Determination of gold, platinum and palladium in porphyry copper ore by inductively coupled plasma mass spectrometry with lead fire assay
SHAO Kun1,2,3, ZHU Zhimin1,2,3, FAN Jianxiong1,2,3, LI Gang1,2,3
1. Institute of Multipurpose Utilization of Mineral Resources, Chinese Academy of Geological Sciences, Chengdu 610041, China; 2. Innovation Center for Comprehensive Utilization Engineering Technology of Strategic Mineral, Ministry of Natural Resources, Chengdu 610041, China; 3. Technical Research Center for Comprehensive Utilization of Metal and Mineral Resources,China Geological Survey, Chengdu 610041, China
Abstract:The accurate determination of Au, Pt and Pd in porphyry copper ore is of great significance to improve its comprehensive utilization level. However, the contents of associated precious metals in porphyry copper ore are low, and the matrix is complex, leading to high difficulty in determination. A new separation and preconcentration method including porcelain disc melting and two-step cupellation was proposed with lead as the trapping agent. 197Au,195Pt and 106Pd were selected as the isotopes for determination. 115In was used as internal standard for the correction of 106Pd, and 185Re was used as internal standard for the correction of 197Au and 195Pt. Consequently, a method for determination of Au, Pt and Pd in porphyry copper ore by inductively coupled plasma mass spectrometry (ICP-MS) with lead fire assay preconcentration was established. Through the tests of assay ingredient composition, the assay ingredient was determined to be composed of lead oxide, boric acid, sodium carbonate and flour with the mass ratio of 5∶2∶2∶1. The sample mass, ingredient mass, porcelain disc volume and melting temperature were optimized as follows: the sample mass was 5 g, the ingredients mass was 50 g, the porcelain disc volume was 40 mL, and the melting temperature was 1 000 ℃. The cupellation test showed that the first cupellation (950 ℃) was directly conducted in porcelain disc by opening the furnace door to remove partial lead. After the lead button was covered with the slag, the lead button was taken out and transferred to magnesia cupel for further cupellation (920 ℃) to remove the residual partial lead. Thus, the satisfactory silver granule was obtained. The cupellation interference test showed that, although some elements, which were easily reduced or dissolved in lead, such as Cu, Ni, Bi, As, Sb, S, Se and Te, would also enter lead button, their interference with the cupellation process could be ignored. The mass spectrometry interference test showed that the interference of residual Cu, Ni, Se and Ag in test solution could be also ignored. The correlation coefficients of calibration curves for all elements were higher than 0.999. The limit of detection for Au, Pt and Pd was 0.10 ng/g, 0.05 ng/g, and 0.08 ng/g, respectively. The limits of quantification for Au, Pt and Pd was 0.33 ng/g, 0.17 ng/g, and 0.27 ng/g, respectively. The contents of Au, Pt and Pd in porphyry copper ore samples were determined according to the experimental method. The relative standard deviations (RSD, n=7) of determination results were between 2.7% and 9.5%. The spiked recoveries were between 96% and 107%. The results were basically consistent with those obtained by the national standard of GB/T 20899.1-2019 for determination of Au by flame atomic absorption spectrometry with fire assay, and the industrial standard of DZ/T 0279.31-2016 for determination of Pt and Pd by inductively coupled plasma mass spectrometry with fire assay.
邵坤, 朱志敏, 范建雄, 李刚. 铅试金-电感耦合等离子体质谱法测定斑岩铜矿中金铂钯[J]. 冶金分析, 2022, 42(12): 36-44.
SHAO Kun, ZHU Zhimin, FAN Jianxiong, LI Gang. Determination of gold, platinum and palladium in porphyry copper ore by inductively coupled plasma mass spectrometry with lead fire assay. , 2022, 42(12): 36-44.
