Structural Originof the Improved Ionic Conductancein CeO-ZrO-CeO Triple-LayerElectrolytes for Thin-Film Solid Oxide Fuel Cells

  • Kim, Dongha; 
  • Moon, Minyae; 
  • Jung, Hangyeol; 
  • Oh, Seongkook; 
  • Shim, Cheol-Hwee; 
  • ... Son, Ji-Won; 
  • 외 3명
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초록

To lower the operation temperature of solid oxide fuel cells, thin-film electrolytes have attracted considerable attention, but their chemical instability and mechanical defects hinder their performance. To address these issues, gadolinia-doped ceria (GDC)-yttria-stabilized zirconia (YSZ)-GDC trilayer (CZC) thin-film electrolytes have been developed, wherein the fuel-side GDC layer provides high ionic conductivity and densifies the YSZ, and the cathode-side GDC chemically protects the YSZ electrolyte from the lanthanum strontium cobaltite cathode. Electrochemical impedance spectroscopy shows that the measured ionic conductance of CZC electrolytes is 3-4 times higher than the simple sum of the single-layer conductance of YSZ and GDC in series. This enhancement does not depend on the growth temperature, as low-temperature-deposited then annealed films perform comparably to their high-temperature-grown counterparts. X-ray diffraction and electron microscopy reveal that the YSZ layer in the CZC electrolytes forms highly continuous columnar grains with a markedly decreased grain boundary density, minimizing lattice discontinuities along the ion transport pathways. Grain-orientation mapping confirms predominantly low-angle columnar boundaries rather than the highly misoriented interfaces that would impede ion transport. These observations suggest that the CZC trilayer conductance is enhanced by the single-crystal-like columnar growth of YSZ, facilitated by its crystallographic compatibility with the underlying GDC. Collectively, these findings establish the practicality of CZC trilayers as a high-performance thin-film electrolyte operable at lower temperatures, providing microstructural design guidelines for interface-engineered solid oxide ion conductors. This approach highlights how interface-guided microstructural engineering can unlock unexpected transport properties in such conductors, offering broad implications for next-generation energy devices.

키워드

SOFC; electrolyte; columnar structure; ion conductor; low-temperature deposition; YTTRIA-STABILIZED ZIRCONIA; GADOLINIA-DOPED CERIA; ELECTRICAL-PROPERTIES; PLANE CONDUCTIVITY; TEMPERATURE; PERFORMANCE; ELECTRODES; THICKNESS; CATHODE; SINGLE
제목
Structural Originof the Improved Ionic Conductancein CeO-ZrO-CeO Triple-LayerElectrolytes for Thin-Film Solid Oxide Fuel Cells
저자
Kim, Dongha; Moon, Minyae; Jung, Hangyeol; Oh, Seongkook; Shim, Cheol-Hwee; Yang, Sungeun; Lee, Jong-Ho; Son, Ji-Won; Kwon, Deok-Hwang
DOI
10.1021/acsnano.6c02036
발행일
2026-08-04
유형
Article
저널명
ACS Nano
권
20
호
30
페이지
21081 ~ 21092