Zeolitic imidazolate frameworks in analytical sample preparation.

magnetic solid-phase extraction solid-phase extraction solid-phase microextraction stir bar sorptive extraction zeolitic imidazolate frameworks

Journal

Journal of separation science
ISSN: 1615-9314
Titre abrégé: J Sep Sci
Pays: Germany
ID NLM: 101088554

Informations de publication

Date de publication:
Mar 2021
Historique:
revised: 18 12 2020
received: 17 11 2020
accepted: 18 12 2020
pubmed: 29 12 2020
medline: 29 12 2020
entrez: 28 12 2020
Statut: ppublish

Résumé

Zeolitic imidazolate frameworks are a class of metal-organic frameworks that are topologically isomorphic with zeolites. Zeolitic imidazolate frameworks are composed of tetrahedrally coordinated metal ions connected by imidazolate linkers and have a high porosity and chemical stability. Here, we summarize the progress made in the application of zeolitic imidazolate frameworks in sample preparation for analytical purposes. This review is focused on analytical methods based on liquid chromatography, gas chromatography, or capillary electrophoresis, where the use of zeolitic imidazolate frameworks has contributed to increasing the sensitivity and selectivity of the method. While bulk zeolitic imidazolate frameworks have been directly used in analytical sample preparation protocols, a variety of strategies for their magnetization or their incorporation into sorbent particles, monoliths, fibers, stir bars, or thin films, have been developed. These modifications have facilitated the handling and application of zeolitic imidazolate frameworks for a number of analytical sample treatments including magnetic solid-phase extraction, solid-phase microextraction, stir bar sorptive extraction, or thin film microextraction, among other techniques.

Identifiants

pubmed: 33369090
doi: 10.1002/jssc.202001159
doi:

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

1203-1219

Informations de copyright

© 2021 Wiley-VCH GmbH.

