Nghia Le, Pere Miró
High Resolution Image Download MS PowerPoint Slide Polyoxovanadate–alkoxide clusters are redox-active molecular oxides offering profound electronic tunability. The oxygen-deficient species [(V 6 O 5 )(μ 6 -O)(μ 2 -OCH 3 ) 12 ] is an ideal platform for probing the multisite localization and delocalization of redox states. Here, we introduce the redox topology modulation which is governed by the position of the central μ 6 -O oxygen and ligand coordination at the oxygen-deficient site as the mechanism controlling the stability of different electromers. The noncoordinated cluster exhibits a localized, Robin–Day class I/II hybrid ground state, featuring a V(III) center at the vacancy defect. We demonstrate computationally that ligand-field tuning inverts this behavior; coordination of a strong donor destabilizes the localized topology, stabilizing an electromer with all V(IV) topology as the new ground state. Time-dependent density functional theory calculations show that photoexcitation of species where centers are V(IV) triggers photoinduced intervalence charge transfer regenerating a valence-trapped class II excited state. This work establishes the redox topology modulation as a rational design principle for molecular switches, where the fundamental electronic topology can be toggled by chemical stimulus and/or by light. Furthermore, our results suggest that the Robin–Day classification should be revised and extended for multicenter systems, where valence behavior is better understood as excitation-specific rather than molecular-specific.