C18 Chain Post-modified Covalent Organic Framework Functional Silica Reversed-Phase Chromatographic Stationary Phase for Pharmaceutical Analysis

Izcara S, Casado N, Zarcero S, Quintanilla D, Sierra I. Miniaturized and modified QuEChERS method with mesostructured silica as clean-up sorbent for pyrrolizidine alkaloids determination in aromatic herbs. Food Chem. 2022;380: 132189.

Article  PubMed  Google Scholar 

Medic A, Jakopic J, Hudina M, Solar A, Veberic R. Identification and quantification of the major phenolic constituents in Juglans regia L. peeled kernels and pellicles using HPLC-MS/MS. Food Chem. 2021;352:129404.

Article  PubMed  Google Scholar 

Qiao L, Yu C, Sun R. Preparation of amino-functionalized guanidinium ionic liquid-modified magnetic materials and application in solid-phase extraction of pollutants in water. J Anal Test. 2022;6:401–10.

Article  Google Scholar 

Zhang R, Liu X, Wang T, Yu J, Wang M, Sun J, Yu X, Niu N, Chen L. HPLC fingerprint combined with chemometrics and network pharmacology for q-markers prediction analysis of saposhnikovia divaricata. J Anal Test. 2024;8:83–94.

Article  Google Scholar 

Zhang X, Chen J, Jiang S, Zhang X, Bi F, Yang Y, Wang Y, Wang Z. Enhanced photocatalytic degradation of gaseous toluene and liquidus tetracycline by anatase/rutile titanium dioxide with heterophase junction derived from materials of Institut Lavoisier-125(Ti): Degradation pathway and mechanism studies. J Colloid Interface Sci. 2021;588:122–37.

Article  PubMed  Google Scholar 

Sohrabi H, Majidi M, Arbabzadeh O, Khaaki P, Pourmohammad S, Khataee A, Orooji Y. Recent advances in the highly sensitive determination of zearalenone residues in water and environmental resources with electrochemical biosensors. Environ Res. 2022;204: 112082.

Article  PubMed  Google Scholar 

Wan M, Luo Q, Ren X, Zheng Y, Gao D, Fu Q, Zu F, Xia Z, Wang L. Preparation and performance of a poly (ethyleneimine) embedded N-acetyl-L-phenylalanine mixed-mode stationary phase for HPLC. Microchem J. 2020;157: 105021.

Article  Google Scholar 

Shen Y, Geng H, Zhang F, Li Z, Yang B. A polyethyleneimine-functionalized polymer substrate polar stationary phase. J Chromatogr A. 2023;1689: 463711.

Article  PubMed  Google Scholar 

Xiao W, Pan D, Niu Z, Fan Y, Wu S, Wu W. Opportunities and challenges of high-pressure ion exchange chromatography for nuclide separation and enrichment. Chin Chem Lett. 2022;33(7):3413–21.

Article  Google Scholar 

Murisier A, Andrie M, Fekete S, Lauber M, D’Atri V, Iwan K, Guillarme D. Direct coupling of size exclusion chromatography and mass spectrometry for the characterization of complex monoclonal antibody products. J Sep Sci. 2022;45(12):1997–2007.

Article  PubMed  PubMed Central  Google Scholar 

Jiang H, Yang K, Zhao X, Zhang W, Liu Y, Jiang J, Cui Y. Highly stable Zr (IV)-based metal-organic frameworks for chiral separation in reversed-phase liquid chromatography. J Am Chem Soc. 2021;143(1):390–8.

Article  PubMed  Google Scholar 

Zhao B, Li L, Wang Y, Zhou Z. Preparation of polar group derivative beta-cyclodextrin bonded hydride silica chiral stationary phases and their chromatography separation performances. Chin Chem Lett. 2019;30(3):643–9.

Article  Google Scholar 

Zhou J, Yang Y, Wan M, Zheng Y, Dai X, Yang H, Wang L. Preparation and evaluation of an ionic liquid embedded C18 and cellulose co-functionalized stationary phase with mixed-mode and chiral separation abilities. Microchem J. 2022;175: 107123.

Article  Google Scholar 

Xiao W, Pan D, Niu Z, Fan Y, Wu S, Wu W. Opportunities and challenges of high-pressure ion exchange chromatography for nuclide separation and enrichment. Chin Chem Lett. 2023;33(7):3413–21.

Article  Google Scholar 

Wang D, Li H, Qiu H, Chen J. Preparation and evaluation of silicon quantum dots-bonded silica stationary phase for reversed-phase chromatography. J Anal Test. 2023;7:8–15.

Article  Google Scholar 

Chen J, Qiu H. Recent advances in carbon dots-based chromatographic separation materials. Chinese J Chromatogr. 2023;41(10):825–34.

Article  Google Scholar 

Xu N, Guo P, Chen J, Zhang J, Wang B, Xie S, Yuan L. Chiral core-shell microspheres β-CD-COF@SiO2 used for HPLC enantioseparation. Talanta. 2021;235: 122754.

Article  PubMed  Google Scholar 

Qiu H, Mallik A, Takafuji M, Liu X, Jiang S, Ihara H. A new imidazolium-embedded C18 stationary phase with enhanced performance in reversed-phase liquid chromatography. Anal Chem Acta. 2012;738:95–101.

