Version 2 2023-02-21, 17:07Version 2 2023-02-21, 17:07
Version 1 2023-02-17, 17:43Version 1 2023-02-17, 17:43
journal contribution
posted on 2023-02-21, 17:07authored byJianye Liu, Kaijun Liang, Defu Yao, Rakesh Chilivery, Dajun Fan, Wenbin Chen, Guanli Chen, Sha Li, Zhen Li, Muwei Ji, Yibing Song
Designing
efficient and stable non-precious metal catalysts
remains
a significant challenge for formaldehyde (HCHO) oxidation, which is
an expected way to replace the employment of noble-metal catalysts.
Herein, a series of atomically dispersed Co catalysts are optimized
by evaporating nitrogen atoms and exploring their HCHO oxidation catalytic
performance. The results show that the prepared temperature can effectively
control the coordination regulation of the Co atomic site, which in
turn affects the catalytic oxidation activity. Our best catalyst,
the Co-N/C prepared at 1000 °C, exhibits superior activity with
92.8% of conversion at room temperature at a gas hourly space velocity
(GHSV) of 72,000 mL·g–1·h–1. Extensive characterizations combined with theoretical calculations
reveal that the high catalytic activity is attributed to the low-coordinated
center, which can be tailored by pyrolysis temperature. This work
provides an innovative strategy for catalyst design in the catalytic
oxidation reaction.