浏览全部资源
扫码关注微信
1.广东省科学院测试分析研究所(中国广州分析测试中心),广东省化学测量与应急检测技术重点实验室,广东省水环境污染在线监测工程技术研究中心,广东 广州 510070
2.兰州理工大学 石油化工学院,甘肃 兰州 730000
3.澳门科技大学 环境科学与工程系,中国 澳门特别行政区 999078
郭鹏然,研究员,研究方向:环境新污染物精准识别和源解析研究,E-mail:prguo@fenxi.com.cn
纸质出版日期:2024-08-15,
收稿日期:2024-05-05,
修回日期:2024-06-01,
移动端阅览
淳杰,张凯,张婷,梁维新,宋玉梅,郭鹏然.复杂基质样品中金属纳米颗粒的SP-ICP-MS分析方法及应用研究进展[J].分析测试学报,2024,43(08):1144-1153.
CHUN Jie,ZHANG Kai,ZHANG Ting,LIANG Wei-xin,SONG Yu-mei,GUO Peng-ran.Research Progress on SP-ICP-MS Analysis Method and Application of Metal Nanoparticles in Complex Matrix Samples[J].Journal of Instrumental Analysis,2024,43(08):1144-1153.
淳杰,张凯,张婷,梁维新,宋玉梅,郭鹏然.复杂基质样品中金属纳米颗粒的SP-ICP-MS分析方法及应用研究进展[J].分析测试学报,2024,43(08):1144-1153. DOI: 10.12452/j.fxcsxb.24050511.
CHUN Jie,ZHANG Kai,ZHANG Ting,LIANG Wei-xin,SONG Yu-mei,GUO Peng-ran.Research Progress on SP-ICP-MS Analysis Method and Application of Metal Nanoparticles in Complex Matrix Samples[J].Journal of Instrumental Analysis,2024,43(08):1144-1153. DOI: 10.12452/j.fxcsxb.24050511.
近年来,纳米技术和纳米材料的大规模应用导致大量的金属纳米颗粒(MNPs)释放并积累到环境中。由于独特的物理化学特性及生物毒性,环境中的MNPs严重威胁到生态环境及人类健康。因此,对复杂基质样品(土壤、沉积物、水体、生物)中的MNPs进行表征具有重要意义。在已报道的各种表征MNPs的技术中,单颗粒电感耦合等离子体质谱(SP-ICP-MS)在分离、鉴定和定量复杂基质样品中的MNPs方面发挥了重要作用。该文主要介绍了SP-ICP-MS分析技术的原理及其复杂基质的样品前处理方法,评述了近年来SP-ICP-MS在环境科学、生命科学、医学MNPs分析应用中的新进展,并提出了SP-ICP-MS技术未来研究和应用的方向。
In recent years,the large application of nanotechnology and nanomaterials has led to the release and accumulation of mass metal nanoparticles(MNPs) into the environment. Due to the unique physical and chemical characteristics and biological toxicity of MNPs,MNPs in the environment pose a serious threaten to the ecological environment and human health. Therefore,it is of great significance to characterize metal nanoparticles in complex matrix samples(soil,sediment,water,organisms). Among the reported techniques for the characterization of MNPs,single particle inductively coupled plasma mass spectrometry(SP-ICP-MS) plays an important role in the separation,identification and quantification of MNPs in complex matrix samples. This review mainly introduces the principle of SP-ICP-MS analysis technology and the pretreatment methods of complex matrix samples,reviews the new progress of its application in MNPs analysis in environment science,life science and medicine in recent years,and puts forward the direction of future research and application of SP-ICP-MS technology.
金属纳米颗粒物单颗粒电感耦合等离子体质谱(SP-ICP-MS)表征技术环境介质生物样品
metal nanoparticles(MNPs)single particle ICP-MS(SP-ICP-MS)characterization techniqueenvironmental mediumbiological sample
Kumar K H,Venkatesh N,Bhowmik H,Kuila A. Biomed. J. Sci. & Tech. Res.,2018,4:3765-3775.
Lead J R,Batley G E,Alvarez P J J,Croteau M,Handy R D,McLaughlin M J,Judy J D,Schirmer K. Environ. Toxicol. Chem.,2018,37:2029-2063.
Azimzada A,Jreije I,Hadioui M,Shaw P,Farner J M,Wilkinson K J. Environ. Sci. Technol.,2021,55:9836-9844.
Vance M E,Kuiken T,Vejerano E P,McGinnis S P,Hochella M F,Rejeski D,Hull M S. Beilstein J. Nanotechnol.,2015,6:1769-1780.
Shi R X,Zhao Y P,Guan P,Liang W X,Xun H. Chin. J. Anal. Chem.(史瑞新,赵艳萍,管鹏,梁维新,荀合. 分析化学),2020,48:523-529.
Castiglione R M,Giorgetti L,Geri C,Cremonini R. J. Nano Res.,2011,13:2443-2449.
