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Probing and Mapping Electrode Surfaces in Solid Oxide Fuel Cells
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Large Area High-Performance Thin Film Solid Oxide Fuel Cell with Nanoscale Anode Functional Layer by Scalable

Kyoungjae Ju1, Seongkook Oh2,3, Jong Hyuk Lee4

  • 1Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, 37673, Republic of Korea.

Advanced Science (Weinheim, Baden-Wurttemberg, Germany)
|May 29, 2025
PubMed
Summary

This study developed a thin-film solid oxide fuel cell (TF-SOFC) with a nanostructured anode functional layer (n-AFL) using reactive magnetron sputtering. The n-AFL significantly enhances performance and power density, enabling efficient low-temperature operation.

Keywords:
nanostructured anode functional layerreactive sputteringsolid oxide fuel cellsthin‐film solid oxide cellstriple‐phase boundary

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Area of Science:

  • Materials Science
  • Electrochemistry
  • Energy Conversion

Background:

  • High-performance thin-film solid oxide cells (TF-SOCs) require a nanostructured anode functional layer (n-AFL) to extend the triple-phase boundary (TPB), especially for low-temperature operation.
  • Current n-AFL fabrication methods (>1 µm thickness) face challenges in large-scale production and productivity.

Purpose of the Study:

  • To demonstrate a scalable fabrication method for n-AFL in TF-SOCs.
  • To improve the performance of TF-SOCs through optimized n-AFL using reactive magnetron sputtering.
  • To evaluate the performance of TF-SOCs with n-AFL in large-area applications.

Main Methods:

  • Fabrication of n-AFL using mass-production-compatible reactive magnetron sputtering.
  • Optimization of n-AFL by adjusting oxygen partial pressure and sputtering power.
  • Performance testing of TF-SOCs with and without n-AFL at 650 °C.

Main Results:

  • Optimized n-AFL reduced ohmic and anodic polarization resistances by 63% and 34%, respectively.
  • Maximum power density increased by 89% (1.333 W cm⁻² vs 0.705 W cm⁻²) at 650 °C.
  • A large-scale (4 × 4 cm²) TF-SOFC with n-AFL achieved 19.4 W at 650 °C.

Conclusions:

  • Reactive magnetron sputtering is a viable mass-production technique for n-AFL in TF-SOCs.
  • The optimized n-AFL significantly enhances TF-SOC performance and power output.
  • This approach enables efficient, large-area TF-SOCs for practical energy applications.