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Updated: Jul 6, 2026

Development, Characterization, and Evaluation of CAGE-based Ionic Liquid Systems for Transdermal Delivery
Published on: September 26, 2025
Water-immiscible room temperature ionic liquids (RTILs) as drug reservoirs for controlled release
Vikas Jaitely1, Aysegül Karatas, Alexander T Florence
1Centre for Drug Delivery Research, The School of Pharmacy, University of London, 29/39 Brunswick Square, London WC1N 1AX, UK.
Abstract:
Water-immiscible room temperature ionic liquids (RTILs) have a largely unexplored potential as pharmaceutical solvents and reservoirs. This paper explores some relevant properties of the hexafluorophosphate (PF6(-)) salts of butyl, hexyl and octyl-3-methylimidazolium cations (BMIM, HMIM, OMIM, respectively). The dodecyl analogue is solid at room temperature, but its melting point can be lowered by addition of the lower homologues. Although water-immiscible, the liquids absorb water to an extent depending on their structure, the higher alkyl analogues having a lower affinity for absorbed water. The RTIL/water partition coefficients of sucrose, penicillin V potassium, dexametasone, progesterone and dehydro-epiandrosterone have been compared with octanol-water coefficients. The viscosities of the salts were measured in anhydrous, water-saturated and intermediate states. The PF6(-) ionic liquids display a low and decreasing aqueous solubility as the alkyl chain length is increased: 0.035 moll(-1) (BMIM), 0.032 moll(-1) (HMIM) and 0.09 moll(-1) (OMIM). The release of sucrose and dexametasone from RTIL reservoirs into water can be prolonged over 48 h. Saturated solutions of these RTILs show little toxicity towards Caco-2 cells, although the OMIM derivative, which is more surface-active, has a small effect on cell viability.
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