Yu-Xian Zhang, Meng-Zhen Sun, Yuan-Yuan Cui, Cheng-Xiong Yang
The development of stationary phases capable of providing diverse interaction mechanisms is of critical importance for expanding the applicative scope of supercritical fluid chromatography (SFC). Although imidazole-functionalized materials have demonstrated considerable promise in high-performance liquid chromatography by virtue of their hydrogen bonding, π-π, and electrostatic interactions, their application and systematic evaluation in SFC remain largely unexplored. To address this gap, we herein report the synthesis, characterization, and chromatographic evaluation of a novel imidazole-bonded silica stationary phase (SiO2-IM-2) for SFC. The successful immobilization of 2-methylimidazole onto silica was confirmed by Fourier transform infrared spectroscopy, nitrogen adsorption-desorption isotherms, and elemental mapping. The separation performance of the SiO2-IM-2 packed column was systematically assessed using polycyclic aromatic hydrocarbons (PAHs), non-steroidal anti-inflammatory drugs (NSAIDs), anilines, and sulfonamides (SAs) as the probes. Under optimized conditions (10 % methanol modifier for NSAIDs, SAs, and anilines; 6 % methanol for PAHs; 308 K; 130 bar), the SiO2-IM-2 column afforded rapid and baseline resolution for all four classes of compounds, achieving high column efficiency (up to 33,386 plates m-1 for ketoprofen) and excellent resolution. Notably, the stationary phase exhibited superior performance relative to conventional C18 and unmodified silica columns. Mechanistic investigations indicated a synergistic multi-modal retention mechanism involving the imidazole ring as the principal interactive moiety during SFC separation. Overall, this study introduces the SiO2-IM-2 phase as a robust and selective stationary phase for SFC, thereby expanding the portfolio of available separation materials for this technique.