Logo image
Fe on molecular-layer MoS2 as inorganic Fe-S2-Mo motifs for light-driven nitrogen fixation to ammonia at elevated temperatures
期刊文章   開放取用(OA)

Fe on molecular-layer MoS2 as inorganic Fe-S2-Mo motifs for light-driven nitrogen fixation to ammonia at elevated temperatures

Jianwei Zheng, Lilin Lu, Konstantin Lebedev, Simson Wu, Pu Zhao, Ian J. McPherson, Tai-Sing Wu, Ryuichi Kato, Yiyang Li, Ping-Luen Ho, …
Chem Catalysis, 卷.1(1), 頁碼.162-182
06/2021

摘要

decentralization of ammonia production electron-hole pair recombination photocatalysis SDG7: Affordable and clean energy SDG9: Industry, innovation, and infrastructure single-atom catalyst thermal effect Organic Chemistry Physical and Theoretical Chemistry Chemistry (miscellaneous)
Current industrial production of ammonia from the Haber-Bosch process and its transport concomitantly produces a large quantity of CO 2 . Herein, we successfully synthesize inorganic-structure-based catalysts with [Fe-S 2 -Mo] motifs with a connecting structure similar to that of FeMoco (a cofactor of nitrogenase) by placing iron atoms on a single molecular layer of MoS 2 at various loadings. This type of new catalytic material functionally mimics the nitrogenase to convert N 2 to ammonia and hydrogen in water without adding any sacrificial agent under visible-light illumination. Using the elevated temperature boosts the ammonia yield and the energy efficiency by one order of magnitude. The solar-to-NH 3 energy-conversion efficiency can be up to 0.24% at 270°C, which is the highest efficiency among all reported photocatalytic systems. This method of ammonia production and the photocatalytic materials may open up an exciting possibility for the decentralization of ammonia production for fertilizer provision to local farmlands using solar illumination.

檔案與連結 (1)

url
https://doi.org/10.1016/j.checat.2021.03.002檢視
已出版(紀錄版本) 開放

相關連結

指標

1 檢視次數

詳細資料

Logo image