Direct ammonia protonic ceramic fuel cells through heterogeneous interfaces engineering

Zuoqing Liu, Minghao Tao, Ming Xiao, Junbiao Li, Ruijia Xu, Bin Chen, Tao Li, Guangming Yang, Yuan Zhang, Nai Shi, Ran Ran, Wei Wang, Wei Zhou, Zongping Shao

Research output: Contribution to journalArticlepeer-review

Abstract

Ammonia, as an ideal carbon-free hydrogen carrier, enables direct application in protonic ceramic fuel cells while bypassing energy-intensive hydrogen regeneration. However, conventional Ni-based anodes for direct ammonia protonic ceramic fuel cells (DA-PCFCs) suffer from weak interfacial coupling and structural instability. Herein, we report a strategy of anodic heterogeneous engineering to build a strongly coupled Ni-BaZr0.1Ce0.7Y0.1Yb0.1O3-δ interface combined with a Cs2O-decorated Ru catalyst for surface modification. This design enhances ammonia decomposition by providing a highly interconnected network that facilitates efficient proton conduction and electron transfer, while the Ru catalyst introduces abundant active sites with superior ammonia adsorption capacity. The cell delivers a peak power density of 1.01 W cm−2 at 650°C and maintains 98.1% of its initial ammonia decomposition activity after 200 h at 500°C of operation. By overcoming the bottlenecks of DA-PCFCs, this study paves the way for their practical application in carbon-neutral energy systems.

Original languageEnglish
Article number101365
JournalChem Catalysis
DOIs
StateAccepted/In press - 2025

Keywords

  • ammonia
  • ammonia decomposition
  • anode
  • direct ammonia protonic ceramic fuel cells
  • interface engineering
  • SDG9: Industry, innovation, and infrastructure

Fingerprint

Dive into the research topics of 'Direct ammonia protonic ceramic fuel cells through heterogeneous interfaces engineering'. Together they form a unique fingerprint.

Cite this