Related Experiment Video
Updated: Jan 27, 2026

Quantification of the Abundance and Charging Levels of Transfer RNAs in Escherichia coli
Published on: August 22, 2017
Homometallic Intervalence Charge Transfer Band of Co(II/III) Induced by Phase Transitions in a Heterometallic Co-W
Kazuki Nakamura1,2, Koji Nakabayashi1,2, Yuito Nosaka1
1Department of Chemistry School of Science The University of Tokyo 7-3-1 Hongo, Bunkyo-ku Tokyo 113-0033 Japan.
Abstract:
A photomagnet, Co8[W(CN)8]5Cl·(pyrazine)11·21H2O, exhibiting Class II mixed valency due to homometallic intervalence charge transfer (IVCT) between CoII and CoIII centers, is synthesized. The compound features a 3D cyanido-bridged CoW coordination network composed of two crystallographically independent Co sites (Co1 and Co2) and one W site. Rectangular tubular structures formed by Co1-W bridges are further crosslinked by the Co2 sites. Defects in the [W(CN)8] sites enable the formation of pyrazine bridges between the Co1 sites. Upon cooling, the compound undergoes a two-step thermal phase transition, attributed to heterometallic charge-transfer-induced spin transitions between high- and low-spin electronic states. The first-step charge transfer (CT) phase transition leads to the formation of homometallic [CoII-pyrazine-CoIII] bridges, producing a near-infrared IVCT band at 2300 nm. Photoirradiation at 785 nm at 3 K induces a transition to a photoinduced (PI1) phase. The PI1 phase also shows a homometallic IVCT band due to the emergence of the [CoII-pyrazine-CoIII] state. Subsequent photoirradiation at 532 nm to the PI1 phase induces a transition to the paramagnetic photoinduced (PI2) phase. This study demonstrates the modulation of electronic states in a phase transition material and a photomagnet, enabled by homo- and heterometallic CT processes.
Related Concept Videos
Ions and Ionic Charges
Formal Charges
Atomic Radii and Effective Nuclear Charge
Phase Transitions
Electric Charges
The English physicist William Gilbert studied the phenomenon of static electricity in...
Charge on a Conductor

