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Published on: April 10, 2018
Stiboviologens-Decorated Sb4O6 Clusters for Electrocatalytic Proton Reduction via Coupled Electron Sponge and Proton
Liang Xu1,2, Jianyue He1, Yi Qiao1,2
1Frontier Institute of Science and Technology, Interdisciplinary Research Center of Frontier Science and Technology, State Key Laboratory for Strength and Vibration of Mechanical Structures, Engineering Research Center of Key Materials for Efficient Utilization of Clean Energy of Shaanxi Province, Xi'an Key Laboratory of Electronic Devices and Material Chemistry, Xi'an Jiaotong University, Xi'an, Shaanxi Province 710054, P. R. China.
Abstract:
Antimony (Sb)-based materials show great promise for hydrogen evolution reaction (HER) catalysis owing to their unique electronic structures and efficient proton-electron transfer capabilities. However, despite their potential, the molecular-level development of Sb-based catalysts has been hindered by significant synthetic challenges, particularly the difficulty in constructing well-defined molecular architectures, such as Sb-porphyrins or clusters. Herein, we report a new synthetic strategy to access two novel stiboviologens-decorated Sb4O6 clusters (SbVO-Me and SbVO-Ph) via directed oxidative coupling of stiboviologens. SbVO-Me and SbVO-Ph exhibit excellent redox activity, multielectron transfer capacity, and robust electrochromic behavior. DFT calculations and electrostatic potential mapping analyses reveal a cooperative electron-proton management mechanism: the viologen moiety acts as an "electron sponge," mediating charge accumulation and delivery, while the tetraantimony hexaoxide (Sb4O6) core serves as a "proton engine" to accelerate proton transport. In homogeneous acidic HER catalysis, the system achieves an overpotential of 535 mV with a Faradaic efficiency of 74.5%. Upon immobilization, the heterogeneous system delivers enhanced activity with a reduced overpotential of 182 mV. Mechanistic investigations support a cooperative catalytic pathway involving the viologens and Sb centers. This study introduces stiboviologens as a new class of main-group molecular catalysts, expanding the design landscape for viologen-based redox systems and offering new opportunities in proton-coupled electrocatalysis.
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