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Study on LIBS surface-enhanced detection method for soil metal elements based on graphene oxide adsorption-conversion mechanism

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【作者】 王红宝李红莲贾凯王一童么宇航要志超方立德

【Author】 Hongbao WANG;Honglian LI;Kai JIA;Yitong WANG;Yuhang YAO;Zhichao YAO;Lide FANG;School of Quality and Technical Supervision,Hebei University;National&Local Joint Engineering Research Center of Metrology Instrument and System;Hebei Key Laboratory of Energy Metering and Safety Testing Technology,Hebei University;

【通讯作者】 李红莲;

【机构】 School of Quality and Technical Supervision,Hebei UniversityNational&Local Joint Engineering Research Center of Metrology Instrument and SystemHebei Key Laboratory of Energy Metering and Safety Testing Technology,Hebei University

【摘要】 To enhance the spectral signal intensity and stability of laser-induced breakdown spectroscopy(LIBS) for detecting trace elements in soil, a graphene oxide(GO) adsorption conversion mechanism is proposed. The experiment compared the enhancement effects of three substrates—glass plate, graphite plate, and GO adsorption layer—on metal elements such as Ni,Sr, and Ba in soil. The surface enhancement mechanisms of different substrates were analyzed from three perspectives: ablation morphology, thermal conductivity, and adsorption energy. It was concluded that a smooth substrate surface facilitates uniform solute distribution, and an increase in the thermal conductivity of the substrate material enhances the signal and enlarges the plasma morphology. The optimal soil-to-nitric acid ratio in the solid-liquid-solid conversion mechanism was determined to be 1:1, with a nitric acid concentration of 1 mol/L. The GO adsorption layer substrate demonstrated the best enhancement effect, with spectral intensities of Ni, Sr, and Ba enhanced by 3.4, 1.8, and 8.3 times, respectively, compared to the glass. The limits of detection(LOD) reached 3.148 mg/L, 0.578 mg/L, and 0.322 mg/L, with relative standard deviations(RSDs) of 5.4%, 6.8%, and 8.5%, respectively. This indicates that the solidliquid-solid conversion mechanism using the GO adsorption layer can effectively enrich metal elements in soil, enhancing the spectral signal and stability of LIBS in detecting trace elements while significantly lowering the detection limits. This approach provides a new strategy for the accurate measurement of trace elements in soil samples using LIBS.

【Abstract】 To enhance the spectral signal intensity and stability of laser-induced breakdown spectroscopy(LIBS) for detecting trace elements in soil, a graphene oxide(GO) adsorption conversion mechanism is proposed. The experiment compared the enhancement effects of three substrates—glass plate, graphite plate, and GO adsorption layer—on metal elements such as Ni,Sr, and Ba in soil. The surface enhancement mechanisms of different substrates were analyzed from three perspectives: ablation morphology, thermal conductivity, and adsorption energy. It was concluded that a smooth substrate surface facilitates uniform solute distribution, and an increase in the thermal conductivity of the substrate material enhances the signal and enlarges the plasma morphology. The optimal soil-to-nitric acid ratio in the solid-liquid-solid conversion mechanism was determined to be 1:1, with a nitric acid concentration of 1 mol/L. The GO adsorption layer substrate demonstrated the best enhancement effect, with spectral intensities of Ni, Sr, and Ba enhanced by 3.4, 1.8, and 8.3 times, respectively, compared to the glass. The limits of detection(LOD) reached 3.148 mg/L, 0.578 mg/L, and 0.322 mg/L, with relative standard deviations(RSDs) of 5.4%, 6.8%, and 8.5%, respectively. This indicates that the solidliquid-solid conversion mechanism using the GO adsorption layer can effectively enrich metal elements in soil, enhancing the spectral signal and stability of LIBS in detecting trace elements while significantly lowering the detection limits. This approach provides a new strategy for the accurate measurement of trace elements in soil samples using LIBS.

【基金】 supported by National Natural Science Foundation of China (No. 62173122);the Key Projects of Hebei Natural Science Foundation (No. F2021201031);the Key Research and Development Project of Universities in Hebei Province (No. 241790143A)
  • 【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 ,2026年04期
  • 【分类号】X833;O657.38
  • 【下载频次】2
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