| Literature DB >> 26421013 |
Xiaohong Xiong1, Tao Jiang1, Wenhao Qi1, Jun Zuo1, Meiling Yang1, Qiang Fei2, Saijin Xiao1, Aimin Yu2, Zhiqiang Zhu1, Huanwen Chen1.
Abstract
A sensitive mass spectrometric analysis method based on the microwave plasma technique is developed for the fast detection of trace rare earth elements (REEs) in aqueous solution. The plasma was produced from a microwave plasma torch (MPT) under atmospheric pressure and was used as ambient ion source of a linear ion trap mass spectrometer (LTQ). Water samples were directly pneumatically nebulized to flow into the plasma through the central tube of MPT. For some REEs, the generated composite ions were detected in both positive and negative ion modes and further characterized in tandem mass spectrometry. Under the optimized conditions, the limit of detection (LOD) was at the level 0.1 ng/mL using MS(2) procedure in negative mode. A single REE analysis can be completed within 2~3 minutes with the relative standard deviation ranging between 2.4% and 21.2% (six repeated measurements) for the 5 experimental runs. Moreover, the recovery rates of these REEs are between the range of 97.6%-122.1%. Two real samples have also been analyzed, including well and orange juice. These experimental data demonstrated that this method is a useful tool for the field analysis of REEs in water and can be used as an alternative supplement of ICP-MS.Entities:
Year: 2015 PMID: 26421013 PMCID: PMC4572474 DOI: 10.1155/2015/156509
Source DB: PubMed Journal: Int J Anal Chem ISSN: 1687-8760 Impact factor: 1.885
Figure 1The schematic illustration of the experimental setup including the drying system and MPT.
Figure 2(a) The MPT mass spectrum of lanthanum collected on the MPT-LTQ-MS in positive mode. A 10 mg/L lanthanum standard solution was used. (b) MS mass spectra of the precursor ions m/z 317, n up to 6. The subprecursor ions series are 317 → 299 → 281 → 263 → 233 → 155, corresponding to the dissociation fragment series H2O, H2O, H2O, NO, and NO4. (c) The MPT mass spectrum of La collected on a MPT quadrupole mass filer mass spectrometer.
Figure 3(a) The MPT mass spectrum of neodymium collected on the MPT-LTQ-MS in positive mode. A 10 mg/L neodymium standard solution was used. (b) The MS2 to MS5 spectra of the ions of m/z 320, 322, and 324.
Characteristic peaks of REEs in MPT-MS.
| REEs | Natural isotopes (%) | Dominant peak band in MPT-MS ( | Normalized intensity of corresponding peaks | Assignment | |||
|---|---|---|---|---|---|---|---|
| +modea | −modeb | +mode | −mode | +mode | −mode | ||
| Y | 89Y (100) | 267 | 337 | 1 | 1 | [Y(NO3)2·3H2O]+ | Y(NO3)4 − |
|
| |||||||
| La | 138La (0.09) | — | — | — | — | [La(NO3)2·3H2O]+ | La(NO3)4 − |
| 139La (99.91) | 317 | 387 | 1 | 1 | |||
|
| |||||||
| Ce | 136Ce (0.19) | — | — | — | — | [Ce(NO3)2·3H2O]+ | Ce(NO3)4 − |
| 138Ce (0.25) | — | — | — | — | |||
| 140Ce (88.48) | 318 | 388 | 1 | 1 | |||
| 142Ce (11.08) | 320 | 390 | 0.112 | 0.1205 | |||
|
| |||||||
| Pr | 141Pr (100) | 337 | 389 | 1 | 1 | [Pr(NO3)2·4H2O]+ | Pr(NO3)4 − |
|
| |||||||
| Nd | 142Nd (27.13) | 320 | 390 | 1 | 1 | [Nd(NO3)2·3H2O]+ | Nd(NO3)4 − |
| 143Nd (12.18) | 321 | 391 | 0.419 | 0.458 | |||
| 144Nd (23.80) | 322 | 392 | 0.8401 | 0.8714 | |||
| 145Nd (8.30) | 323 | 393 | 0.3002 | 0.325 | |||
| 146Nd (17.19) | 324 | 394 | 0.624 | 0.638 | |||
| 148Nd (5.76) | 326 | 396 | 0.181 | 0.2247 | |||
| 150Nd (5.64) | 328 | 398 | 0.1712 | 0.217 | |||
|
| |||||||
| Sm | 144Sm (3.1) | 322 | 392 | 0.138 | 0.1253 | [Sm(NO3)2·3H2O]+ | Sm(NO3)4 − |
| 147Sm (15.0) | 325 | 395 | 0.5887 | 0.5767 | |||
| 148Sm (11.3) | 326 | 396 | 0.4112 | 0.4368 | |||
| 149Sm (13.8) | 327 | 397 | 0.501 | 0.5395 | |||
| 150Sm (7.4) | 328 | 398 | 0.2562 | 0.2911 | |||
| 152Sm (26.7) | 330 | 400 | 1 | 1 | |||
| 154Sm (22.7) | 332 | 402 | 0.8472 | 0.8318 | |||
|
| |||||||
| Eu | 151Eu (47.8) | 329 | 399 | 0.916 | 0.9148 | [Eu(NO3)2·3H2O] + | Eu(NO3)4 − |
| 153Eu (52.2) | 331 | 401 | 1 | 1 | |||
a10 mg/L standard solutions were used.
b0.5 mg/L standard solutions were used.
Figure 4The MPT mass spectrum of cerium collected on the MPT-LTQ-MS in negative mode. A 10 mg/L cerium standard solution was used.
Figure 5MPT-MS mass spectra of precursor anions of m/z 388 and 390 (n up to 4).
Quantitative indexes summarized of MPT-MS2 method for REEs in pure water and analysis results for some real samples.
| REEs | Linear equation |
| Linear range (ng/mL) | LOD (ng/mL) | RSD ( | Recovery rate | Well water (ng/mL) | Orange juice (ng/mL) |
|---|---|---|---|---|---|---|---|---|
| Y |
| 0.999 | 1–100 | 0.574 | 3–11 | 103.4a | 31.41 | 135.45 |
| La |
| 0.998 | 1–250 | 0.2 | 7.8–14.1 | 117.3b | 0.759 | 20.33 |
| Ce |
| 0.998 | 1–250 | 0.29 | 6.3–9.4 | 122.1b | 1.365 | 3 |
| Pr |
| 0.999 | 1–100 | 0.04 | 2.4–10.1 | 100.5b | 0.47 | 0.77 |
| Nd |
| 0.998 | 1–250 | 0.114 | 3.6–14.7 | 113.7b | 6.38 | 1.94 |
| Sm |
| 0.998 | 1–500 | 0.388 | 9.4–21.2 | 109.7b | 0.98 | 396.27 |
| Eu |
| 0.999 | 1–250 | 0.369 | 3–8.1 | 97.6b | — | 0.725 |
a7.5 ng/mL.
b5 ng/mL.