Intraphase Switching of Hollow CoCuFe Nanocubes for Efficient Electrochemical Nitrite Reduction to Ammonia
- Authors
- Min, Ahreum; Park, Jueun; Begildayeva, Talshyn; Theerthagiri, Jayaraman; Arumugam, Deepak; Moon, Cheol Joo; Ramasamy, Shankar; Choi, Myong Yong
- Issue Date
- Aug-2024
- Publisher
- American Chemical Society
- Keywords
- Prussian blue analog; electrochemical nitrite reduction; ammonia synthesis; CoCuFe oxide and alloy; pulsed laser irradiation in liquids
- Citation
- ACS Applied Materials & Interfaces, v.16, no.40, pp 53718 - 53728
- Pages
- 11
- Indexed
- SCIE
SCOPUS
- Journal Title
- ACS Applied Materials & Interfaces
- Volume
- 16
- Number
- 40
- Start Page
- 53718
- End Page
- 53728
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/73790
- DOI
- 10.1021/acsami.4c09663
- ISSN
- 1944-8244
1944-8252
- Abstract
- This study addresses the urgent need to focus on the nitrite reduction reaction (NO2-RR) to ammonia (NH3). A ternary-metal Prussian blue analogue (CoCuFe-PBA) was utilized as the template material, leveraging its tunable electronic properties to synthesize CoCuFe oxide (CoCuFe-O) through controlled calcination. Subsequently, a CoCuFe alloy (CoCuFe-A) was obtained via pulsed laser irradiation in liquids. The electrochemical properties of CoCuFe-O, derived from the PBA crystal structure, demonstrated a high yield of NH4+ at a rate of 555.84 mu mol h(-1) cm(-2), with the highest Faradaic efficiency of 91.8% and a selectivity of 97.3% during a 1-h NO2-RR under an optimized potential of -1.0 V vs. Ag/AgCl. In situ Raman spectroscopy revealed the collaborative role of redox pairs (Co3+/Co2+ and Fe3+/Fe2+) as proton (H+) suppliers, with Cu centers serving as NO2- binders, thereby enhancing the reaction rate. Additionally, theoretical studies confirmed that Fe and Co atoms are more reactive than Cu toward intermediates playing crucial roles in hydrogenation, while Cu primarily activates NO owing to hydrogenation by the Fe and Co atoms and a high kinetic barrier in H2O* adsorption. This comprehensive investigation provides valuable insights into the electrochemical NO2-RR, establishing a foundation for efficient and sustainable NH3 synthesis strategies.
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