A tris-azo anion radical ligand wrapped multiple redox singlet Co(II) complex for efficient molecular memristor towards neuromorphic computing

Abstract

Achieving multilevel conduction in a cost-effective transition metal complex of a redox-active ligand will be an efficient way of designing a molecular memristor. This paper presents a rare example of a tris-azo anion radical ligand wrapped singlet five-coordinate low-spin Co(II) complex, [(L)˙⁻Co(II)]PF6, [1]PF6, that showed solution-processible resistive switching memory with synaptic functionality. The single-crystal X-ray structure, variable-temperature magnetic studies, and DFT calculations of [1]PF₆ showed that it has one electron reduced ligand, [L]˙⁻ which is antiferromagnetically coupled with the low-spin Co(II) center resulting in an s = 0 ground state. The [1]PF₆ showed multiple reversible and quasi-reversible redox events, insisting to explored as a molecular memristor. The indium tin oxide/[1]PF6/Ag memristor demonstrated excellent switching property with a large ON/OFF ratio (>103), endurance (>500 cycles), retention time (>104 s), and stability at an elevated temperature (100 °C). Moreover, on applying pulsed electrical stimuli, the memristor exhibits potentiation and depression behavior, a key feature for synaptic plasticity. The device was SET at cathodic potential, and thus, the facile ligand-based reductions in [1]PF6 played a decisive role in the device.

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Article information

Article type
Research Article
Submitted
24 Sep 2025
Accepted
17 Jan 2026
First published
19 Jan 2026

Inorg. Chem. Front., 2026, Accepted Manuscript

A tris-azo anion radical ligand wrapped multiple redox singlet Co(II) complex for efficient molecular memristor towards neuromorphic computing

S. Rani, P. Kaith, S. P. Mahanta, M. Muskan, N. Yadav, A. Changotra, S. Bedanta, S. J. Prathapa, A. Bera and S. Samanta, Inorg. Chem. Front., 2026, Accepted Manuscript , DOI: 10.1039/D5QI01965F

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