Références

Park KS, Ni Z, Côté AP, Choi JY, Huang R, Uribe-Romo FJ, Chae HK, O'Keeffe M, Yaghi OM. Exceptional chemical and thermal stability of zeolitic imidazolate frameworks. Proc. Natl. Acad. Sci. 2006;103:10186-91.
Banerjee R, Phan A, Wang B, Knobler C, Furukawa H, O'Keeffe M, Yaghi OM. High-throughput synthesis of zeolitic imidazolate frameworks and application to CO2 capture. Science. 2008;319:939-43.
Phan A, Doonan CJ, Uribe-Romo FJ, Knobler CB, O'Keeffe M, Yaghi OM. Synthesis, structure, and carbon dioxide capture properties of zeolitic imidazolate frameworks. Acc. Chem. Res. 2010;43:58-67.
Cravillon J, Nayuk R, Springer S, Feldhoff A, Huber K, Wiebcke M. Controlling zeolitic imidazolate framework nano- and microcrystal formation: Insight into crystal growth by time-resolved in situ static light scattering. Chem. Mater. 2011;23:2130-41.
Pan Y, Liu Y, Zeng G, Zhao L, Lai Z. Rapid synthesis of zeolitic imidazolate framework-8 (ZIF-8) nanocrystals in an aqueous system. Chem. Commun. 2011;47:2071-3.
Lu G, Li S, Guo Z, Farha OK, Hauser BG, Qi X, Wang Y, Wang X, Han S, Liu X, DuChene JS, Zhang H, Zhang Q, Chen X, Ma J, Loo SCJ, Wei WD, Yang Y, Hupp JT, Huo F. Imparting functionality to a metal-organic framework material by controlled nanoparticle encapsulation. Nat. Chem. 2012;4:310-6.
Liang K, Ricco R, Doherty CM, Styles MJ, Bell S, Kirby N, Mudie S, Haylock D, Hill AJ, Doonan CJ, Falcaro P. Biomimetic mineralization of metal-organic frameworks as protective coatings for biomacromolecules. Nat. Commun. 2015;6:7240.
Karagiaridi O, Lalonde MB, Bury W, Sarjeant AA, Farha OK, Hupp JT. Opening ZIF-8: A catalytically active zeolitic imidazolate framework of sodalite topology with unsubstituted linkers. J. Am. Chem. Soc. 2012;134:18790-6.
Lee HJ, Cho W, Oh M. Advanced fabrication of metal-organic frameworks: template-directed formation of polystyrene@ZIF-8 core-shell and hollow ZIF-8 microspheres. Chem. Commun. 2012;48:221-3.
Zhang T, Zhang X, Yan X, Kong L, Zhang G, Liu H, Qiu J, Yeung KL. Synthesis of Fe3O4@ZIF-8 magnetic core-shell microspheres and their potential application in a capillary microreactor. Chem. Eng. J. 2013;228:398-404.
Tian T, Velazquez-Garcia J, Bennett TD, Fairen-Jimenez D. Mechanically and chemically robust ZIF-8 monoliths with high volumetric adsorption capacity. J. Mater. Chem. A. 2015;3:2999-3005.
Zhang X, Liu Y, Li S, Kong L, Liu H, Li Y, Han W, Yeung KL, Zhu W, Yang W, Qiu J. New membrane architecture with high performance: ZIF-8 membrane supported on vertically aligned ZnO nanorods for gas permeation and separation. Chem. Mater. 2014;26:1975-81.
Basheer C, Alnedhary AA, Rao BSM, Valliyaveettil S, Lee HK. Development and application of porous membrane-protected carbon nanotube micro-solid-phase extraction combined with gas chromatography/mass spectrometry. Anal. Chem. 2006;78:2853-8.
Arthur CL, Pawliszyn J. Solid phase microextraction with thermal desorption using fused silica optical fibers. Anal. Chem. 1990;62:2145-8.
Šafařı́ková M, Šafařı́k I. Magnetic solid-phase extraction. J. Magn. Magn. Mater. 1999;194:108-12.
David F, Sandra P. Stir bar sorptive extraction for trace analysis. J. Chromatogr. A. 2007;1152:54-69.
Torad NL, Hu M, Ishihara S, Sukegawa H, Belik AA, Imura M, Ariga K, Sakka Y, Yamauchi Y. Direct synthesis of MOF-derived nanoporous carbon with magnetic Co nanoparticles toward efficient water treatment. Small. 2014;10:2096-107.
Gu Z-Y, Yang C-X, Chang N, Yan X-P. Metal-organic frameworks for analytical chemistry: From sample collection to chromatographic separation. Acc. Chem. Res. 2012;45:734-45.
