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Updated: Sep 2, 2026

Magnetometric Characterization of Intermediates in the Solid-State Electrochemistry of Redox-Active Metal-Organic Frameworks
Published on: June 9, 2023
A trinuclear linear Co(II)-Y(III)-Co(II) complex exhibiting field-induced slow magnetic relaxation and
Sukhendu Bikash Samanta1, Soumalya Roy2, Joshi Ankitkumar Bharatbhai1
1Department of Basic Sciences, Chemistry Discipline, Institute of Infrastructure Technology Research And Management, Near Khokhra Circle, Maninagar East, Ahmedabad-380026, Gujarat, India. souravdas@iitram.ac.in.
Abstract:
Integrating multiple functionalities within a single molecular system is a key goal in modern coordination chemistry, particularly for coupling single-molecule magnet (SMM) behavior with electrocatalysis. In this work, a heterometallic trinuclear CoII-YIII-CoII complex (complex 1) is synthesized using a pyridine-based ligand, 2,2'-[{(1E,1'E)-pyridine-2,6-diyl-bis(methaneylylidene)}bis(azaneylylidene)diphenol] (LH2). Single-crystal X-ray diffraction analysis revealed that the complex adopted a linear Co-Y-Co configuration, forming a precise 180° angle with terminal Co(II) centers situated in distorted pentagonal bipyramidal N3O4 environments and a distorted octahedral Y(III) site. Additionally, intermolecular O-H⋯Cl hydrogen bonds further organized the lattice into one-dimensional supramolecular chains. Magnetic studies indicated dominant crystal-field effects with weak ferromagnetic coupling between Co(II) ions (J = 0.1482 cm-1), a significant axial zero-field splitting (D = 17.52 cm-1), and an enhanced g value (g = 2.3), consistent with easy-plane anisotropy and incomplete magnetization saturation. Despite the easy-plane anisotropy, ac susceptibility measurements revealed field-induced slow magnetic relaxation governed by competing field-suppressed QTM and field-enhanced direct processes, together with a field-independent contribution consistent with Raman-like two-phonon relaxation rather than a conventional Orbach pathway. When immobilized on nickel foam, the molecular complex functioned as an efficient OER precatalyst in 1 M KOH, requiring an overpotential of 323 mV to achieve 10 mA cm-2 with a Tafel slope of 126 mV dec-1 and stable operation for 50 h. Post-OER analysis confirmed in situ surface reconstruction to mixed-valent cobalt oxyhydroxide (Co-OOH), which constituted the catalytically active phase during water oxidation. The observed OER performance is comparable to representative cobalt-based molecular and precursor-derived systems under similar alkaline conditions.
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