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具有多孔碳氮化物催化剂的光学和电催化解耦硅光阴极用于氮还原,法拉第效率超过61.8% 。

Optically and Electrocatalytically Decoupled Si Photocathodes with a Porous Carbon Nitride Catalyst for Nitrogen Reduction with Over 61.8% Faradaic Efficiency.

作者信息

Peramaiah Karthik, Ramalingam Vinoth, Fu Hui-Chun, Alsabban Merfat M, Ahmad Rafia, Cavallo Luigi, Tung Vincent, Huang Kuo-Wei, He Jr-Hau

机构信息

KAUST Catalysis Center, King Abdullah University of Science and Technology, Thuwal, 23955-6900, Kingdom of Saudi Arabia.

Division of Physical Sciences and Engineering, King Abdullah University of Science and Technology, Thuwal, 23955-6900, Kingdom of Saudi Arabia.

出版信息

Adv Mater. 2021 May;33(18):e2100812. doi: 10.1002/adma.202100812. Epub 2021 Mar 31.

Abstract

The photoelectrochemical (PEC) approach is attractive as a promising route for the nitrogen reduction reaction (NRR) toward ammonia (NH ) synthesis. However, the challenges in synergistic management of optical, electrical, and catalytic properties have limited the efficiency of PEC NRR devices. Herein, to enhance light-harvesting, carrier separation/transport, and the catalytic reactions, a concept of decoupling light-harvesting and electrocatalysis by employing a cascade n np -Si photocathode is implemented. Such a decoupling design not only abolishes the parasitic light blocking but also concurrently improves the optical and electrical properties of the n np -Si photocathode without compromising the efficiency. Experimental and density functional theory studies reveal that the porous architecture and N-vacancies promote N adsorption of the Au/porous carbon nitride (PCN) catalyst. Impressively, an n np -Si photocathode integrating the Au/PCN catalyst exhibits an outstanding PEC NRR performance with maximum Faradaic efficiency (FE) of 61.8% and NH production yield of 13.8 µg h cm at -0.10 V versus reversible hydrogen electrode (RHE), which is the highest FE at low applied potential ever reported for the PEC NRR.

摘要

光电化学(PEC)方法作为一种有前景的用于氨(NH₃)合成的氮还原反应(NRR)途径具有吸引力。然而,在协同管理光学、电学和催化性能方面的挑战限制了PEC NRR装置的效率。在此,为了增强光捕获、载流子分离/传输以及催化反应,通过采用级联n-n⁺-p -Si光阴极实现了光捕获与电催化解耦的概念。这种解耦设计不仅消除了寄生光阻挡,还在不降低效率的情况下同时改善了n-n⁺-p -Si光阴极的光学和电学性能。实验和密度泛函理论研究表明,多孔结构和N空位促进了Au/多孔氮化碳(PCN)催化剂对N的吸附。令人印象深刻的是,集成了Au/PCN催化剂的n-n⁺-p -Si光阴极表现出出色的PEC NRR性能,在相对于可逆氢电极(RHE)为-0.10 V时,最大法拉第效率(FE)为61.8%,NH₃产率为13.8 µg h⁻¹ cm⁻²,这是PEC NRR在低施加电位下报道的最高FE。

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