Rocío-Bautista P, Pacheco-Fernández I, Pasán J, Pino V. Are metal-organic frameworks able to provide a new generation of solid-phase microextraction coatings? - A review. Anal. Chim. Acta. 2016;939:26-41.
Zhang J, Chen Z. Metal-organic frameworks as stationary phase for application in chromatographic separation. J. Chromatogr. A. 2017;1530:1-18.
Wang Y, Rui M, Lu G, Recent applications of metal-organic frameworks in sample pretreatment. J. Sep. Sci. 2018;41:180-94.
Lv Y, Tan X, Svec F. Preparation and applications of monolithic structures containing metal-organic frameworks. J. Sep. Sci. 2017;40:272-87.
Maya F, Cabello CP, Frizzarin RM, Estela JM, Palomino GT, Cerdà V. Magnetic solid-phase extraction using metal-organic frameworks (MOFs) and their derived carbons. Trends Anal. Chem. 2017;90:142-52.
Rocío-Bautista P, González-Hernández P, Pino V, Pasán J, Afonso AM. Metal-organic frameworks as novel sorbents in dispersive-based microextraction approaches. Trends Anal. Chem. 2017;90:114-34.
Hu H, Liu S, Chen C, Wang J, Zou Y, Lin L, Yao S. Two novel zeolitic imidazolate frameworks (ZIFs) as sorbents for solid-phase extraction (SPE) of polycyclic aromatic hydrocarbons (PAHs) in environmental water samples. Analyst. 2014;139:5818-26.
Liu X, Wang C, Wang Z, Wu Q, Wang Z. Nanoporous carbon derived from a metal organic framework as a new kind of adsorbent for dispersive solid phase extraction of benzoylurea insecticides. Microchim. Acta. 2015;182:1903-10.
Hao L, Liu X, Wang J, Wang C, Wu Q, Wang Z. Use of ZIF-8-derived nanoporous carbon as the adsorbent for the solid phase extraction of carbamate pesticides prior to high-performance liquid chromatographic analysis. Talanta. 2015;142:104-9.
Xie H, Wei Y, Li J, Wang S, Li H, Zhao Y, Zhao M, Chen X. In-situ exfoliation of graphitic carbon nitride with metal-organic framework via a sonication-assisted approach for dispersive solid-phase extraction of perfluorinated compounds in drinking water samples. J. Chromatogr. A. 2020;1625:461337.
Lan H, Gan N, Pan D, Hu F, Li T, Long N, Shen H, Feng Y. Development of a novel magnetic molecularly imprinted polymer coating using porous zeolite imidazolate framework-8 coated magnetic iron oxide as carrier for automated solid phase microextraction of estrogens in fish and pork samples. J. Chromatogr. A. 2014;1365:35-44.
Liu X, Sun Z, Chen G, Zhang W, Cai Y, Kong R, Wang X, Suo Y, You J. Determination of phthalate esters in environmental water by magnetic Zeolitic Imidazolate Framework-8 solid-phase extraction coupled with high-performance liquid chromatography. J. Chromatogr. A. 2015;1409:46-52.
Liu H, Chen L, Ding J. A core-shell magnetic metal organic framework of type Fe3O4@ZIF-8 for the extraction of tetracycline antibiotics from water samples followed by ultra-HPLC-MS analysis. Microchim. Acta. 2017;184:4091-8.
Huang C, Qiao X, Sun W, Chen H, Chen X, Zhang L, Wang T. Effective extraction of domoic acid from seafood based on postsynthetic-modified magnetic zeolite imidazolate framework-8 particles. Anal. Chem. 2019;91:2418-24.
Hao L, Wang C, Wu Q, Li Z, Zang X, Wang Z. Metal-organic framework derived magnetic nanoporous carbon: Novel adsorbent for magnetic solid-phase extraction. Anal. Chem. 2014;86:12199-205.
Liu X, Wang C, Wu Q, Wang Z. Metal-organic framework-templated synthesis of magnetic nanoporous carbon as an efficient absorbent for enrichment of phenylurea herbicides. Anal. Chim. Acta. 2015;870:67-74.
