Ultrafast charge-transfer-induced spin transition in cobalt-tungstate molecular photomagnets.

Nakamura, Kazuki; Guérin, Laurent; Privault, Gaël; Nakabayashi, Koji; Hervé, Marius; Collet, Eric; Ohkoshi, Shin-Ichi · Nat Commun · 2025

basic_science · Level V

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Abstract

In materials exhibiting photoinduced phase transitions, and in which both charge transfer and spin transitions occur, there has long been a debate about which process drives the phase transition. Herein, we present experimental evidence supporting an optically charge-transfer-induced spin transition (CTIST) process, as demonstrated through femtosecond optical spectroscopy in two-dimensional cyanido-bridged cobalt-tungstate photomagnets. Optical and magnetic studies revealed that the photoexcitation of the ground low-temperature (LT) Co<sup>III</sup><sub>LS</sub>-W<sup>IV</sup> state leads to a photoinduced phase transition towards the Co<sup>II</sup><sub>HS</sub>-W<sup>V</sup> state, which is similar to the high temperature (HT) state. Ultrafast spectroscopy further indicates that this optical excitation of the intermetallic W-to-Co charge-transfer band produces a transient photoexcited (PE) Co<sup>II</sup><sub>LS</sub>-W<sup>V</sup> state, which decays within 130 fs through a spin transition towards the Co<sup>II</sup><sub>HS</sub>-W<sup>V</sup> state. Here we show that the CTIST dynamics corresponds to the Co<sup>III</sup><sub>LS</sub>-W<sup>IV</sup> (LT) → Co<sup>II</sup><sub>LS</sub>-W<sup>V</sup> (PE) → Co<sup>II</sup><sub>HS</sub>-W<sup>V</sup> (HT) sequence. The present work sheds a new light on understanding optical dynamics underlying the photoinduced phase transitions.