Unravelling dispersion forces in liquid-phase enantioseparation. Part I: Impact of ferrocenyl versus phenyl groups

被引:6
|
作者
Sechi, Barbara [1 ]
Dessi, Alessandro [1 ]
Dallocchio, Roberto [1 ]
Tsetskhladze, Nutsa [2 ]
Chankvetadze, Bezhan [2 ]
Perez-Baeza, Mireia [3 ]
Cossu, Sergio [4 ]
Jibuti, Giorgi [2 ]
Mamane, Victor [5 ]
Peluso, Paola [1 ]
机构
[1] Ist Chim Biomol ICB CNR, Sede Secondaria Sassari, Traversa Crucca 3, I-07100 Sassari, Regione Baldinc, Italy
[2] Tbilisi State Univ, Inst Phys & Analyt Chem, Sch Exact & Nat Sci, Chavchavadze Ave 3, GE-0179 Tbilisi, Georgia
[3] Univ Valencia, Dept Quim Analit, Valencia 46022, Spain
[4] Univ Ca Foscari Venezia, Dipartimento Sci Molecolari & Nanosistemi DSMN, Via Torino 155, I-30172 Mestre Venezia, Italy
[5] Inst Chim Strasbourg, Equipe LASYROC, UMR CNRS 7177, 1 Rue Blaise Pascal, F-67008 Strasbourg, France
基金
美国国家科学基金会;
关键词
Enantioseparation; Ferrocene; Molecular modeling; Noncovalent interactions; Polysaccharide-based chiral stationary phases; CHIRAL RECOGNITION MECHANISM; LONDON DISPERSION; STATIONARY PHASES; AMYLOSE; CHROMATOGRAPHY; SEPARATION; INSIGHTS;
D O I
10.1016/j.aca.2023.341725
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Background: Highly ordered chiral secondary structures as well as multiple (tunable) recognition sites are the keys to success of polysaccharide carbamate-based chiral selectors in enantioseparation science. Hydrogen bonds (HBs), dipole-dipole, and & pi;-& pi; interactions are classically considered the most frequent noncovalent interactions underlying enantioselective recognition with these chiral selectors. Very recently, halogen, chalcogen and & pi;-hole bonds were also identified as interactions working in polysaccharide carbamate-based selectors to promote enantiomer distinction. On the contrary, the function of dispersion interactions in this field was not explored so far.Results: The enantioseparation of chiral ferrocenes featuring chiral axis or chiral plane as stereogenic elements was performed by comparing five polysaccharide carbamate-based chiral columns, with the aim to identify enantioseparation outcomes that could be reasonably determined by dispersion forces, making available a reliable experimental data set for future theoretical studies to confirm the heuristic hypothesis. The effects of mobile phase polarity and temperature on the enantioseparation were considered, and potential recognition sites on analytes and selectors were evaluated by electrostatic potential (V) analysis and molecular dynamics (MD). In this first part, the enantioseparation of 3,3 & PRIME;-dibromo-5,5 & PRIME;-bis-ferrocenylethynyl-4,4 & PRIME;-bipyridine bearing two ferrocenylethynyl units linked to an axially chiral core was performed and compared to that of the analyte featuring the same structural motif with two phenyl groups in place of the ferrocenyl moieties. The results of this study showed the superiority of the ferrocenyl compared to the phenyl group, as a structural element favouring enantiodifferentiation.Significance and novelty: Even if dispersion (London) forces have been envisaged acting in liquid-phase enantioseparations, focused studies to explore possible contributions of dispersion forces with polysaccharide carbamate-based selectors are practically missing. This study allowed us to collect experimental information that support the involvement of dispersion forces as contributors to liquid-phase enantioseparation, paving the way to a new picture in this field.
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页数:12
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