González A, Avivar J, Maya F, Cabello CP, Palomino GT, Cerdà V. In-syringe dispersive μ-SPE of estrogens using magnetic carbon microparticles obtained from zeolitic imidazolate frameworks. Anal. Bioanal. Chem. 2017;409:225-34.
Li M, Wang J, Jiao C, Wang C, Wu Q, Wang Z. Magnetic porous carbon derived from a Zn/Co bimetallic metal-organic framework as an adsorbent for the extraction of chlorophenols from water and honey tea samples. J. Sep. Sci. 2016;39:1884-91.
Jiao C, Li M, Ma R, Wang C, Wu Q, Wang Z. Preparation of a Co-doped hierarchically porous carbon from Co/Zn-ZIF: An efficient adsorbent for the extraction of trizine herbicides from environment water and white gourd samples. Talanta. 2016;152:321-8.
Wu Q, Cheng S, Wang C, Li X, Li Z, Hao C. Magnetic porous carbon derived from a zinc-cobalt metal-organic framework: A adsorbent for magnetic solid phase extraction of flunitrazepam. Microchim. Acta. 2016;183:3009-17.
Wang Y, Tong Y, Xu X, Zhang L. Developed magnetic multiporous 3D N-Co@C/HCF as efficient sorbent for the extraction of five trace phthalate esters. Anal. Chim. Acta. 2019;1054:176-83.
Qi Y, Wan M, Abd El-Aty AM, Li H, Cao L, She Y, Shao Y, Jin F, Wang S, Wang J. A “half” core-shell magnetic nanohybrid composed of zeolitic imidazolate framework and graphitic carbon nitride for magnetic solid-phase extraction of sulfonylurea herbicides from water samples followed by LC-MS/MS detection. Microchim. Acta. 2020;187:279.
Zhang S, Yao W, Ying J, Zhao H. Polydopamine-reinforced magnetization of zeolitic imidazolate framework ZIF-7 for magnetic solid-phase extraction of polycyclic aromatic hydrocarbons from the air-water environment. J. Chromatogr. A. 2016;1452:18-26.
Zhou L, Su P, Deng Y, Yang Y. Self-assembled magnetic nanoparticle supported zeolitic imidazolate framework-8: An efficient adsorbent for the enrichment of triazine herbicides from fruit, vegetables, and water. J. Sep. Sci. 2017;40:909-18.
Xu Y, Jin J, Li X, Han Y, Meng H, Wu J, Zhang X. Rapid magnetic solid-phase extraction of Congo Red and Basic Red 2 from aqueous solution by ZIF-8@CoFe2O4 hybrid composites. J. Sep. Sci. 2016;39:3647-54.
Li W, Chen J, Zhang H, Shi Y. Selective determination of aromatic acids by new magnetic hydroxylated MWCNTs and MOFs based composite. Talanta. 2017;168:136-45.
Cao X, Jiang Z, Wang S, Hong S, Li H, Shao Y, She Y, Wang J, Jin F, Jin M. One-pot synthesis of magnetic zeolitic imidazolate framework/grapheme oxide composites for the extraction of neonicotinoid insecticides from environmental water samples. J. Sep. Sci. 2017;40:4747-56.
Peng J, Tian H, Du Q, Hui X, He H. A regenerable sorbent composed of a zeolite imidazolate framework (ZIF-8), Fe3O4 and graphene oxide for enrichment of atorvastatin and simvastatin prior to their determination by HPLC. Microchim. Acta. 2018;185:141.
Liang X, Liu S, Zhu R, Xiao L, Yao S. Highly sensitive analysis of polycyclic aromatic hydrocarbons in environmental water with porous cellulose/zeolitic imidazolate framework-8 composite microspheres as a novel adsorbent coupled with high-performance liquid chromatography. J. Sep. Sci. 2016;39:2806-14.
Qiang Y, Wang W-F, Dhodary B, Yang J-L. Zeolitic imidazolate framework 8 (ZIF-8) reinforced macroporous resin D101 for selective solid-phase extraction of 1-naphthol and 2-naphthol from phenol compounds. Electrophoresis. 2017;38:1685-92.
Xu X, Wang X, Liu M, Tan T, Wan Y. ZIF-8@SiO2 core-shell microsphere extraction coupled with liquid chromatography and triple quadrupole tandem mass spectrometry for the quantitative analysis of four plant growth regulators in navel oranges. J. Sep. Sci. 2018;41:3561-8.
