Ultrathin cobalt-based nanosheets containing surface oxygen promoted near-complete nitrate removal

  • Ding Li
  • , Xin Yu Zhang
  • , Jia Fang Xie*
  • , Jie Jie Chen
  • , Quan Bao Zhao
  • , Lin Liu
  • , Wei Kang Wang
  • , Wen Wei Li
  • , Han Qing Yu
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Electrocatalytic nitrate removal offers a sustainable approach to alleviate nitrate pollution and to boost the anthropogenic nitrogen cycle, but it still suffers from limited removal efficiency at high rates, especially at low levels of nitrate. Herein, we report the near-complete removal of low-level nitrate (10–200 ppm) within 2 h using ultrathin cobalt-based nanosheets (CoNS) containing surface oxygen, which was fabricated from in-situ electrochemical reconstruction of conventional nanosheets. The average nitrate removal of 99.7 % with ammonia selectivity of 98.2 % in 9 cyclic runs ranked in the best of reported catalysts. Powered by a solar cell under the winter sun, the full-cell nitrate electrolysis system, equipped with ultrathin CoNS, achieved 100 % nitrogen gas selectivity and 99.6 % total nitrogen removal. The in-situ Fourier Transform Infrared included experiments and theoretical computations revealed that in-situ electrochemical reconstruction not only increased electrochemical active surface area but also constructed surface oxygen in active sites, leading to enhanced stabilization of nitrate adsorption in a symmetry breaking configuration and charge transfer, contributing to near-complete nitrate removal on ultrathin CoNS. This work provides a strategy to design ultrathin nanocatalysts for nitrate removal.

Original languageEnglish
Pages (from-to)383-391
Number of pages9
JournalJournal of Colloid and Interface Science
Volume672
DOIs
StatePublished - 15 Oct 2024

Keywords

  • Electrochemical nitrate reduction
  • Electrochemical reconstruction
  • In-situ spectroscopy characterization
  • Surface oxygen
  • Ultrathin nanosheets

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