Determination of fourteen rare earth elements in iron-chromium-aluminum alloy by inductively coupled plasma mass spectrometry
ZHANG Ruilin, LIANG Minjian, ZHAO Yanbing, FAN Xin
State Key Laboratory of Advanced Stainless Steel Materials, Taiyuan Iron and Steel (Group) Co.,Ltd., Technique Center of Shanxi Taigang Stainless Steel Co.,Ltd.,Taiyuan 030003, China
Abstract:Iron-chromium-aluminum alloy (Fe-Cr-Al) is an excellent electric heating alloy. Certain amounts of rare earth elements are often added during smelting to improve the use performance of products. The sample was dissolved with hydrochloric acid (1+1). The determination method of fourteen rare earth elements by inductively coupled plasma mass spectrometry (ICP-MS) was established. The relationship of sampling depth to mass spectrometric intensity, oxide yield and divalent ion yield was studied. The appropriate sampling depth range was 13.5-14.5 mm. 139La, 140Ce, 141Pr, 146Nb, 147Sm, 153Eu, 157Gd, 159Tb, 163Dy, 165Ho, 166Er, 169Tm, 172Yb and 175Lu were selected as the measuring isotopes to avoid the mass spectrum interference. Meanwhile, the interference coefficient correction method was used to correct the interference of 17OH140Ce to 157Gd. The influence of instrument drift or matrix effect was eliminated by reducing the sampling amount, dilution and double internal standard calibration (103Rh and 185Re). Under the optimized conditions, the linear correlation coefficients of calibration curves were all above 0.999 9. The limits of detection (LOD) of testing isotopes were in range of 0.002-0.083 μg/g, and the limits of quantification (LOQ) were in range of 0.01-0.42 μg/g. The experimental method was applied for the determination of La, Ce, Pr, Nb, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu in three Fe-Cr-Al alloy samples. The relative standard deviations (RSD, n=10) of determination results were between 0.48% and 9.7%, and the spiked recoveries were between 93% and 108%. The method of inductively coupled plasma atomic emission spectrometry (ICP-AES) was used for comparison study. The determination results of La and Ce by two methods were basically consistent.
李彦红,何艳,魏福祥.稀土镁硅铁合金中稀土总量,硅,镁的联合测定[J].河北科技大学学报,2004,25(3):70-71.LI Yanhong,HE Yan,WEI Fuxiang.The content determination for magnesium,silicon and rare-earth amount of the bailing-Mg-ferrosilicon-rare-earth alloy[J]. Journal of Hebei University of Science and Technology,2004,25(3):70-71.
[3]
魏春艳,丁美英. ICP-AES法测定钢中微量La、Ce、Pr、Nd和Sm[J].稀土,2004,25(5):24-32.WEI Chunyan,DING Meiying.Simultaneous determination of micro La, Ce, Pr, Nd, Sm in steel by ICP-AES[J].Rare Earth,2004,25 (5):24-32.
[4]
刘淑君,刘卫,吴丽琨,等.微波消解-ICP-AES测定钴基高温合金中的稀土成分[J].矿产综合利用,2013,10(5):47-49.LIU Shujun,LIU Wei,WU Likun,et al.Determination of rare-earth components in cobalt-base superalloy by ICP-AES with microwave digestion[J].Multipurpose Utilization of Mineral Resources,2013,10(5):47-49.
[5]
杨军红,李佗,翟通德,等.电感耦合等离子体原子发射光谱法测定铁铬铝纤维丝中钇[J].冶金分析,2016,36(2):75-78.YANG Junhong,LI Tuo,ZHAI Tongde,et al.Determination of yttrium in iron-chromium-aluminum fiber by inductively coupled plasma atomic emission spectrometry [J].Metallurgical Analysis,2016,36(2):75-78
[6]
陈绯宇,张少夫,温世杰.电感耦合等离子体原子发射光谱法测定钇铁合金中14种稀土杂质元素[J].有色金属科学与工程,2017,8(6):121-124.CHEN Feiyu,ZHANG Shaofu,WEN Shijie.Determination of 14 rare earth elements in yttrium-iron alloy by inductively coupled plasma atomic emission spectrometry[J].Nonferrous Metals Science and Engineering,2017,8(6):121-124.
[7]
褚连青,李健,毛新齐.电感耦合等离子体原子发射光谱法测定钛合金中铈饵钆镧钕钇[J].冶金分析,2017,37(5):45-48.CHU Lianqing,LI Jian,MAO Xinqi.Determination of cerium, gadolinium, lanthanum, neodymium and yttrium in titanium alloys by inductively coupled plasma atomic emission spectrometry[J].Metallurgical Analysis,2017,37(5):45-48.
[8]
徐鸿志,陈志伟,刘东武.电感耦合等离子体质谱法测定稀土镁球墨铸铁中的稀土元素[J].化学试剂,2010,32(7),617-619.XU Hongzhi,CHEN Zhiwei,LIU Dongwu.Determination of rare earths in rare-earth-magnesium nodular cast iron inductively coupled plasma mass spectrometry[J].Chemical Reagents,2010,32(7),617-619.
[9]
张翼明,周凯红,张立锋.ICP-MS法测定钆镁合金中稀土杂质[J].稀土,2013,34(5):63-68.ZHANG Yiming, ZHOU Kaihong,ZHANG Lifeng.Determination of rare earth impurities in Ga-Mg alloy by ICP-MS [J].Rare Earth,2013,34(5):63-68.
[10]
张立锋,张秀艳,张翼明,等.电感耦合等离子体质谱法测定镧镁合金中稀土杂质[J].冶金分析,2014,34(6):33-37.ZHANG Lifeng,ZHANG Xiuyan,ZHANG Yiming,et al.Determination of rare earth impurities in lanthanum-magnesium alloy by inductively coupled plasma mass spectrometry[J].Metallurgical Analysis,2014,34(6):33-37.
[11]
唐碧玉,施意华,邱丽.电感耦合等离子体质谱法测定钇铁合金中14种稀土杂质[J].冶金分析,2018,38(2):25-31.TANG Biyu,SHI Yihua,QIU Li.Determination of 14 rare earth impurities in yttrium-iron alloy by inductively coupled plasma mass spectrometry[J].Metallurgical Analysis,2018,38(2):25-31.
[12]
蔡学建,陈锋,杨玲,等.内标法在ICP-MS中的应用[J].广州化工,2015,43(4):156-157,204.CAI Xuejian,CHEN Feng,YANG Ling,et al.Application of internal standard method in ICP-MS[J].Guangzhou Chemical Industry,2015,43(4): 156-157,204.
[13]
熊英,吴赫,王龙山.电感耦合等离子体质谱法同时测定铜铅锌矿石中微量元素镓铟铊钨钼的干扰消除[J].岩矿测试,2011,30(1):7-11.XIONG Ying,WU He,WANG Longshan.Elimination of interference in the simultaneous determination of trace Ga,In,Ta,W and Mo in copper lead and zinc ores by inductively coupled plasma-mass spectrometry[J].Rock and Mineral Analysis,2011,30(1):7-11.