del Rio M, Cabello CP, Gonzalez V, Maya F, Parra JB, Cerdà V, Palomino GT. Metal oxide assisted preparation of core-shell beads with dense metal-organic framework coatings for the enhanced extraction of organic pollutants. Chem. Eur. J. 2016;22:11770-7.
Fang L, Tian M, Row KH, Yan X, Xiao W. Isolation of aristolochic acid I from herbal plant using molecular imprinted polymer composited ionic liquid-based zeolitic imidazolate framework-67. J. Sep. Sci. 2019;42:3047-53.
Pang J, Liao Y, Huang X, Ye Z, Yuan D. Metal-organic framework-monolith composite-based in-tube solid phase microextraction on-line coupled to high-performance liquid chromatography-fluorescence detection for the highly sensitive monitoring of fluoroquinolones in water and food samples. Talanta. 2019;199:499-506.
Darder MDM, Salehinia S, Parra JB, Herrero-Martinez JM, Svec F, Cerdà V, Palomino GT, Maya F. Nanoparticle-directed metal-organic framework/porous organic polymer monolithic supports for flow-based applications. ACS Appl. Mater. Interfaces. 2017;9:1728-36.
Chang N, Gu ZY, Wang HF, Yan XP. Metal-organic-framework-based tandem molecular sieves as a dual platform for selective microextraction and high-resolution gas chromatographic separation of n-alkanes in complex matrixes. Anal. Chem. 2011;83:7094-101.
Yu LQ, Yan XP. Covalent bonding of zeolitic imidazolate framework-90 to functionalized silica fibers for solid-phase microextraction. Chem. Commun. 2013;49:2142-4.
Zhang S, Yang Q, Yang X, Wang W, Li Z, Zhang L, Wang C, Wang Z. A zeolitic imidazolate framework based nanoporous carbon as a novel fiber coating for solid-phase microextraction of pyrethroid pesticides. Talanta. 2017;166:46-53.
Zhang S, Yang Q, Li Z, Wang W, Wang C, Wang Z. Zeolitic imidazole framework templated synthesis of nanoporous carbon as a novel fiber coating for solid-phase microextraction. Analyst. 2016;141:1127-35.
Zang X, Liang W, Chang Q, Wu T, Wang C, Wang Z. Determination of volatile organic compounds in pen inks by a dynamic headspace needle trap device combined with gas chromatography-mass spectrometry. J. Chromatogr. A. 2017;1513:27-34.
Guo Y, He X, Huang C, Chen H, Lu Q, Zhang L. Metal-organic framework-derived nitrogen-doped carbon nanotube cages as efficient adsorbents for solid-phase microextraction of polychlorinated biphenyls. Anal. Chim. Acta. 2020;1095:99-108.
Xu L, Huang S, Liu Y, Wei S, Chen G, Gong Z, Ouyang G. Hollow carbon nanobubbles-coated solid-phase microextraction fibers for the sensitive detection of organic pollutants. Anal. Chim. Acta. 2020;1097:85-93.
Hu X, Wang C, Luo R, Liu C, Qi J, Sun X, Shen J, Han W, Wang L, Li J. Double-shelled hollow ZnO/carbon nanocubes as an efficient solid-phase microextraction coating for the extraction of broad-spectrum pollutants. Nanoscale. 2019;11:2805-11.
Lan H, Rönkkö T, Parshintsev J, Hartonen K, Gan N, Sakeye M, Sarfraz J, Riekkola ML. Modified zeolitic imidazolate framework-8 as solid-phase microextraction Arrow coating for sampling of amines in wastewater and food samples followed by gas chromatography-mass spectrometry. J. Chromatogr. A. 2017;1486:76-85.
Ghani M, Masoum S, Ghoreishi SM, Cerdà V, Maya F. Nanoparticle-templated hierarchically porous polymer/zeolitic imidazolate framework as a solid-phase microextraction coatings. J. Chromatogr. A. 2018;1567:55-63.
Zeng J, Li Y, Zheng X, Li Z, Zeng T, Duan W, Li Q, Shang X, Dong B, Controllable transformation of aligned ZnO nanorods to ZIF-8 as solid-phase microextraction coatings with tunable porosity, polarity, and conductivity. Anal. Chem. 2019;91:5091-7.
