Increased stability of nitroxide radicals in ionic liquids: more than a viscosity effect.

Phys Chem Chem Phys

School of Chemistry, Monash University, Wellington Rd, Clayton, VIC 3800, Australia.

Published: February 2019

AI Article Synopsis

  • This study focuses on the role of ionic liquids in stabilizing distonic radicals, significant for polymerization and organic batteries, highlighting the importance of the SOMO-HOMO conversion in controlling radical stability.
  • EPR measurements showed that the ionic liquids exhibited much higher rotational diffusion constants compared to conventional solvents like dichloromethane, indicating strong interactions between the radical and ionic liquid ions.
  • The research revealed that temperature changes affected ionic liquid viscosity but not the radical's rotational diffusion, and strong correlations were found between interaction energies and diffusion constants, suggesting a pathway for designing ionic liquids to enhance nitroxide radical stability.

Article Abstract

Radical stability has been subject to continuous research due to its importance in polymerization as well as in all-organic batteries. Recently, the SOMO-HOMO conversion was identified as the main factor in controlling the stability of distonic radicals, for which the negative charge resides on the same molecule. Based on this finding, the idea of ionic liquids stabilizing radicals was hypothesized in this study. A series of ionic liquids were tested in EPR measurements of the 3-carboxy-2,2,5,5-tetramethyl-pyrroline-1-oxyl. Unusually high rotational diffusion constants (τR), 4 times larger compared to conventional media such as dichloromethane (DCM), were recorded at room temperature. This finding could only be explained by a strong interaction existing between the radical and ionic liquid ions, which was confirmed with quantum chemical calculations, with interaction energies falling between -17.1 kJ mol-1 for tetramethylphosphonium tetrafluoroborate and -85.6 kJ mol-1 for 1,3-dimethylimidazolium triflate. Elevated temperature measurements performed at 80 °C reduced the viscosity of the ionic liquids to that of DCM, while the τR values remained relatively high, thus further confirming that the rotational hindrance occurred due to radical-ionic liquid interactions. The calculated interaction energies between the radical and ionic liquids ions were also found to correlate well with experimental rotational diffusion constants, thus offering us a valuable tool in tailoring ionic liquids for enhanced stability of nitroxide radicals. The findings of this study showcase the ability of ionic liquids to reduce reactivity of nitroxides without the need for any chemical modification of the radical.

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http://dx.doi.org/10.1039/c8cp04854aDOI Listing

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