Elevating Nitrate Reduction through the Mastery of Hierarchical Hydrogen-Bond Networks
Ru-Yu Zhou1, Shisheng Zheng1,2, Xuan Liu1
1State Key Laboratory of Physical Chemistry of Solid Surfaces, iChEM, College of Chemistry and Chemical Engineering, College of Energy, College of Materials, School of Life Sciences, Xiamen University, Xiamen 361005, China.
None:
To effectively resolve environmental and industrial dilemmas, electrochemical reduction of nitrate (NO3-) to ammonia (NH3) offers a brilliant strategy for tackling pollution and creating economic value, but the scarcity and reduced reactivity of available interfacial water and reactive adsorbates represent ongoing obstacles. Here, we reform the water-ion networks via electrolyte concentration manipulation and electrode construction on atomically flat Au single-crystal surfaces. With the combination of in situ Raman spectroscopy and multifidelity theoretical simulations, we pinpoint H2O with dual hydrogen-bond donors as an observable indicator for nitrate electroreduction (NO3RR). A hierarchical configuration characterized by structured Li+·NO3- planes coupled with enriched hydrogen-bond networks is verified to streamline the reactive intermediates activation and proton transport, thus synergistically boosting NO3RR. We highlight the cooperative modulation of the interfacial water-ion interactions and the hydrogen-bond networks in optimizing NO3RR. Our findings unveil microscale viewpoint of synergy between the local ion-water interactions and connectivity of the hydrogen-bonding network.
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