Rocío-Bautista P, Gutiérrez-Serpa A, Cruz AJ, Ameloot R, Ayala JH, Afonso AM, Pasán J, Rodríguez-Hermida S, Pino V. Solid-phase microextraction coatings based on the metal-organic framework ZIF-8: Ensuring stable and reusable fibers. Talanta. 2020;215:120910.
Maya F, Ghani M. Ordered macro/micro-porous metal-organic framework of type ZIF-8 in a steel fiber as a sorbent for solid-phase microextraction of BTEX. Microchim. Acta. 2019;186:425.
Liu YD, Xin GZ, Li W, Liu FJ, Yao ZP, Di X, A novel liquid-liquid-solid microextraction strategy for bio-sample preparation by in situ self-assembly of zeolitic imidazolate framework 8 on hollow fiber membrane. Anal. Chim. Acta. 2020;1095:118-28.
Fang Z, Gong J, Jing X, Wang T, Ye J, Chu Q, Huang D. Zeolitic imidazolate framework-8 reinforced hollow-fiber liquid-phase microextraction of free urinary biomarkers of whole grain intake followed by CE analysis. J. Sep. Sci. 2020;43:2889-96.
Yu LQ, Wang LY, Su FH, Hao PY, Wang H, Lv YK. A gate-opening controlled metal-organic framework for selective solid-phase microextraction of aldehydes from exhaled breath of lung cancer patients. Microchim. Acta. 2018;185:307.
Kong J, Zhu F, Huang W, He H, Hu J, Sun C, Xian Q, Yang S. Sol-gel based metal-organic framework zeolite imidazolate framework-8 fibers for solid-phase microextraction of nitro polycyclic aromatic hydrocarbons and polycyclic aromatic hydrocarbons in water samples. J. Chromatogr. A. 2019;1603:92-101.
Mirzajani R, Kardani F, Ramezani Z. A nanocomposite consisting of graphene oxide, zeolite imidazolate framework 8, and a molecularly imprinted polymer for (multiple) fiber solid phase microextraction of sterol and steroid hormones prior to their quantitation by HPLC. Microchim. Acta. 2019;186:129.
Wei S, Kou X, Liu Y, Zhu F, Xu J, Ouyang G. Facile construction of superhydrophobic hybrids of metal-organic framework grown on nanosheet for high-performance extraction of benzene homologues. Talanta. 2020;211:120706.
Wang F, Zheng Y, Qiu J, Liu S, Tong Y, Zhu F. Ouyang G, Graphene-based metal and nitrogen-doped carbon composites as adsorbents for highly sensitive solid phase microextraction of polycyclic aromatic hydrocarbons. Nanoscale. 2018;10:10073-8.
Du J, Zhang R, Wang F, Wang X, Du X. Template-directed fabrication of zeolitic imidazolate framework-67-derived coating materials on nickel/titanium alloy fiber substrate for selective solid-phase microextraction. J. Chromatogr. A. 2020;1618:460855.
Zhang J, Zhang W, Bao T, Chen Z. Polydopamine-based immobilization of zeolitic imidazolate framework-8 for in-tube solid-phase microextraction. J. Chromatogr. A. 2015;1388:9-16.
Hasan CK, Ghiasvand A, Lewis TW, Nesterenko PN, Paull B. Recent advances in stir-bar sorptive extraction: Coatings, technical improvements, and applications. Anal. Chim. Acta. 2020;1139:222-40.
Ghani M, Ghoreishi SM, Azamati M. In-situ growth of zeolitic imidazole framework-67 on nanoporous anodized aluminum bar as stir-bar sorptive extraction sorbent for determining caffeine. J. Chromatogr. A. 2018;1577:15-23.
Ghani M, Ghoreishi SM, Shahin M, Azamati M. Zeolitic imidazole framework templated synthesis of nanoporous carbon as a coating for stir bar sorptive extraction of fluorouracil and phenobarbital in human body fluids. Microchem. J. 2019;146:798-806.
Shen C, Wu T, Zang X. Hollow fiber stir bar sorptive extraction combined with GC-MS for the determination of phthalate esters from children's food. Chromatographia. 2019;82:683-93.