Lin W S,Huang Y W,Zhou X D,Ma Y F. Int. J. Toxicol.,2006,25:451-457.
Kerin H,Nagaraj K,Kamalesu S. Mater. Today:Proc.,2023,25:1-8.
Sinha R,Karan R,Sinha A,Khare S K. Bioresour. Technol.,2011,102:1516-1520.
Lee S W,Kim S M,Choi J. Environ. Toxicol. Phar.,2009,28:86-91.
Wu Y,Zhou Q F,Li H C,Liu W,Wang T,Jiang G B. Aquat. Toxicol.,2010,100:160-167.
Geiser M,Rothen-Rutishauser B,Kapp N,Schürch S,Kreyling W,Schulz H,Semmler M,Hof I V,Heyder J,Gehr P. Environ. Health. Persp.,2005,113:1555-1560.
Donovan A R,Adams C D,Ma Y,Stephan C,Eichholz T, Shi H. Anal. Bioanal. Chem.,2016, 408:5137-5145.
Hadioui M,Knapp G,Jreije A,Frechette-Viens L,Wilkinson K. Environ. Sci.:Nano,2020,7:139.
Jreije I,Azimzada A,Hadioui M,Wilkinson K J. Molecules,2020,25:5516.
Naasz S,Weigel S,Borovinskaya O,Serva A,Cascio C,Undas A K,Simeone F C,Marvin H J,Peters R J. J. Anal. Atom. Spectrom.,2018,33:835.
Tian X W,Jiang H W,Wang M,Cui W B,Guo Y Y,Zheng L N,Hu L G,Qu G B,Yin Y G,Cai Y. Anal. Chim. Acta,2023,1240:340756.
Liang W X,Liu N,Guo P R,Yan D. J. Instrum. Anal.(梁维新,刘宁,郭鹏然,严冬. 分析测试学报 ),2018,37:1238-1243.
Pace H E,Rogers N J,Jarolimek C,Coleman V A,Higgins C P, Ranville J F. Anal. Chem.,2011,83:9361-9369.
Olesik J W,Gray P J. J. Anal. Atom. Spect.,2012,27:1143.
Newman K,Metcalfe C,Martin J,Hintelmann H,Shaw P,Donard A. J. Anal. Atom. Spect.,2016,31:2069.
Farré M,Sanchís J,Barceló D. TrAC-Trends Anal. Chem.,2011,30:517-527.
Gallego-Urrea J A,Tuoriniemi J,Hassellöv M. TrAC-Trends Anal. Chem.,2011,30:473-483.
Von Der Kammer F,Ferguson P L,Holden P A,Masion A,Rogers K R,Klaine S J,Koelmans A A,Horne N,Unrine J M. Environ. Toxicol. Chem.,2012,31:32-49.
Schwertfeger D M,Velicogna J R,Jesmer A H,Saatcioglu S,McShane H,Scroggins R P, Princz J I. Anal. Chem.,2017,89:2505-2513.
Hadri E H,Louie S M,Hackley V A. Environ. Sci.:Nano,2018,5:203-214.
Li L,Wang Q,Yang Y,Luo L,Ding R,Yang Z G,Li H P. Anal. Chem.,2019,91:9442-9450.
Yi Z B,Loosli F,Wang J J,Berti D,Baalousha M. Environ. Chem. Lett.,2020,18:215-227.
Regelink I C,Weng L,Koopmans G F,Van Riemsdijk W H. Geoderma,2013,202/203:134-141.
Liu J F,Chao J B,Liu R,Tan Z Q,Yin Y G,Wu Y,Jiang G B. Anal. Chem.,2009,81:6496-6502.
Wimmer A,Urstoeger A,Hinke T,Aust M,Altmann P J,Schuster M. Anal. Chim. Acta,2021,1150:238198.
Li L X Y,Leopold K,Schuster M. Chem. Commun.,2012,48:9165.
Zhou X,Liu J,Yuan C,Chen Y. J. Anal. Atom. Spectrom.,2016,31:2285-2292.
Huynh K A,Siska E,Heithmar E,Tadjiki S,Pergantis S A. Anal. Chem.,2016,88:4909-4916.
Newman K,Metcalfe C,Martin J,Hintelmann H,Shaw P,Donard A. J. Anal. At. Spectrom.,2016,31:2069-2077.
Guan P,Guo P R,Pan J C,Xun H,Liang W X. J. Instrum. Anal.(管鹏,郭鹏然,潘佳钏,荀合,梁维新. 分析测试学报),2020,39:626-631.
Phalyvong K,Sivry Y,Pauwels H,Gélabert A,Tharaud M,Wille G,Bourrat X,Benedetti M F. Front. Environ. Sci.,2020,8:141.
Yang Y,Long C L,Li H P,Wang Q,Yang Z G. Sci. Total Environ.,2016,563/564:996-1007.