Article  Google Scholar 

Li Y, Feng Y, Chen T, Zhang H. Imidazoline type stationary phase for hydrophilic interaction chromatography and reversed-phase liquid chromatography. J Chromatogr A. 2021;1218(35):5987–94.

Article  Google Scholar 

Guo L, Zhang J, Huang Q, Zhou W, Jin S. Progress in synthesis of highly crystalline covalent organic frameworks and their crystallinity enhancement strategies. Chin Chem Lett. 2022;33(6):2856–66.

Article  Google Scholar 

Lei Z, Lucas F, Moya E, Huang S, Rong Y, Wesche A, Li P, Bodkin L, Jin Y, Holewinski A, Zhang W. Highly stable dioxin-linked metallophthalocyanine covalent organic frameworks. Chin Chem Lett. 2021;32(12):3799–802.

Article  Google Scholar 

Yang L, Guo Q, Kang H, Chen R, Liu Y, Wei D. Self-controlled growth of covalent organic frameworks by repolymerization. Chem Mater. 2020;32(13):5634–40.

Article  Google Scholar 

Zhang Y, Zhong H, Zhou S, Han H, Zhang M, Qiu H. A docosyl-terminated polyamine amphiphile-bonded stationary phase for multimodal separations in liquid chromatography. J Chromatogr A. 2021;1642: 462045.

Article  PubMed  Google Scholar 

Kong M, Jin P, Wei W, Wang W, Qin H, Chen H, He J. Covalent organic frameworks (COF-300-AR) with unique catalytic performance in luminol chemiluminescence for sensitive detection of serotonin. Microchem J. 2021;160: 105650.

Article  Google Scholar 

Zheng Y, Wan M, Zhou J, Luo Q, Gao D, Fu Q, Zeng J, Zu F, Wang L. One-pot method for the synthesis of β-cyclodextrin and covalent organic framework functionalized chiral stationary phase with mixed-mode retention mechanism. J Chromatogr A. 2022;1662: 462731.

Article  PubMed  Google Scholar 

Geng K, He T, Liu R, Dalapati S, Tan K, Li Z, Tao S, Gong Y, Jiang Q, Jiang D. Covalent organic frameworks: design, synthesis, and functions. Chem Soc Rev. 2020;120(16):8814–933.

Article  Google Scholar 

Liu R, Tan K, Gong Y, Chen Y, Li Z, Xie S, He T, Lu Z, Yang H, Jiang D. Covalent organic frameworks: an ideal platform for designing ordered materials and advanced applications. Chem Soc Rev. 2021;50(1):120–242.

Article  PubMed  Google Scholar 

Deng D, Wen S, Wang Y, Liu J, Li F, Yang X. Covalent organic framework composites TpPa@CeO2 with catalytic activities for sensitive colorimetric detection of ascorbic acid. Microchem J. 2022;182: 107924.

Article  Google Scholar 

Chen M, Ning Z, Chen K, Zhang Y, Shen Y. Recent advances of electrochemiluminescent system in bioassay. J Anal Test. 2020;4:57–75.

Article  Google Scholar 

Liang Z, Wang H, Zheng H, Zhang W, Cao R. Porphyrin-based frameworks for oxygen electrocatalysis and catalytic reduction of carbon dioxide. Chem Soc Rev. 2021;50(4):2540–81.

Article  PubMed  Google Scholar 

Wang H, Wang H, Wang Z, Tang L, Zeng G, Xu P, Chen M, Xiong T, Zhou C, Li X, Huang D, Zhu Y, Wang Z, Tang J. Covalent organic framework photocatalysts: structures and applications. Chem Soc Rev. 2020;49(12):4135–65.

Article  PubMed  Google Scholar 

Li J, Jing X, Li Q, Li S, Gao X, Feng X, Wang B. Bulk COFs and COF nanosheets for electrochemical energy storage and conversion. Chem Soc Rev. 2020;49(11):3565–604.

Article  PubMed  Google Scholar 

Sun T, Xie J, Guo W, Li D, Zhang Q. Covalent-organic frameworks: advanced organic electrode materials for rechargeable batteries. Adv Energy Mater. 2020;10(19):1904199.

Article  Google Scholar 

Ge L, Qiao C, Tang Y, Zhang X, Jiang X. Light-activated hypoxia-sensitive covalent organic framework for tandem-responsive drug delivery. Nano Lett. 2021;21(7):3218–24.

Article  PubMed  Google Scholar 

Esrafili A, Wagner A, Inamdar S, Acharya A. Covalent organic frameworks for biomedical applications. Adv Healthcare Mater. 2021;10(6):2002090.

Article  Google Scholar 

Du Q, Zou J, Huang Z, Li S, Tan L, Ren X, Yin G, Zheng Y, Meng X. Fabrication of microwave-sensitized nanospheres of covalent organic framework with apatinib for tumor therapy. Chin Chem Lett. 2023;34(5): 107763.

Article  Google Scholar 

Cheng J, Hu K, Liu Q, Liu Y, Yang H, Kong J. Electrochemical ultrasensitive detection of CYFRA21-1 using Ti3C2Tx-MXene as enhancer and covalent organic frameworks as labels. Anal Bioanal Chem. 2021;413:2543–51.

Article  PubMed  Google Scholar 

Skorjanc T, Shetty D, Valant M. Covalent organic polymers and frameworks for fluorescence-based sensors. ACS Sens. 2021;6(4):1461–81.

Article  PubMed  PubMed Central 

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