Ge D, Lee HK. Water stability of zeolite imidazolate framework 8 and application to porous membrane-protected micro-solid-phase extraction of polycyclic aromatic hydrocarbons from environmental water samples. J. Chromatogr. A. 2011v1218:8490-5.
Ge D, Lee HK. Zeolite imidazolate frameworks 8 as sorbent and its application to sonication-assisted emulsification microextraction combined with vortex-assisted porous membrane-protected micro-solid-phase extraction for fast analysis of acidic drugs in environmental water samples. J. Chromatogr. A. 2012;1257:19-24.
Ge D, Lee HK. Sonication-assisted emulsification microextraction combined with vortex-assisted porous membrane-protected micro-solid-phase extraction using mixed zeolitic imidazolate frameworks 8 as sorbent. J. Chromatogr. A. 2012;1263:1-6.
Ge D, Lee HK. Ionic liquid based dispersive liquid-liquid microextraction coupled with micro-solid phase extraction of antidepressant drugs from environmental water samples. J. Chromatogr. A. 2013;1317:217-22.
Bruheim I, Liu X, Pawliszyn J. Thin-film microextraction. Anal. Chem. 2003;75:1002-10.
Alipour F, Raoof JB, Ghani M. Hierarchical zeolitic imidazolate framework-67 derived from in-situ synthesized Co-Al layered double hydroxide embedded within porous-anodized aluminum foil for thin film microextraction of caffeine followed by its high performance liquid chromatography-ultraviolet detection. J. Chromatogr. A. 2020;1626:461358.
Jafari Z, Hadjmohammadi MR. In situ growth of zeolitic imidazolate framework-8 on woven cotton yarn for the thin film microextraction of quercetin in human plasma and food samples. Anal. Chim. Acta. 2020;1131:45-55.
Jafari Z, Hadjmohammadi MR. In situ growth of zeolitic imidazolate framework-8 on a GO-PVDF membrane as a sorbent for thin-film microextraction of caffeine followed by quantitation through high-performance liquid chromatography. Anal. Methods. 2020;12:1736-43.
Velásquez-Hernández MDJ, Ricco R, Carraro F, Limpoco FT, Linares-Moreau M, Leitner E, Wiltsche H, Rattenberger J, Schröttner H, Frühwirt P, Stadler EM, Gescheidt G, Amenitsch H, Doonan CJ, Falcaro P. Degradation of ZIF-8 in phosphate buffered saline media. CrystEngComm. 2019;21:4538-44.
Luzuriaga MA, Benjamin CE, Gaertner MW, Lee H, Herbert FC, Mallick S, Gassensmith JJ. ZIF-8 degrades in cell media, serum, and some-but not all-common laboratory buffers. Supramol. Chem. 2019;31:485-90.
Gao S, Hou J, Deng Z, Wang T, Beyer S, Buzanich AG, Richardson JJ, Rawal A, Seidel R, Zulkifli MY, Li W, Bennett TD, Cheetham AK, Liang K, Chen V. Improving the acidic stability of zeolitic imidazolate frameworks by biofunctional molecules. Chem. 2019;5:1597-608.

Auteurs

Melisa Rodas (M)

Australian Centre for Research on Separation Science (ACROSS), School of Natural Sciences (Chemistry), University of Tasmania, Tasmania, Australia.

Kateřina Fikarová (K)

Faculty of Pharmacy in Hradec Králové, Department of Analytical Chemistry, Charles University, Hradec Králové, Czech Republic.

Finnian Pasanen (F)

Australian Centre for Research on Separation Science (ACROSS), School of Natural Sciences (Chemistry), University of Tasmania, Tasmania, Australia.

Burkhard Horstkotte (B)

Faculty of Pharmacy in Hradec Králové, Department of Analytical Chemistry, Charles University, Hradec Králové, Czech Republic.

Fernando Maya (F)

Australian Centre for Research on Separation Science (ACROSS), School of Natural Sciences (Chemistry), University of Tasmania, Tasmania, Australia.

Classifications MeSH