西南医科大学 药学院,四川 泸州 646000
扫 描 看 全 文
骆秋蓉,王诗琦,王路军.二维材料及其量子点在分离科学领域的研究进展[J].分析测试学报,2021,40(08):1246-1256.
LUO Qiu-rong,WANG Shi-qi,WANG Lu-jun.Recent Advances of Two-dimensional Materials and Their Quantum Dots in Separation Science[J].Journal of Instrumental Analysis,2021,40(08):1246-1256.
骆秋蓉,王诗琦,王路军.二维材料及其量子点在分离科学领域的研究进展[J].分析测试学报,2021,40(08):1246-1256. DOI: 10.19969/j.fxcsxb.20111901.
LUO Qiu-rong,WANG Shi-qi,WANG Lu-jun.Recent Advances of Two-dimensional Materials and Their Quantum Dots in Separation Science[J].Journal of Instrumental Analysis,2021,40(08):1246-1256. DOI: 10.19969/j.fxcsxb.20111901.
二维材料是一种新型的分离材料,具有原子尺寸、机械强度优异、比表面积大、表面化学丰富以及物理、化学稳定性良好等特性,引起了分离科学领域研究人员的广泛关注,其中以石墨烯为典型代表。随着对石墨烯材料的广泛研究,相继发展了二维过渡金属硫化物(TMDs)、层状双氢氧化物(LDHs)、金属有机框架(MOFs)、共价有机骨架(COFs)、二维过渡金属碳化物或碳氮化物(MXene)、六方氮化硼(h-BN)等多种新兴二维材料。该文介绍并讨论了二维材料及其量子点的特点及应用,重点介绍了二维材料及其量子点在膜分离、固相萃取/固相微萃取、液相色谱、气相色谱、毛细管电色谱等分离科学领域中的应用。此外,还探讨了二维材料在分离科学领域中面临的挑战及应用前景。
Two-dimensional materials are a new kind of separation material, which have attracted extensive attention of researchers in the field of separation science due to their characteristics of atomic size, excellent mechanical strength, large surface area, abundant surface chemistry and good physical and chemical stability. Graphene is considered as a typical two-dimensional material among the materials. With extensive research of graphene, a variety of emerging two-dimensional materials, such as transition metal dichalcogenides(TMDs), layered double hydroxides(LDHs), metal-organic frameworks(MOFs), covalent organic frameworks(COFs), transition metal carbides, nitrides and carbonitrides(MXenes) and hexagonal boron nitride(h-BN) have appeared. This review discusses the characteristics and applications of two-dimensional materials and their quantum dots, and focuses on the applications of membrane separation, solid phase extraction/solid phase microextraction, liquid chromatography, gas chromatography, capillary electro chromatography and other fields in separation science. In addition, challenges and application prospect of two-dimensional materials in separation science are also discussed.
二维材料量子点分离科学
two-dimensional materialsquantum dotsseparation science
Novoselov K S, Geim A K, Morozov S V, Geim A A , Jiang D, Zhang Y, Dubonos S V, Grigorieva L V, Firsov A A. Science, 2004, 306 (5696): 666-669.
Arunragsa S, Seekaew Y, Pon-on W, Wongchoosuk C. Diam. Relat. Mater., 2020, 105:107790.
Chen J, Than A, Li N, Ananthanarayanan A, Zheng X T, Xi F N, Liu J Y, Tian J Q, Chen P. FlatChem, 2017, 5: 25-32.
Xue Q, Zhang H J, Zhu M S, Pei Z X, Li H F, Wang Z F, Huang Y, Huang Y, Deng Q H, Zhou J, Du S Y, Huang Q, Zhi C Y. Adv. Mater., 2017, 29(15): 1604847-1604852.
Sun D D, Wang M S, Li Z Y, Fan G X, Fan L Z, Zhou A G. Electrochem. Commun., 2014, 47: 80-83.
Wu X C, Guo S W, Zhang J Y. Chem. Commun., 2015, 51(29): 6318-6321.
