尿素酶
尿素
化学
催化作用
电化学
氨
无机化学
铵
联轴节(管道)
杂质
尿素氨挥发
过程(计算)
氮气
色谱法
分解
作者
Tianshang Shan,Hongpan Rong,Zechao Zhuang,Jie Yang,李生华,Jiatao Zhang,Siping Pang,Dingsheng Wang
标识
DOI:10.1038/s41467-026-75519-2
摘要
As a feasible path for the green and sustainable synthesis of urea, electrochemical C-N coupling reactions have attracted considerable attention. To achieve high catalytic coupling performances, efficient electrocatalysts are indispensable. Notably, precise quantification of urea serves as the cornerstone for assessing catalyst performance. Urease can catalyze the decomposition of urea into ammonium (NH4+), and this process is widely used in the quantification of electrocatalytic urea synthesis via calculating the increase of NH4+ concentration. Unexpectedly, NH4+ impurities are present in all four commercial ureases, posing a substantial risk of false-positive of urea concentration. Even when using the urease with the lowest content of NH4+ impurity, the false-positive production rate of urea can exceed most reported performance thus far in electrocatalytic urea synthesis. Therefore, we recommend a simple procedure that adds NH4+ impurity of commercial ureases as a subtractive term into the equation of conventional urease method for reliable urea quantification. The accuracy of the refined urease method is validated in previously reported CO2/NO3− system, thereby ensuring reliable development in urea electrosynthesis. Electrochemical urea synthesis offers a green route to convert carbon and nitrogen waste into valuable chemicals, but reliable urea quantification remains challenging. Here, the authors reveal ammonia impurities in commercial ureases and establish a refined protocol to reduce false-positive risks.
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