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Synergistic Brønsted/Lewis acid sites in amorphous ZrPO for Tandem electrocatalytic nitrate reduction to ammonia

  • Yu Sun
  • , Runzhi Wang
  • , Yiling Bai
  • , Zijian Gao
  • , Tahseen Ahmed
  • , Zhifei Zhong
  • , Yuqing Zhang
  • , Xuehua Zhang
  • , Menglei Yuan
  • , Guangjin Zhang
  • CAS - Institute of Process Engineering
  • University of Chinese Academy of Sciences
  • Synfuels China Co., Ltd.
  • Shandong Normal University

Research output: Contribution to journalArticlepeer-review

Abstract

Electrocatalytic nitrate reduction to ammonia (NO3-RR) is a highly promising pathway for wastewater treatment and sustainable nitrogen cycling. However, the electrocatalytic efficiency in conventional crystalline electrocatalysts is limited by sluggish proton-coupled electron transfer (PCET) kinetics, resulting from the lack of atomic sites for active *H generation and rapid proton transfer. To address this issue, we fabricate amorphous zirconium pyrophosphate (ZrPO) benchmark catalysts that featuring a high density of Brønsted and Lewis acid sites. In situ electrochemical attenuated total reflection infrared spectroscopy and differential electrochemical mass spectrometry elucidated that Lewis acid sites readily promote the adsorption and activation of NO3-. Kinetic isotope effect (KIE), tert-butanol quenching experiments and theoretical calculations demonstrate that Brønsted acid sites can facilitate H2O dissociation to generate active *H species and accelerate their migration. The synergistic interplay between Brønsted and Lewis acid sites ensures the efficient conversion of NO3-, the effective supply of active *H species and rapid surface proton transfer, which collectively lower the kinetic barrier of the PCET process. Thus, amorphous ZrPO with both lewis and Brønsted acid sites achieves the NH₃ yield rate of 2.57 mol gcat⁻¹ h⁻¹ and a Faradaic efficiency of 95.0%, which is about 2-fold higher than crystalline ZrPO without Brønsted acid sites. This work not only provides new insights into the electrochemical mechanism of NO3-RR but also offers guidance for the rational design of high-performance electrocatalysts.

Original languageEnglish
Article number126856
JournalApplied Catalysis B: Environmental
Volume394
DOIs
StatePublished - 5 Oct 2026

Keywords

  • Ammonia electrosynthesis
  • Brønsted/Lewis acid synergies
  • Electrocatalytic nitrate reduction
  • Proton-coupled electron transfer

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