irradiance shielded by plasma have been obtained. The study indicates that the main reason behind the radiation signal enhancement in coaxial DP-LIBS-induced plasma is attributed to the increased species number density and plasma temperature caused by the second laser, and it is inferred that the shielding effect of the plasma mainly occurs in the boundary layer of the stagnation point flow over the target surface. This research provides a theoretical basis for experimental research, parameter optimization, and signal enhancement tracing in DP-LIBS.

【Abstract】 In the field of dual-pulse laser-induced breakdown spectroscopy(DP-LIBS) research, the pursuit of methods for determining pulse intervals and other parameters quickly and conveniently in order to achieve optimal spectral signal enhancement is paramount. To aid researchers in identification of optimal signal enhancement conditions and more accurate interpretation of the underlying signal enhancement mechanisms, theoretical simulations of the spatiotemporal processes of coaxial DP-LIBS-induced plasma have been established in this work. Using a model based on laser ablation and two-dimensional axisymmetric fluid dynamics, plasma evolutions during aluminum–magnesium alloy laser ablation under single-pulse and coaxial dualpulse excitations have been simulated. The influences of factors, such as delay time, laser fluence,plasma temperature, and particle number density, on the DP-LIBS spectral signals are investigated.Under pulse intervals ranging from 50 to 1500 ns, the time evolutions of spectral line intensity,dual-pulse emission enhancement relative to the single-pulse results, laser irradiance, spatial distribution of plasma temperature and species number density, as well as laser irradiance shielded by plasma have been obtained. The study indicates that the main reason behind the radiation signal enhancement in coaxial DP-LIBS-induced plasma is attributed to the increased species number density and plasma temperature caused by the second laser, and it is inferred that the shielding effect of the plasma mainly occurs in the boundary layer of the stagnation point flow over the target surface. This research provides a theoretical basis for experimental research, parameter optimization, and signal enhancement tracing in DP-LIBS.

【基金】 supported by the National Key R&D Program of China (No. 2017YFA0304203);the National Energy R&D Center of Petroleum Refining Technology (RIPP, SINOPEC);Changjiang Scholars and Innovative Research Team at the University of the Ministry of Education of China (No. IRT_17R70);National Natural Science Foundation of China (NSFC) (Nos. 61975103, 61875108 and 627010407);111 Project (No. D18001);Fund for Shanxi (No. 1331KSC)
  • 【文献出处】 Plasma Science and Technology ,等离子体科学和技术(英文版) , 编辑部邮箱 ,2024年05期
  • 【分类号】O657.38
  • 【下载频次】2
节点文献中: 

本文链接的文献网络图示:

本文的引文网络