Xu C Y, Han Q, Zhao Y, Wang L X, Li Y, Qu L T. J. Mater. Chem. A, 2015, 3(5): 1841-1846.
Drissi L B, Ouarrad H, Ramadan F Z, Fritzsche W. RSC Adv., 2020, 10(2): 801-811.
Zhu J Y, Hou J W, Uliana A, Zhang Y T, Tian M M, Bruggen B V. J. Mater. Chem. A, 2018, 6(9): 3773-3791.
Cheng L, Liu G P, Jin W Q. Acta Phys.-Chim. Sin., 2019, 35(10): 1090-1098.
Moghadam F, Park H B. Curr. Opin. Chem. Eng., 2018, 20: 28-38.
Prasad B, Mandal B. ACS Appl. Mater. Interfaces, 2018, 10(33): 27810-27841.
Zhang Y Z, Su K M, Li Z H. J. Membr. Sci., 2018, 563: 718-725.
Liu L F, Xie X, Zambare R S, Selvaraj A P J, Sowrirajalu B N, Song X X, Tang C Y Y, Gao C J. Polymers, 2018, 10(7): 795-809.
Peng Y, Li Y S , Ban Y J, Jin H, Jiao W M, Yang W H. Science, 2014, 346 (6215): 1356-1359.
Yuan S S, Li X, Zhu J Y, Zhang G, Puyvelde P V, Bruggen B V. Chem. Soc. Rev., 2019, 48(10): 2665-2681.
Fan H W, Peng M H, Strauss I, Mundstock A, Meng H, Caro J. J. Am. Chem. Soc., 2020, 142(15): 6872-6877.
Liu Y, Wang N Y, Cao Z W, Caro J. J. Mater. Chem. A, 2014, 2(5): 1235-1238.
Dou H Z, Jiang B, Xu M, Zhang Z, Wen G B, Peng F F, Yu A P, Bai Z Y, Sun Y L, Zhang L H, Jiang Z Y, Chen Z W. Angew. Chem. Int. Ed. Engl., 2019, 58(39): 13969-13975.
Naguib M, Kurtoglu M, Presser V, Lu J, Niu J J, Heon M, Hultman L, Gogotsi Y, Barsoum M W. Adv. Mater., 2011, 23(37): 4248-4253.
Ren C E, Zhao M Q, Makaryan T, Halim J, Boota M, Kota S, Anasori B, Barsoum M W, Gogotsi Y. Chem. Electro. Chem., 2016, 3: 689-693.
Wang D, Wang Z G, Wang L, Hu L, Jin J. Nanoscale, 2015, 7(42): 17649-17652.
Wang H L, Yu L, Li P W, Li M, Zhang Q, Zhang W. Chin. J. Anal. Chem. (王恒玲, 喻理, 李培武, 李敏, 张奇, 张文. 分析化学, 2014, 42(9): 1338-1342.
Yu L. Analytical Methods for Determination of Aflatoxins Based on Graphene Materials Coupled with High Performance Liquid Chromatography. Beijing: Chinese Academy of Agricultural Sciences(喻理. 基于石墨烯材料的黄曲霉毒素液相色谱检测方法研究. 北京: 中国农业科学院), 2014.
Zhang G J, Zang X H, Zhou X, Wang L, Wang C, Wang Z. Chin. J. Chromatogr.(张贵江, 臧晓欢, 周欣, 王璐, 王春,王志. 色谱, 2013, 31(11): 1071-1075.
Huang J X, Hu Y F, Hu Y L, Li G K. Talanta, 2011, 83(2): 1721-1729.
Ouyang G F, Vuckovic D, Pawliszyn J. Chem. Rev., 2011, 111(4): 2784-2814.
Wang J X, Jiang D Q, Gu Z Y,Yan X P. J. Chromatogr. A, 2006, 1137(1): 8-14.
Bagheri H, Javanmardi H, Abbasi A, Banihashemi S. J. Chromatogr. A, 2016, 1431: 27-35.
