Abstract:During the determination of Cu, Zn and Ba in nickel-based superalloy by inductively coupled plasma mass spectrometry (ICP-MS), the polyatomic ions formed by alloying elements (Ti, Cr and Mo) such as 47Ti16O+, 50Cr16O+, 98Mo40Ar+ will interfere with the determination. The samples were digested with aqua regia-hydrofluoric acid in experiments. 63Cu, 66Zn and 138Ba were selected as the analytical isotopes. Helium (He) collision reaction cell mode was adopted. The calibration curve was prepared by matrix matching method, and the influence of matrix effect and instrument signal drift was corrected by Sc and Rh mixed internal standards. Consequently, the determination of Cu, Zn and Ba in nickel-based superalloy by ICP-MS was realized. The effects of Ti, Cr and Mo on the determination of Cu, Zn and Ba were investigated in both standard mode and He collision reaction cell mode. The results showed that the interference caused by 47Ti16O+, 50Cr16O+ and 98Mo40Ar+ could not be ignored in standard mode, while it could be successfully overcome in the He collision reaction cell mode. The signal intensity of Cu in 1 000 μg/mL Ti solution, Zn in 1 000 μg/mL Cr solution and Ba in 1 000 μg/mL Mo solution were collected in standard mode and He collision reaction cell mode, respectively. The results showed that the background equivalent concentration (BEC) of three testing elements in the He collision reaction cell mode was at least one order of magnitude lower than that in the standard mode. Under the optimized experimental conditions, the linear correlation coefficients of the calibration curves were greater than 0.999 0. The limits of detection and limits of quantification of the method were 0.074-0.131 μg/g and 0.25-0.43 μg/g, respectively. The established method was used to determine Cu, Zn and Ba in certified reference materials and actual samples of nickel-based superalloy. Moreover, the recovery tests were carried out. The results showed that the found results of Cu and Zn were consistent with the certified values. The relative standard deviations (RSD, n=7) of the determination results of three elements were less than 4.0%. The spiked recoveries were between 93% and 105%.
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