Literature DB >> 16104757

(EDT-TTF-CONH2)6[Re6Se8(CN)6], a metallic Kagome-type organic-inorganic hybrid compound: electronic instability, molecular motion, and charge localization.

Stéphane A Baudron1, Patrick Batail, Claude Coulon, Rodolphe Clérac, Enric Canadell, Vladimir Laukhin, Roberto Melzi, Pawel Wzietek, Denis Jérome, Pascale Auban-Senzier, Sylvain Ravy.   

Abstract

(EDT-TTF-CONH2)6[Re6Se8(CN)6], space group R, was prepared by electrocrystallization from the primary amide-functionalized ethylenedithiotetrathiafulvalene, EDT-TTF-CONH2 (E(1/2)1 = 0.49 V vs SCE in CH3CN), and the molecular cluster tetraanion, [Re6Se8(CN)6]4- (E(1/2) = 0.33 V vs SCE in CH3CN), equipped with hydrogen bond donor and hydrogen bond acceptor functionalities, respectively. Its Kagome topology is unprecedented for any TTF-based materials. The metallic state observed at room temperature has a strong two-dimensional character, in coherence with the Kagome lattice symmetry, and the presence of minute amounts of [Re6Se8(CN)6](3-)* identified by electron spin spectroscopy. A structural instability toward a distorted form of the Kagome topology of lesser symmetry is observed at ca. 180 K. The low-temperature structure is associated with a localized, electrically insulating electronic ground state and its magnetic susceptibility accounted for by a model of uniform chains of localized S = 1/2 spins in agreement with the 100 K triclinic crystal structure and band structure calculations. A sliding motion, within one out of the three (EDT-TTF-CONH2)2 dimers coupled to the [Re6Se8(CN6)(3-)*]/[Re6Se8(CN6)4-] proportion at any temperature, and the electronic ground state of the organic-inorganic hybrid material are analyzed on the basis of ESR, dc conductivity, 1H spin-lattice relaxation, and static susceptibility data which qualify a Mott localization in [EDT-TTF-CONH2]6[Re6Se8(CN)6]. The coupling between the metal-insulator transition and a structural transition allows for the lifting of a degeneracy due to the ternary axis in the high temperature, strongly correlated metallic phase which, in turn, leads to Heisenberg chains at low temperature.

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Year:  2005        PMID: 16104757     DOI: 10.1021/ja0523385

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  5 in total

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Authors:  Florian Fetzer; Andre Maier; Martin Hodas; Olympia Geladari; Kai Braun; Alfred J Meixner; Frank Schreiber; Andreas Schnepf; Marcus Scheele
Journal:  Nat Commun       Date:  2020-12-03       Impact factor: 14.919

5.  Hierarchical nanosheets built from superatomic clusters: properties, exfoliation and single-crystal-to-single-crystal intercalation.

Authors:  Jonathan A Kephart; Catherine G Romero; Chun-Chih Tseng; Kevin J Anderton; Matthew Yankowitz; Werner Kaminsky; Alexandra Velian
Journal:  Chem Sci       Date:  2020-08-03       Impact factor: 9.825

  5 in total

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