Wang W C, Wang J T, Zhang S H, Cui P L, Wang C, Wang Z. Talanta, 2016, 161: 22-30.
Hou Y J, Deng J W, He K L, Chen C, Yang Y Y. Anal. Chem., 2020, 92(15): 10213-10219.
Li X X, Row K H. Microchim. Acta, 2019, 186(12): 753-762.
An J X, Wang X, Ye N S. ChemistrySelect, 2017, 2(28): 9046-9051.
Ghaemmaghami M, Yamini Y, Mousavi K Z. Microchim. Acta, 2020,187(2): 151-158.
Wang F Q. The Preparation and Application of Solid-phase Microextraction Coating Based on Layered Double Hydroxides. Wuhu: Anhui Normal University(王凤琴. 层状双氢氧化物固相微萃取纤维的制备及应用. 芜湖:安徽师范大学), 2018.
Liang X J, Hou A D, Chan H M J, Guo Y, Hilder E F. TrAC-Trends Anal. Chem., 2018, 98: 149-160.
Song L J, Zhang H J, Cai T P, Chen J, Li Z, Guan M, Qiu H D. Chin. Chem. Lett., 2019, 30(4): 863-866.
Alaerts L, Kirschhock C E A, Maes M, Van der Veeen M A, Finsy V, Depla A, Martens J A, Baron G V, Jacobs P A, Denayer J F M , De Vos D E. Angew. Chem. Int. Ed., 2007, 46(23): 4293-4297.
Ameloot R, Liekens A, Alaerts L, Maes M, Galarneau A, Coq B, Desmet G, Sels B F, Denayer J F M, De Vos D E. Eur. J. Inorg. Chem., 2010, (24): 3735-3738.
Liu L H, Yang C X, Yan X P. J. Chromatogr. A, 2017, 1479: 137-144.
Huang J J, Han X, Yang S, Cao Y Y, Yuan C, Liu Y, Wang J G, Cui Y. J. Am. Chem. Soc., 2019, 141(22): 8996-9004.
Fan J, Qi M L, Fu R N, Qu L T. J. Chromatogr. A , 2015, 1399: 74-79.
Feng Y. Examination of Graphene Oxide or Graphene Nanosheets as Stationary Phase for Capillary Gas Chromatography. Beijing: Beijing Institute of Technology(封裕. 氧化石墨烯及石墨烯毛细管气相色谱固定相的研究. 北京:北京理工大学), 2015.
Li J C, Liu H, Zhang J,Wu L D, Song Y. J. Food Saf. Qual.李晋成, 刘欢, 张静, 吴立冬, 宋怿. 食品安全质量检测学报), 2015, (2): 591-595.
Zhu H W. Preparation of New Chromatography Stationary Phase Materials MOFs@γ-Al2O3 and Their Hydrogen Isotope H2/D2 Separation Performance. Beijing: Beijing University of Chemical Technology(朱宏伟. 新型MOFs@γ-Al2O3色谱固定相材料的制备及其对H2/D2的分离性能研究. 北京: 北京化工大学), 2015.
Yang J R, Xie S M, Zhang J H, Chen L, Nong R Y, Yuan L M. J. Chromatogr. Sci., 2017, 54(9): 1467-2474.
Yang C X, Liu C, Cao Y M, Yan X P. Room Temperature Solvent Method for Rapid Synthesis of Covalent Organic Framework Materials and Their Application in Capillary Gas Chromatography Separation. Proceedings of the 20th National Chromatography Conference and Instrument Exhibition (Volume 1)
杨成雄, 刘畅, 曹以萌, 严秀平. 室温溶剂法快速合成共价有机骨架材料及其应用于毛细管气相色谱分离. 第二十届全国色谱学术报告会及仪器展览会论文集(第一分册), 2015.
Jia J, Xu F J, Wang S L, Jiang X, Long Z, Hou X D. Analyst, 2014, 139(14): 3533-3536.
