Enantioseparation of planar chiral ferrocenes on cellulose-based chiral stationary phases: Benzoate versus carbamate pendant groups

被引:5
|
作者
Dallocchio, Roberto [1 ]
Dessi, Alessandro [1 ]
Sechi, Barbara [1 ]
Chankvetadze, Bezhan [2 ]
Jibuti, Giorgi [2 ]
Cossu, Sergio [3 ]
Mamane, Victor [4 ]
Peluso, Paola [1 ]
机构
[1] Ist Chim Biomol ICB CNR, Enantioselect Chromatog & Mol Recognit Unit, Sassari, Italy
[2] Tbilisi State Univ, Sch Exact & Nat Sci, Inst Phys & Analyt Chem, Tbilisi, Georgia
[3] Univ Ca Foscari Venezia, Dipartimento Sci Mol & Nanosistemi, Mestre Venezia, Italy
[4] Univ Strasbourg, Inst Chim Strasbourg, CNRS, UMR 7177, Strasbourg, France
基金
美国国家科学基金会;
关键词
cellulose-based chiral stationary phases; enantiomer elution order; enantioseparation; molecular dynamics; planar chiral ferrocenes; COMPARATIVE HPLC ENANTIOSEPARATION; HIGHLY ENANTIOSELECTIVE SYNTHESIS; CHROMATOGRAPHIC-SEPARATION; PACKING MATERIALS; RESOLUTION; DERIVATIVES; RECOGNITION; ENANTIOMERS; HALOGEN;
D O I
10.1002/elps.202200205
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
In this study, the enantioseparation of 14 planar chiral ferrocenes containing halogen atoms, and methyl, iodoethynyl, phenyl, and 2-naphthyl groups, as substituents, was explored with a cellulose tris(4-methylbenzoate) (CMB)-based chiral column under multimodal elution conditions. n-Hexane/2-propanol (2-PrOH) 95:5 v/v, pure methanol (MeOH), and MeOH/water 90:10 v/v were used as mobile phases (MPs). With CMB, baseline enantioseparations were achieved for nine analytes with separation factors (alpha) ranging from 1.24 to 1.77, whereas only three analytes could be enantioseparated with 1.14 <= alpha <= 1.51 on a cellulose tris(3,5-dimethylphenylcarbamate) (CDMPC)-based column, used as a reference for comparison, under the same elution conditions. Pendant group-dependent reversal of the enantiomer elution order was observed in several cases by changing CMB to CDMPC. The impact of analyte and chiral stationary phase (CSP) structure, and MP polarity on the enantioseparation, was evaluated. The two cellulose-based CSPs featured by different pendant groups were also compared in terms of thermodynamics. For this purpose, enthalpy (Delta Delta H degrees), entropy (Delta Delta S degrees) and free energy (Delta Delta G degrees) differences, isoenantioselective temperatures (T-iso), and enthalpy/entropy ratios (Q), associated with the enantioseparations, were derived from Van 't Hoff plots by using n-hexane/2-PrOH 95:5 v/v and methanol/water 90:10 v/v as MPs. With the aim to disclose the functions of the different substituents in mechanisms and noncovalent interactions underlying analyte-selector complex formation at molecular level, electrostatic potential (V) analysis and molecular dynamics simulations were used as computational techniques. On this basis, enantioseparations and related mechanisms were investigated by integrating theoretical and experimental data.
引用
收藏
页码:203 / 216
页数:14
相关论文
共 50 条
  • [41] Preparation of novel chiral stationary phases based on chiral metal-organic cages enable extensive HPLC enantioseparation
    Wang, Zhen
    Wang, Wei
    Sun, Liquan
    Liang, Axin
    Duan, Juntao
    Zhang, Yukui
    Tang, Bo
    Luo, Aiqin
    ANALYTICA CHIMICA ACTA, 2025, 1337
  • [42] A facile and efficient method to fabricate high-resolution immobilized cellulose-based chiral stationary phases via thiol-ene click chemistry
    Yin, Chunchun
    Chen, Weiwei
    Zhang, Jinming
    Zhang, Mei
    Zhang, Jun
    SEPARATION AND PURIFICATION TECHNOLOGY, 2019, 210 : 175 - 181
  • [43] Synthesis and characteristics of composite chiral stationary phases based on cellulose derivatives
    Chen, XM
    Zou, HF
    Ni, JY
    Feng, S
    JOURNAL OF SEPARATION SCIENCE, 2003, 26 (1-2) : 29 - 36
  • [44] Enantio-resolution of some chiral sulfoxide drugs on amylose and cellulose-based stationary phases: Elution order, absolute configuration and chiral mechanism determination
    Addadi, Khadidja
    Sekkoum, Khaled
    Belboukhari, Nasser
    ALOthman, Zeid A.
    Aljuwayid, Ahmed M.
    Sillanpaa, Mika
    Ali, Imran
    MICROCHEMICAL JOURNAL, 2023, 193
  • [45] Enantioseparation by HPLC using phenylcarbonate, benzoylformate, p-toluenesulfonylcarbamate, and benzoylcarbamates of cellulose and amylose as chiral stationary phases
    Ikai, T
    Yamamoto, C
    Kamigaito, M
    Okamoto, Y
    CHIRALITY, 2005, 17 (06) : 299 - 304
  • [46] Comparative study on retention behaviour and enantioresolution of basic and neutral structurally unrelated compounds with cellulose-based chiral stationary phases in reversed phase liquid chromatography-mass spectrometry conditions
    Perez-Baeza, Mireia
    Escuder-Gilabert, Laura
    Martin-Biosca, Yolanda
    Sagrado, Salvador
    Medina-Hernandez, Maria Jose
    JOURNAL OF CHROMATOGRAPHY A, 2022, 1673
  • [47] Comparison of HPLC enantioseparation of substituted binaphthyls on CD-, polysaccharide- and synthetic polymer-based chiral stationary phases
    Loukotkova, Lucie
    Tesarova, Eva
    Bosakova, Zuzana
    Repko, Pavel
    Armstrong, Daniel W.
    JOURNAL OF SEPARATION SCIENCE, 2010, 33 (09) : 1244 - 1254
  • [48] A cellulose-based chiral fluorescent sensor for aromatic nitro compounds with central, axial and planar chirality
    Ikai, Tomoyuki
    Suzuki, Daisuke
    Shinohara, Ken-ichi
    Maeda, Katsuhiro
    Kanoh, Shigeyoshi
    POLYMER CHEMISTRY, 2017, 8 (14) : 2257 - 2265
  • [49] Enantioseparation of 15 organic phosphonate esters on the cellulose tris(3,5-dimethylphenyl carbamate) chiral stationary phase by HPLC
    Du, W
    Yang, GS
    Wang, XQ
    Yuan, SL
    Zhou, L
    Xu, D
    Liu, CP
    TALANTA, 2003, 60 (06) : 1187 - 1195
  • [50] Preparation and Enantioseparation of Polymer-type Chiral Stationary Phases Based on D-(-) -Tartaric Acid Derivatives
    He, Bao-jiang
    Chen, Wen-bin
    Chen, Wei
    Bai, Zheng-wu
    ACTA POLYMERICA SINICA, 2015, (09) : 1107 - 1113