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多光丝耦合诱导击穿光谱土壤微量元素检测 被引量:1

Multi-Filament Interaction Induced Breakdown Spectroscopy for Trace Element Detection in Soil
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摘要 检测灵敏度是衡量一项检测技术的重要参数。为了提高激光诱导击穿光谱技术(LIBS)的检测灵敏度,搭建了三光丝耦合诱导击穿光谱(TIBS)系统,对土壤中的微量铬元素进行检测,并将检测结果与等离子体光栅诱导击穿光谱(GIBS)系统、光丝诱导击穿光谱(FIBS)系统进行对比。TIBS系统的谱线信号强度比GIBS系统增强了2倍,比FIBS系统增强了7~11倍。研究了FIBS、GIBS、TIBS系统的谱线强度随样品位置的变化,发现TIBS系统的激发稳定性与GIBS系统相近。此外,在对土壤中重金属铬的定量研究中,发现FIBS、GIBS、TIBS系统对土壤中铬元素的检出限分别为22.18×10^(-6)、8.68×10^(-6)、5.06×10^(-6)。TIBS系统相较于GIBS系统能进一步提高检测灵敏度。 Objective Excess heavy metals in soil can seriously affect the growth of crops,among which chromium is considered to be one of the most toxic heavy metals.Excess chromium levels can lead to retarded plant growth and reduced yields,and can affect human health when consumed.Therefore,chromium detection in soil has become an important research element in the field of agriculture.Laser-induced breakdown spectroscopy(LIBS)can be used for the detection of heavy metals in soil.This technique has the advantages of simultaneous detection of multiple elements,online detection,and simple sample preparation methods.Conventional nanosecond laser-induced breakdown spectroscopy has poor reproducibility due to the influence of background continuum spectra and matrix effects during the detection process.Improved methods include filament-induced breakdown spectroscopy(FIBS)based on femtosecond filament,plasma-grating-induced breakdown spectroscopy(GIBS)based on the non-collinear superposition of two femtosecond filaments,multidimensional-plasma-grating-induced breakdown spectroscopy(MIBS)based on the superposition of three non-coplanar femtosecond filaments,and triple-filament interaction induced breakdown spectroscopy(TIBS)based on the coplanar and non-collinear superposition of three femtosecond filaments.All these methods do not require the introduction of additional equipment and complex sample preparation methods.Among these improved methods,GIBS and MIBS have been well-studied.However,studies on TIBS are still lacking,especially regarding the detection of heavy metals in soil.Methods In this study,a TIBS system based on the superposition of three coplanar and non-collinear femtosecond beams,a GIBS system based on the superposition of two noncollinear femtosecond beams,and a FIBS system based on one femtosecond beam are developed to study the heavy-metal detection capability of these three systems in soil.Standard soil samples are doped with various mass fraction Cr elements and pressed into sheets.To ensure that the position of the sample being excited remains the same,the sample sheet is placed on a three-dimensional translation table.The fluorescence signal generated by the excited sample is transmitted to a step spectrometer equipped with an intensified charge-coupled device(ICCD).In addition,we use three systems for the detection of standard soil samples doped with different mass fraction Cr elements and determine the detection limits.Results and Discussions We first compare the spectral line signal intensities of the FIBS,GIBS,and TIBS systems under the same experimental conditions.As shown in Table 2,the signal intensity of the TIBS system is enhanced by 2 times compared with that of the GIBS system and 7-11 times compared with that of the FIBS system.Then,we compare the changes in the spectral line intensity under the three systems by varying the sample position.As shown in Fig.4,the TIBS,GIBS,and FIBS systems exhibit stable excitation in the spatial scale of 0.30,0.35,and 0.15 mm,respectively.This implies that the plasma grating formed by the superposition of multiple filaments has more stable excitation.The spectral signal intensity decreases rapidly after the excitation is far from the corresponding region because the filaments are not superimposed in this case.Finally,we measure the calibration curves of the Cr samples in soil with the three systems and calculate the corresponding limits of detection.As shown in Fig.5,the limits of detection for the FIBS,GIBS,and TIBS systems are 22.18×10~(-6),8.68×10~(-6),and 5.06×10~(-6),respectively.The TIBS system exhibits higher detection sensitivity compared with the GIBS system,and the coefficients of determination of the calibration curves for all three systems exceed 0.99.Conclusions In the comparative analysis of the soil samples doped with various mass fraction Cr_2O_3 under the same experimental conditions,the spectral signal of the TIBS system is significantly enhanced compared with those of the GIBS and FIBS systems;specifically,the spectral intensity achieves an enhancement of 2 times and 7-11 times,respectively,which is due to the more intense electron-ion collision in the interaction region of three filaments than that of two filaments,thereby leading to a further enhancement of the fluorescence.Compared with the GIBS system,the TIBS system has similar excitation stability and maintains in the best excitation region when the sample is moved within 0.30 mm.The calibration curves of Cr in soil are established under FIBS,GIBS,and TIBS systems,and the detection limits are 22.18×10~(-6),8.68×10~(-6),and 5.06×10~(-6),respectively.These results show that the TIBS technique can further improve the sensitivity of the detection compared with the GIBS system,and can be used as an effective method for the detection of heavy metals in soil.
作者 乔蔚 胡梦云 葛锦蔓 李芳芳 许书鹏 闫明 李小军 曾和平 Qiao Yu;Hu Mengyun;Ge Jinman;Li Fangfang;Xu Shupeng;Yan Ming;Li Xiaojun;Zeng Heping(State Key Laboratory of Precision Spectroscopy,East China Normal University,Shanghai 200062,China;Chongqing Key Laboratory of Precision Optics,Chongqing Institute,East China Normal University,Chongqing 401120,China;ROI Optoelectronics Technology Co.,Ltd.,Shanghai 201108,China;National Key Laboratory of Science and Technology on Space Microwave,China Academy of Space Technology(Xi'an),Xi'an 710100,Shaanxi,China)
出处 《中国激光》 EI CAS CSCD 北大核心 2023年第7期108-115,共8页 Chinese Journal of Lasers
基金 科技部重点研发计划(2018YFB0504400) 上海市青年科技启明星计划(22QC1401000) 国家预研基金(HTKJ2021KL504014) 国家自然科学基金(62035005,11621404) 上海市科学技术委员会量子项目(2019SHZDZX01-ZX05,2019SHZDZX01-ZX06)。
关键词 光谱学 激光诱导击穿 等离子体光栅 超快飞秒脉冲 重金属 检出限 spectroscopy laser-induced breakdown plasma grating ultrafast femtosecond pulse heavy metal limit of detection
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