Xiong X, Qi M L. J. Chromatogr. A, 2018, 1567: 191-197.
Liu X L. Capillary Electrochromatography Based on Graphene and Graphene Derivatives. Changchun: Northeast Normal University(刘晓玲. 基于石墨烯及其衍生物的新型毛细管电色谱. 长春: 东北师范大学), 2014.
Ye N S, Li J. J. Sep. Sci., 2014, 37(16): 2239-2247.
Pan C J, Wang W F, Chen X G. J. Chromatogr. A, 2016,1427: 125-133.
Xu S J, Wang Y Y, Li W, Ji Y B. J. Chromatogr. A, 2019, 1602: 481-507.
Cai Z M, Wang X, An J X, Zhang Q Q, Jin X T, Yin H, Ye N S. Food Anal. Methods, 2019, 13(2): 551-559.
Yu X H, Zhou W, Chen Z L. J. Chromatogr. A, 2017, 1530: 219-225.
Wang H, Wei J F, Zheng G X. Chin. J. Appl. Ecol. (王虎,魏俊峰,郑国侠.应用生态学报), 2014, 25 (4): 1231-1238.
Zhu H W, Wang H, Zhang Z W, Wang G D, Zhang Y, Shi F. Trans. Microsyst. Technol.朱红伟, 王昊, 张中卫, 王国东, 张影, 石峰. 传感器与微系统), 2019, (3): 71-74.
Weng X X, Bi H Y, Liu B H, Kong J L. J. Electrophoresis, 2006, 27(15): 3129-3135.
Xu Y H, Wang X X, Zhang W L, Lv F, Guo S J. Chem. Soc. Rev., 2018, 47(2): 586-625.
Wang X W, Sun G Z, Li N, Chen P. Chem. Soc. Rev., 2016, 45(8): 2239-2262.
Zeng Z P, Yu D S, He Z M, Liu J, Xiao F X, Zhang Y, Wang R, Bhattaryya D,Tan T T Y. Sci. Rep., 2016, 6: 20142-20152.
Sun Y M, Wu Q, Gao J, Zhang X, Zhao L, Dong S Q. Chin. J. Chromatogr.(孙亚明, 武琪, 高洁, 张霞, 赵亮, 董树清. 色谱), 2017, 35 (3): 325-331.
Wu Q, Sun Y M, Zhang X L, Zhang X, Dong S Q, Qiu H D, Wang L T, Zhao L. J. Chromatogr. A, 2017, 1492: 61-69.
Wu Q, Sun Y M, Gao J,Chen L X, Dong S Q, Luo G Y, Li H, Wang L T, Zhao L. New J. Chem., 2018, 42(11): 8672-8681.
Wu Q, Chen L X, Gao J, Dong S Q, Li H, Di D L, Zhao L. Talanta, 2019, 194: 105-113.
Wu Q, Gao J, Chen L X,Dong S Q, Li H, Qiu H D, Zhao L. J. Chromatogr. A, 2019, 1600: 209-218.
Luo Q R, Ren X J, Wei S P, Zheng Y C, Gao D, Fu Q F, Xia Z N, Wang L J. Anal. Bioanal. Chem., 2020, 412(6): 1365-1374.
Luo Q R, Zhong Z R, Zheng Y C, Gao D, Xia Z N,Wang L J. Talanta, 2021, 224: 121869.
Kim H W, Yoon H W, Yoon S M, Yoo B M, Ahn B K, Cho Y H, Shin H J, Yang H C, Paik U, Kmon A, Choi J Y, Park H B. Science, 2013, 342(6154): 91-95.
Zhang Y D, Shi Q, Liu Y Z, Wang Y H, Meng Z S, Xiao C Y, Deng K M, Rao D W, Lu R F. J. Phys. Chem. C, 2015, 119(34): 19826-19831.
0
Views
5
下载量
0
CSCD
Publicity Resources
Related Articles
Related Author
Related Institution