4.6 Article

Confinement Effects on the Magnetic Ionic Liquid 1-Ethyl-3-methylimidazolium Tetrachloroferrate(III)

期刊

MOLECULES
卷 27, 期 17, 页码 -

出版社

MDPI
DOI: 10.3390/molecules27175591

关键词

ionic liquid; confinement; mesoporous silicas; magnetic materials; vibrational spectroscopy

资金

  1. National Dong Hwa University
  2. Ministry of Science and Technology of Taiwan [MOST 110-2113-M-259-006]
  3. Northeastern State University Faculty Research Council
  4. National Science Foundation [DMR-1719875]
  5. National Center for Research Resources (NCRR), a component of the National Institutes of Health (NIH) [P20RR016478]

向作者/读者索取更多资源

Confinement effects on the magnetoresponsive ionic liquid [C(2)mim]FeCl4 are investigated from thermal, spectroscopic, and magnetic perspectives. The study reveals that placing the ionic liquid inside mesoporous silica has a significant impact on its response to temperature, pressure, and magnetic fields. Confinement also impedes ion transport.
Confinement effects for the magnetoresponsive ionic liquid 1-ethyl-3-methylimidazolium tetrachloroferrate(III), [C(2)mim]FeCl4, are explored from thermal, spectroscopic, and magnetic points of view. Placing the ionic liquid inside SBA-15 mesoporous silica produces a significant impact on the material's response to temperature, pressure, and magnetic fields. Isobaric thermal experiments show melting point reductions that depend on the pore diameter of the mesopores. The confinement-induced reductions in phase transition temperature follow the Gibbs-Thomson equation if a 1.60 nm non-freezable interfacial layer is postulated to exist along the pore wall. Isothermal pressure-dependent infrared spectroscopy reveals a similar modification to phase transition pressures, with the confined ionic liquid requiring higher pressures to trigger phase transformation than the unconfined system. Confinement also impedes ion transport as activation energies are elevated when the ionic liquid is placed inside the mesopores. Finally, the antiferromagnetic ordering that characterizes unconfined [C(2)mim]FeCl4 is suppressed when the ionic liquid is confined in 5.39-nm pores. Thus, confinement provides another avenue for manipulating the magnetic properties of this compound.

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