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Tuning Charge-State Localization in a Semiconductive Iron(III)–Chloranilate Framework Magnet Using a Redox-Active Cation

Authors :
van Koeverden, Martin P.
Abrahams, Brendan F.
D’Alessandro, Deanna M.
Doheny, Patrick W.
Hua, Carol
Hudson, Timothy A.
Jameson, Guy N. L.
Murray, Keith S.
Phonsri, Wasinee
Robson, Richard
Sutton, Ashley L.
Source :
Chemistry of Materials; September 2020, Vol. 32 Issue: 17 p7551-7563, 13p
Publication Year :
2020

Abstract

The elucidation of mechanisms to modulate the properties of multifunctional electroactive, conductive, and magnetic porous materials is desirable to aid their future application. The synthesis and characterization of a two-dimensional (2D) mixed-valence metal–tetraoxolene coordination polymer containing a redox-active dication, (PhenQ)[Fe2(Clan)3]·solvent (1; Clann–= deprotonated 3,6-dichloro-2,5-dihydroxy-1,4-benzoquinone; PhenQ2+= 5,6-dihydropyrazino[1,2,3,4-lmn][1,10]-phenanthrolindiium), are reported. The PhenQ2+cation in 1introduces additional accessible framework redox states and effectively directs the localization of ligand valence states. Static and dynamic magnetic susceptibility measurements demonstrated that the dimethylformamide (DMF) solvate, 1b, undergoes spontaneous magnetization below Tc= 31 K, with variable-temperature electrical conductivity measurements revealing that 1bis a modest semiconductor with a conductivity of σ295K= 4.9 × 10–4S cm–1(Ea= 0.249(2) eV). In concert, these results demonstrate that introducing noncovalent interactions between anionic metal–tetraoxolene frameworks and redox-active cations is an effective method to alter the electronic structure and properties of these porous frameworks. Moreover, they forecast the synthesis of new anionic metal–tetraoxolene compounds with diverse electronic and magnetic properties using this hitherto unused strategy.

Details

Language :
English
ISSN :
08974756
Volume :
32
Issue :
17
Database :
Supplemental Index
Journal :
Chemistry of Materials
Publication Type :
Periodical
Accession number :
ejs53962051
Full Text :
https://doi.org/10.1021/acs.chemmater.0c03132