固氮酶
氧化还原
化学
电子转移
催化作用
氨生产
氨
电化学
电子传输链
钴新统
光化学
组合化学
无机化学
固氮
聚合物
有机化学
生物化学
聚合
氮气
茂金属
电极
物理化学
作者
Yoo Seok Lee,Mengwei Yuan,Rong Cai,Koun Lim,Shelley D. Minteer
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2020-06-05
卷期号:10 (12): 6854-6861
被引量:55
标识
DOI:10.1021/acscatal.0c01397
摘要
Nitrogenase is the only biological catalyst that is known to be able to convert nitrogen gas to ammonia. In microorganisms, the MoFe catalytic protein of nitrogenase is reduced by a transient Fe protein binding and separate hydrolysis of ATP. However, the requirement of 16 ATP molecules by the Fe protein for the 8 electron transfer is an energy-intense caveat to the enzymatic synthesis of NH 3 and is challenging from an electrochemical perspective. Thus, we report the redox polymer-based ATP-free mediated electron-transfer system of MoFe nitrogenase using cobaltocene-functionalized poly(allylamine) (Cc-PAA), which is able to reduce the MoFe nitrogenase directly with a low redox potential of −0.58 V vs SHE. An efficient immobilization of MoFe nitrogenase via Cc-PAA allowed for the bioelectrocatalytic reduction of N 3 –, NO 2 –, and N 2 to NH 3 . Bulk bioelectrosynthetic experiments produced 7 ± 2 and 30 ± 5 nmol of NH 3 from NO 2 – and N 3 – reduction for 30 min, respectively. In addition, biosynthetic N 2 reduction to NH 3 was confirmed by 15 N 2 labeling experiments with NMR analysis. This mediated electron-transfer approach of the immobilized nitrogenase using the Cc-PAA redox polymer provides a valuable technological basis for scale-up and industrial uses in the future of bioelectrosynthesis.
科研通智能强力驱动
Strongly Powered by AbleSci AI