Determination of lanthanum oxide,praseodymium oxide and yttrium oxide in cerium-zirconium composite oxide by inductively coupled plasma atomic emission spectrometry
WANG Lijuan1,2,3, REN Xudong1,2,3, ZHAO Tuo*1,2, LIU Qin1,2,3, WU Dan1,2,3
1. National Key Laboratory of Baiyunobo Rare Earth Resource Researches and Comprehensive Utilization, Baotou 014030,China; 2. Baotou Research Institute of Rare Earths,Baotou 014030,China; 3. Ruike National Engineering Research Centre of Rare Earth Metallurgy and Functional Materials,Baotou 014030,China
Abstract:Cerium-zirconium composite oxides are often used as rare earth co-catalysts. Lanthanum (La), praseodymium (Pr), yttrium (Y) and other rare earth elements contained in cerium-zirconium composite oxides can improve the catalytic performance and comprehensive performance. In experiments, the samples were decomposed with nitric acid, hydrogen peroxide and hydrofluoric acid followed by sulfuric acid smoke. La 333.749 nm, Pr 410.072 nm and Y 377.433 nm were selected as the analytical lines. The contents of La2O3, Pr6O11 and Y2O3 in cerium-zirconium composite oxides were determined by inductively coupled plasma atomic emission spectrometry (ICP-AES) in hydrochloric acid medium. The experimental results showed that Ce and Zr had no spectral interference with La, Pr and Y under the selected characteristic spectra. When the mass concentration of Ce and Zr in solution was less than 100 μg/mL, the matrix effect could be ignored. The coexisting elements in solution such as Fe, Ca, Zn, Al and Na had no influence on the determination. The mass concentration of La, Pr and Y in range of 1.00-20.00 μg/mL showed linear relationship with the corresponding emission intensity, and the linear correlation coefficients were not less than 0.999 9. The proposed method was applied for the determination of La2O3, Pr6O11 and Y2O3 in cerium-zirconium composite oxide, and the relative standard deviations (RSD, n=11) of the results were less than 2%. X-ray fluorescence spectrometry (XRF) was used to compare with the proposed method, and the results were consistent.
[1] 龙志奇,崔梅生,朱兆武,等.铈锆复合氧化物的研究、应用与展望[J].稀有金属快报,2007(1):40-44. LONG Zhiqi,CUI Meisheng,ZHU Zhaowu,et al.Progress for application and preparation of ceria-zirconia composite and prospectsfor the markets[J].Rare Metals Letters,2007(1):40-44. [2] 林建送. 汽油车排气净化三效催化剂关键材料催化性能研究[D].杭州:浙江大学,2018. [3] 张宏,白英芝,王海彦.含锆复合氧化物催化剂的制备方法研究进展[J].辽宁石油化工大学学报,2019,39(1):35-38. ZHANG Hong,BAI Yingzhi,WANG Haiyan.Progress in preparation of zirconium-containing composite oxide catalyst[J]. Journal of Liaoning Petrochemical University,2019,39(1):35-38. [4] 王家明,蒋颉,岳军,等.稀土元素改性kappa相铈锆复合氧化物的性能研究[J].金属功能材料,2019,26(5):53-59. WANG Jiaming,JIANG Jie,YUE Jun,et al.Research on properties of rare earth elements modified Ceo2-ZrO2 solution with kappa phase[J].Metallic Functional Materials,2019,26(5):53-59. [5] 卢小林,刘子魁,马素芳,等.Dy和Y掺杂改性对CuO/CeZrO2催化剂在富氢气氛中CO优先氧化催化性能的影响[J].燃料化学学报,2016,44(7):870-875. LU Xiaolin,LIU Zikui,MA Sufang,et al.Effect of Dy and Y doping on the catalytic performance of CuO/CeZrO2 for the preferential oxidation of CO in H2-rich stream[J].Journal of Fuel Chemistry and Technology,2016,44(7):870-875. [6] 中华人民共和国工业和信息化部.XB/T 518—2021铈锆复合氧化物[S].北京:冶金工业出版社,2021. [7] 杜桂荣, 刘扬, 杜凯华,等.草酸沉淀-等离子体发射光谱法测定稀土精矿中的REO、ThO2和ReO[J].湿法冶金,2023,42(1):101-106. DU Guirong,LIU Yang,DU Kaihua,et al.Determination of REO,ThO2 and ReO in rare earth concentrates by oxalic acid precipitation-plasma emission spectrometry[J].Hydrometallurgy of China,2023,42(1):101-106. [8] 高立红,邢嵘嵘,朱悦然,等.EDTA滴定法测定稀土铁合金中稀土总量[J].金属功能材料,2022,29(4):98-102. GAO Lihong,XING Rongrong,ZHU Yueran,et al.Total amount of rare earth in rare earth ferroalloy was determined by EDTA titration[J].Metallic Functional Materials,2022,29(4):98-102. [9] 席姗姗,卜兆杰,高翔宇, 等.ICP-AES法测定铸铁及低合金钢中4种轻稀土元素[J].冶金与材料(Metallurgy and Materials),2023,43(8):61-63. [10] 陆海川, 袁新, 夏祥, 等.微敞开体系消解-电感耦合等离子体质谱法测定地球化学样品中稀土元素[J].冶金分析,2024,44(2):30-39. LU Haichuan,YUAN Xin,XIA Xiang,et al.Determination of rare earth elements in geochemical samples by inductively coupled plasma mass spectrometry after digestion in micro-open system[J].Metalluryical Analysis,2024,44(2):30-39. [11] 卢才兴,李志文,王彬,等.熔融制样-X射线荧光光谱法测定铈锆固溶体中的元素成分[J].工业催化,2019,27(9):78-82. LU Caixing,LI Zhiwen,WANG Bin,et al.Determination of elemental components in cerium-zirconium solid solution by melt sample preparation-X-ray fluorescence spectrometry[J].Industrial Catalysis,2019,27(9):78-82.