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RESEARCH PRODUCT
Bistable Hofmann-Type FeII Spin-Crossover Two-Dimensional Polymers of 4-Alkyldisulfanylpyridine for Prospective Grafting of Monolayers on Metallic Surfaces
Rubén Turo-cortésM. Carmen MuñozCarlos Bartual-murguiManuel Meneses-sánchezJosé Antonio RealFrancisco Javier Valverde-muñozsubject
chemistry.chemical_classificationSpintronics010405 organic chemistryChemistrymedia_common.quotation_subjectFrustrationPolymer010402 general chemistry01 natural sciences0104 chemical sciencesInorganic ChemistryMetalHysteresisCrystallographySpin crossovervisual_artExcited stateMonolayervisual_art.visual_art_mediumPhysical and Theoretical Chemistrymedia_commondescription
Aiming at investigating the suitability of Hofmann-type two-dimensional (2D) coordination polymers {FeII(Lax)2[MII(CN)4]} to be processed as single monolayers and probed as spin crossover (SCO) junctions in spintronic devices, the synthesis and characterization of the MII derivatives (MII = Pd and Pt) with sulfur-rich axial ligands (Lax = 4-methyl- and 4-ethyl-disulfanylpyridine) have been conducted. The thermal dependence of the magnetic and calorimetric properties confirmed the occurrence of strong cooperative SCO behavior in the temperature interval of 100-225 K, featuring hysteresis loops 44 and 32.5 K/21 K wide for PtII-methyl and PtII/PdII-ethyl derivatives, while the PdII-methyl derivative undergoes a much less cooperative multistep SCO. Excluding PtII-methyl, the remaining compounds display light-induced excited spin-state trapping at 10 K with TLIESST temperatures in the range of 50-70 K. Single-crystal studies performed in the temperature interval 100-250 K confirmed the layered structure and the occurrence of complete transformation between the high- and low-spin states of the FeII center for the four compounds. Strong positional disorder seems to be the source of elastic frustration driving the multistep SCO observed for the PdII-methyl derivative. It is expected that the peripheral disulfanyl groups will favor anchoring and growing of the monolayer on gold substrates and optimal electron transport in the device.
year | journal | country | edition | language |
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2021-05-28 | Inorganic Chemistry |