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Electronic Confinement Induced Single Atom Functionality in Hydroxylamine Synthesis Unveiled by Constant Potential
Changgeng Wei1, Huan Li2, Qianxiao Wang2,3
1Institute For Theoretical Physics and Bremen Center For Computational Materials Science, University of Bremen, Bremen, 28359, Germany.
Abstract:
Electrochemical nitric oxide (NO) reduction offers a sustainable route for hydroxylamine (NH2OH) synthesis. Single-atom catalysts (SACs), featuring isolated metal centers and weaker adsorbate binding than extended metals, are widely regarded as ideal NH2OH-selective catalysts. However, the recent observation of NH2OH production on highly reactive metals challenges this conventional viewpoint and indicates that SACs are not indispensable in hydroxylamine electrosynthesis. Here, we establish a unified picture in which electronic confinement induces single-atom functionality that underlies NH2OH selectivity. Specifically, our constant-potential simulations identify the competition between *HNO and *NOH formation as a key determinant of NH2OH versus NH3 selectivity, with preferential *HNO formation directing the reaction toward NH2OH production. Grand canonical Monte Carlo simulations further reveal that highly reactive metals undergo operando surface restructuring, generating isolated metal centers that acquire single-atom functionality and preferentially stabilize *HNO. Electronic structure analysis uncovers a unified origin of *HNO preference: heteroatom coordination induces strong orbital hybridization, narrowing the metal d-band and localizing the electronic states of the isolated metal centers. This electronic confinement enables balanced *HNO-metal interactions while preserving the intramolecular N─O bond, thereby stabilizing *HNO and promoting NH2OH selectivity. These findings establish electronic confinement as a promising and general design principle for developing NH2OH-selective electrocatalysts beyond predefined SACs.