Nanocurvature-induced field effects enable control over the activity of single-atom electrocatalysts

Author:

Wang BingqingORCID,Wang Meng,Fan ZitingORCID,Ma Chao,Xi Shibo,Chang Lo‐Yueh,Zhang Mingsheng,Ling Ning,Mi Ziyu,Chen ShenghuaORCID,Leow Wan RuORCID,Zhang JiaORCID,Wang DingshengORCID,Lum YanweiORCID

Abstract

AbstractTuning interfacial electric fields provides a powerful means to control electrocatalyst activity. Importantly, electric fields can modify adsorbate binding energies based on their polarizability and dipole moment, and hence operate independently of scaling relations that fundamentally limit performance. However, implementation of such a strategy remains challenging because typical methods modify the electric field non-uniformly and affects only a minority of active sites. Here we discover that uniformly tunable electric field modulation can be achieved using a model system of single-atom catalysts (SACs). These consist of M-N4 active sites hosted on a series of spherical carbon supports with varying degrees of nanocurvature. Using in-situ Raman spectroscopy with a Stark shift reporter, we demonstrate that a larger nanocurvature induces a stronger electric field. We show that this strategy is effective over a broad range of SAC systems and electrocatalytic reactions. For instance, Ni SACs with optimized nanocurvature achieved a high CO partial current density of ~400 mA cm−2 at >99% Faradaic efficiency for CO2 reduction in acidic media.

Funder

Agency for Science, Technology and Research

National Research Foundation Singapore

Publisher

Springer Science and Business Media LLC

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