[1] 张寿庭,赵鹏大.斑岩型矿床-非传统矿产资源研究的重要对象[J].地球科学(中国地质大学学报),2011,36 (2): 247-254. ZHANG Shouting,ZHAO Pengda.Porphyry ore deposits:important study subjects of nontrational mineral resources[J].Earth Science(Journal of China University of Geosciences),2011,36(2):247-254. [2] 吴维虎,陈明勇,舒华伟,等.云南普朗斑岩型铜矿伴生铂族铼元素调查及资源潜力分析[J].矿产与地质,2021,35(4):610-616. WU Weihu,CHEN Mingyong,SHU Huawei,et al.Research and analysis of the potential resources of associated platinum group and rhenium elaments in Pulang porphyry copper deposet,Yunnan[J].Mineral Resources and Geology,2021,35(4):610-616. [3] 刘申态,黄明亮.玉龙斑岩Cu-Mo矿床精矿中Au、Pd、Pt富集特征[J].矿物岩石地球化学通报,2022,41(3):540-546. LIU Shentai,HUANG Mingliang.Enrichment characteristics of Au, Pd and Pt in floatation concentrates of the Yulong porphyry Cu-Mo mine:a reconnaissance study[J].Bulletin of Mineralogy, Petrology and Geochemistry,2022,41(3):540-546. [4] 岩石矿物分析编委会.岩石矿物分析:第3分册[M].4版.北京:地质出版社,2011:614-684. [5] 陈强,景毅,吴焕波,等.极谱法同时/连续测定贵金属元素的研究进展[J].黄金科学与技术,2014,22(3):54-59. CHEN Qiang,JING Yi,WU Huanbo,et al.Summerizing on successive and simultaneous determination in noble metal elements analysis using polarographic method[J].Gold Science and Technology,2014,22(3):54-59. [6] 李晓林,M Ebihara.铂族元素中子活化分析的微型镍锍试金预富集方法研究[J].岩矿测试,2005,24(3):167-170. LI Xiaolin,M Ebihara.Study on micro fire assay with nickel sulphide for determination of platinum-group elements by neutron activation analysis[J].Rock and Mineral Analysis,2005,24(3):167-170. [7] 王楠,孙旭东,霍地.小火试金分离富集火焰原子吸收光谱法测定矿石样品中的金[J].光谱学与光谱分析,2019,39(8):2614-2617. WANG Nan, SUN Xudong,HUO Di.Determination of gold in mineral samples by flame atomic absorption spectrometry after the separation and preconcentration with small fire assay[J].Spectroscopy and Spectral Analysis,2019,39(8):2614-2617. [8] 吕深山,王玉复,宋志军,等.火焰原子吸收分光光度法测定铂钯铱铑[J].贵金属,1987,4(8):32-39. LÜ Shenshan,WANG Yufu,SONG Zhijun,et al.Determination of platinum,palladium,iridium and rhodium by flame atomic absorption spectrophotometry[J].Precious Metals,1987,4(8):32-39. [9] WANG N,SUN X D,HUO D,et al.Sensitive determination of platinum and palladium in mineral samples by flame atomic absorption spectrometry(AAS) with mixed releasing agent after the separation and preconcentration with small fire assay[J].Journal of Nanoelectronics and Optoelectronics,2021,16(2):157-162. [10] 孙启亮,毛香菊,郭晓瑞,等.铅试金富集-高分辨率连续光源石墨炉原子吸收光谱法测定地球化学样品中痕量金铂钯[J].冶金分析,2021,41(7):10-16. SUN Qiliang,MAO Xinagju,GUO Xiaorui,et al.Determination of trace gold,platinum and palladium in geological samples by lead fire assay pre-concentration high resolution continuum source graphite furnace atomic absorption spectrometry[J].Metallurgical Analysis,2021,41(7):10-16. [11] 漆亮,黄小文.地质样品铂族元素及Re-Os同位素分析进展[J].矿物岩石地球化学通报,2013,32(2):171-189. QI Liang,HUANG Xiaowen.A review on platinum-group elements and Re-Os isotopic analyses of geological samples[J].Bulletin of Mineralogy,Petrology and Geochemistry,2013,32(2):171-189. [12] 邵坤,范建雄,李刚,等.铅试金-电感耦合等离子体原子发射光谱法测定高镍锍中金铂钯[J].冶金分析,2021,41(10):49-56. SHAO Kun,FAN Jianxiong,LI Gang,et al.Determination of gold, platinum and palladium in high nickel matte by inductively coupled plasma atomic emission spectrometry with lead fire assay[J].Metallurgical Analysis,2021,41(10):49-56. [13] 刘芳美.火试金重量法结合电感耦合等离子体原子发射光谱法测定分金渣中金银铂钯[J].冶金分析,2022,42(3):26-32. LIU Fangmei.Determination of gold,silver,platinum and palladium in gold residue by fire assay gravimetric method combined with inductively coupled plasma atomic emission spectrometry[J].Metallurgical Analysis,2022,42(3):26-32. [14] Ni W S,Mao X J,Zhang H L.Determination of ultra-trace platinum, palladium, ruthenium, rhodium, and iridium in rocks and minerals by inductively coupled-plasma mass spectrometry following nickel sulfide fire assay preconcentration and open mixed acid digestion[J].Analytical Letters,2019,52(11):1699-1710. [15] 郭冬发,李金英,李伯平,等.电感耦合等离子体质谱分析方法的重要进展(2005-2016年)[J].质谱学报,2017,38(5):599-610. GUO Dongfa,LI Jinying,LI Boping,et al.Major advances in inductively coupled plasma mass spectrometry(2005-2016)[J].Journal of Chinese Mass Spectrometry Society,2017,38(5):599-610. [16] Grebneva-Balyuk O N,Kubrakova I V.Determination of platinum group elements in geological samples by inductively coupled plasma mass spectrometry:possibilities and limitations[J].Journal of Analytical Chemistry,2020,75(3):275-285. [17] 杨生鸿,张明,辛连君.电感耦合等离子体质谱(ICP-MS)法测定碳质板岩样品中铂族元素[J].中国无机分析化学,2019,9(2):42-45. YANG Shenghong,ZHANG Ming,XIN Lianjun.Determination of platinum group elements in graphite rock samples by ICP-MS[J].Chinese Journal of Inorganic Analytical Chemistry,2019,9(2):42-45. [18] 蔡树型,黄超.贵金属分析[M].北京:冶金工业出版社,1984:38-122. [19] 邵坤,范建雄,杨常艳.锑试金-电感耦合等离子体质谱法测定钒钛磁铁矿原矿中铂族元素[J].冶金分析,2018,38(5):18-24. SHAO Kun,FAN Jianxiong,YANG Changyan.Determination of platinum group elements in vanadium-titanium magnetite raw ore by inductively coupled plasma mass spectrometry with antimony fire assay[J].Metallurgical Analysis,2018,38(5):18-24. [20] 王毅民,王晓红,高玉淑,等.用于铂族元素分析的中外地质标准物质[J].地质通报,2009,28(10):1486-1498. WANG Yimin,WANG Xiaohong,GAO Yushu,et al.World geochemical reference materials used for the analysis of PGEs[J].Geological Bulletin of China,2009,28(10):1486-1498.