Supramolecular Enhancement of Electrochemical Nitrate Reduction Catalyzed by Cobalt Porphyrin Organic Cages for Ammonia Electrosynthesis in Water

Pub Date : 2023-04-24 DOI:10.26434/chemrxiv-2022-09q8t-v2
Lun An, Mina Narouz, Peter Smith, Patricia De La Torre, Christopher Chang
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Abstract

The electrochemical nitrate (NO3ˉ) reduction reaction (NO3RR) to ammonia (NH3) represents a sustainable approach for denitrification to balance global nitrogen cycles and an alternative to traditional thermal Haber-Bosch processes. Here, we present a supramolecular strategy for promoting NH3 production in water from NO3RR by integrating two-dimensional (2D) molecular cobalt porphyrin (CoTPP) units into a three-dimensional (3D) porous organic cage architecture. The porphyrin box CoPB-C8 enhances electrochemical active site exposure, facilitates substrate-catalyst interactions, and improves catalyst stability, leading to turnover numbers and frequencies for NH3 production exceeding 200,000 and 56 s-1, respectively. These values represent a 15-fold increase in NO3RR activity and 200-mV improvement in overpotential for the 3D CoPB-C8 box structure compared to its 2D CoTPP counterpart. Synthetic tuning of peripheral alkyl substituents highlights the importance of supramolecular porosity and cavity size on electrochemical NO3RR activity. These findings establish the incorporation of 2D molecular units into 3D confined space microenvironments as an effective supramolecular design strategy for enhancing electrocatalysis.
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钴卟啉有机笼催化硝酸电化学还原水中氨电合成的超分子强化研究
电化学硝酸(NO3)还原反应(NO3RR)生成氨(NH3)是平衡全球氮循环的可持续反硝化方法,也是传统热Haber-Bosch工艺的替代方案。在这里,我们提出了一种超分子策略,通过将二维(2D)分子钴卟啉(CoTPP)单元整合到三维(3D)多孔有机笼结构中,促进NO3RR在水中产生NH3。卟啉盒CoPB-C8增强了电化学活性位点暴露,促进了底物-催化剂的相互作用,提高了催化剂的稳定性,导致NH3生成的周转率和频率分别超过20万和56 s-1。这些数值表明,与2D CoTPP相比,3D CoPB-C8盒状结构的NO3RR活性增加了15倍,过电位提高了200 mv。外围烷基取代基的合成调谐强调了超分子孔隙度和空腔尺寸对电化学NO3RR活性的重要性。这些发现表明,将二维分子单元整合到三维密闭空间微环境中是一种有效的超分子设计策略,可以增强电催化作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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