A single-atom iron catalyst on hierarchical N-doped carbon for highly efficient oxygen reduction in Zn-air batteries

Single-atom iron electrocatalysts have emerged as up-and-coming alternatives to platinum-based catalysts for the oxygen reduction reaction. However, their further development has been impeded by complex fabrication procedures and limitations in long-term stability. This study developed a chemical vapor deposition approach for synthesizing an efficient iron single-atom electrocatalyst denoted as Fe-SA@NC, utilizing vaporized ferrocene to deposit on a hierarchical N-doped carbon derived from ZIF-8. The preparation process maintained the initial pore structure throughout the deposition process by utilizing a two-step pyrolysis, preventing the collapse or deformation of the pore structure and frameworks. The optimized catalyst exhibited an exceptional half-wave potential (0.932 V) and kinetic current density (28.38 mA cm−2 at 0.9 V vs. RHE), along with high turnover frequency (36.37 s−1) and mass activity (5.68 A mg−1), and remarkable long-term stability in an alkaline electrolyte, exceeding those of commercial Pt/C and most previously reported iron-based electrocatalysts. Moreover, it also demonstrated outstanding practicability in both liquid and solid Zn-air batteries. The formation of well-dispersed Fe-N4 with strong interaction on hierarchical N-doped carbon was verified in the correlation of the structural activity and the excellent performance of Fe-SA@NC. This work sheds some light on the facile synthesis of single-atom catalysts with effective efficiency and stability. © 2024 The Royal Society of Chemistry.

Авторы
Gu J.-F. , Wang J. , Wu Q. , Wang C. , Verpoort F. , Chaemchuen S.
Издательство
Royal Society of Chemistry
Номер выпуска
27
Язык
Английский
Страницы
16528-16536
Статус
Опубликовано
Том
12
Год
2024
Организации
  • 1 State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, 122 Luoshi Road, Wuhan, 430070, China
  • 2 School of Civil Engineering and Architecture, Wuhan University of Technology, 122 Luoshi Road, Wuhan, 430070, China
  • 3 Joint Institute of Chemical Research (FFMiEN), Peoples Friendship University of Russia (RUDN University), 6 Miklukho-Maklaya Str., Moscow, 117198, Russian Federation
  • 4 Department of Chemical Engineering, Faculty of Engineering, Mahidol University, Nakhon Pathom, 73170, Thailand
Ключевые слова
Alkalinity; Atoms; Carbon; Chemical vapor deposition; Doping (additives); Electrolytes; Electrolytic reduction; Iron; Iron compounds; Nitrogen compounds; Organometallics; Oxygen; Pore structure; Zinc air batteries; Zinc compounds; Doped carbons; Iron catalyst; Long term stability; N-doped; Oxygen Reduction; Oxygen reduction reaction; Platinum based catalyst; Pores structure; Single-atoms; ]+ catalyst; Electrocatalysts
Цитировать
Поделиться

Другие записи