Wu S M,Zhang S H,Gong Y,Shi L L,Zhou B S. J. Hazard. Mater.,2020,382:121045.
Heckmann L H,Hovgaard M B,Sutherland D S,Autrup H,Besenbacher F,Scott-Fordsmand J J. Ecotoxicology,2011,20:226-233.
Santiago-Martín A D,Constantin B,Guesdon G,Kagambega N,Raymond S,Cloutier R G. J. Hazard. Toxic Radioact. Waste,2016,20:B4015001.
Liu W Y,Shi H L,Liu K,Liu X S,Sahle-Demessie E,Stephan C. J. Agric. Food Chem.,2021,69:1115-1122.
Praetorius A,Gundlach-Graham A,Goldberg E,Fabienke W,Navratilova J,Gondikas A,Kaegi R,Günther D,Hofmann T,Von Der Kammer F. Environ. Sci.:Nano,2017,4:307.
Zhang W L,Schwab A P,White J C,Ma X M. J. Environ. Qual.,2018,47:129-138.
Asadishad B,Chahal S,Akbari A,Cianciarelli V,Azodi M,Ghoshal S,Tufenkji N. Environ. Sci. Technol.,2018;52:1908-1918.
Samarajeewa A,Velicogna J,Schwertfeger D,Princz J,Subasinghe R,Scroggins R,Beaudette L. Sci. Total Environ.,2021,763:143037.
Li C T,Li Z H,Cui Q,Hassan A,Zhang K,Lu X Q,Zhang Y. Environ. Sci. Pollut. R.,2023,30:55649-55661.
Abdel-Latif H M,Dawood M A,Menanteau-Ledouble S,El-Matbouli M. Ecotox. Environ. Safe.,2020,200:110776.
Gray P E ,Coleman J G,Bednar A J,Kennedy A J,Ranville J F,Higgins C P. Environ. Sci. Technol.,2013,47:14315-14323.
Xu L N,Wang Z Y,Zhao J,Lin M Q,Xing B S. Environ. Pollut.,2020,260:114043.
López-Mayán J J,del-Ángel-Monroy S,Peña-Vázquez E,Barciela-Alonso M C,Bermejo-Barrera P,Moreda-Piñeiro A. Talanta,2022,236:122856.
Liu J,Hurt R H. Environ. Sci. Technol.,2010,44:2169-2175.
Fabrega J,Renshaw J C,Lead J R. Environ. Sci. Technol.,2009,43:9004-9009.
Roh J,Sim S J,Yi J,Park K,Chung K H,Ryu D,Choi J. Environ. Sci. Technol.,2009,43:3933-3940.
Scown T M,Santos E M,Johnston B D,Gaiser B,Baalousha M,Mitov S,Lead J R,Stone V,Fernandes T F,Jepson M,Aerle V R,Tyler C R. Toxicol. Sci.,2010,115:521-534.
Asharani P,Wu Y L,Gong Z Y,Valiyaveettil S. Nanotechnology,2008,19:255102.
Witzler M,Küllmer F,Günther K. Anal. Lett.,2018,51:587-599.
Badalova K,Herbello-Hermelo P,Bermejo-Barrera P,Moreda-Piñeiro A. J. Trace Elem. Med. Bio.,2019,54:55-61.
He X L,Zhang H T,Shi H L,Liu W Y,Sahle-Demessie E. J. Am. Soc. Mass Spectrom.,2020,31:2180-2190.
Jeništová A,Loula M,Mestek O,Ulbrich P,Matějka P. J. Nanopart. Res.,2020,22:1-14.
Salou S,Larivière D,Cirtiu C M,Fleury N. Anal. Bioanal. Chem.,2021,413:171-181.
Liu Z R,Li X T,Xiao G Y,Chen B B,He M,Hu B. TrAC -Trends Anal. Chem.,2017,93:78-101.
Zhang X,Chen B B,He M,Zhang Y W,Xiao G Y,Hu B. Spectrochim. Acta B,2015,106:20-27.
Montoro Bustos A R,Garcia-Cortes M,González-Iglesias H,Encinar R J,Costa-Fernández J M,Coca-Prados M,Sanz-Medel A. Anal. Chim. Acta,2015,879:77-84.
Chen B B,Peng H Y,Zheng F,Hu B,He M,Zhao W,Pang D W. J. Anal. At. Spectrom.,2010,25:1674-1681.
Tang Y R,Jiao X,Liu R,Wu L,Wu L,Hou X D,Lv Y. J. Anal. At. Spectrom.,2011,26:2493-2499.
Cao Y P,Feng J S,Tang L F,Mo G C,Mo W M,Deng B Y. Spectrochim. Acta B,2020,166:105797.
Liu Y,Zhang K,Xu S P,Yan M,Tao D Y,Chen L L,Wei Y,Wu C X,Liu G J,Lam K P. Gondwana Res.,2022,108:171-180.
0
浏览量
54
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构