Ultrafast charge-transfer-induced spin transition in cobalt-tungstate molecular photomagnets.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 40480987.
- Also identified by DOI 10.1038/s41467-025-60401-4 and PMC identifier 12144094.
- No licence information is recorded for this record.
- Because redistribution is not established, this page shows the abstract only. Follow the links below for the full text.
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.