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Paper | Open Access

Levitation-guided disorder engineering unlocks efficient nitrite-to-ammonia electroconversion

Juhyeon Parka,Jayesh Cherusseria, Jayaraman Theerthagiria,Ahreum Mina,Anuj Kumarb, Gyeong-Ah KimcNivarthi Rajiv BharadwajaSanggyeong Leea Rimal Isaac R. S.d Myong Yong Choia,c ( )
Department of Chemistry (BK21 FOUR), Research Institute of Advanced Chemistry, Gyeongsang National University, Jinju 52828, Republic of Korea
Nano-Technology Research Laboratory, Department of Chemistry, GLA University, Mathura, Uttar Pradesh 281406, India
Core-Facility Center for Photochemistry & Nanomaterials, Gyeongsang National University, Jinju 52828, Republic of Korea
Department of Nanotechnology, Noorul Islam Centre for Higher Education, Kumaracoil, Thuckalay, Kanyakumari, Tamil Nadu 629180, India

† These authors contributed equally to this work.

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Abstract

Electrocatalytic conversion of nitrite (NO2) to ammonia (NH3) via the NO2 reduction reaction (eNO2RR) presents a promising approach. Prussian blue analog (PBA)–based electrocatalysts are potential candidates for eNO2RR owing to their good activity and selectivity. Herein, to the best of our knowledge, for the first time, we report a facile synthesis of a flower-like copper (Cu)–cobalt (Co) PBA sulfide (CuCoPBA-S) using pulsed laser irradiation in liquid and investigate its formation mechanism using acoustic levitation coupled with in situ Raman spectroscopy. This approach enables contaminant-free, rapid, and cost-effective synthesis of electrocatalysts. The sulfurization process is shown to be time-dependent in the formation of ordered/disordered flower-like CuCoPBA-S structures. CuCoPBA-S considerably influences the eNO2RR, achieving a NH3 faradaic efficiency (FE) of 80.91% and an NH3 yield rate of 3394.1 μg h−1 cm−2 at a fixed potential of −0.5 V vs. the reversible hydrogen electrode (RHE). Moreover, density functional theory analysis validates the eNO2RR pathway facilitated by CuCoPBA-S during the electrocatalytic conversion of NO2 to NH3, and the rate-determining step in the pathway is the hydrogenation of *NH2O to *NH2OH.

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Industrial Chemistry & Materials
Pages 690-705

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Cite this article:
Park J, Cherusseri J, Theerthagiri J, et al. Levitation-guided disorder engineering unlocks efficient nitrite-to-ammonia electroconversion. Industrial Chemistry & Materials, 2026, 4(5): 690-705. https://doi.org/10.1039/d6im00053c

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Received: 09 February 2026
Accepted: 08 May 2026
Published: 18 May 2026
© 2026 The Author(s).

This article is Licensed under CC-BY 4.0