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"Thin film solid oxide fuel cell"

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"Thin film solid oxide fuel cell"

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Pinhole Detection in Thin Film Solid Oxide Electrolytes Using Selective Adsorption of Ag Nanoparticles via a Spark Discharge Generator
Doyoon Kim, Ikwhang Chang, Jong Dae Baek
J. Korean Soc. Precis. Eng. 2025;42(6):441-446.
Published online June 1, 2025
DOI: https://doi.org/10.7736/JKSPE.025.024
Pinhole-free ionic conductors are critical to achieve optimal performance in thin film-solid oxide fuel cells (TF-SOFCs). However, nanoscale defects, especially pinholes, can induce current leakage and contribute to cell failure by creating electrical short circuits. This study introduced a novel methodology for detecting pinholes in yttria-stabilized zirconia (YSZ) thin-film solid oxide electrolytes. The approach utilized selective adsorption of silver (Ag) nanoparticles generated via a spark discharge generator (SDG). Analytical techniques, including focused ion beam (FIB), scanning electron microscopy (SEM), and transmission electron microscopy (TEM), were employed to investigate interactions between Ag nanoparticles and nanoscale defects. Results showed that nanoparticle-based diagnostic methods were efficacious for defect characterization, offering a solution for enhancing the quality of thin-film electrolytes.
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Resistant Characteristics of AAO-Based Thin Film Solid Oxide Fuel Cells Using Ni-GDC Anode by GLAD Method
Jaewon Yoo, Myung Seok Lee, Yang Jae Kim, Suk Won Cha
J. Korean Soc. Precis. Eng. 2023;40(4):335-340.
Published online April 1, 2023
DOI: https://doi.org/10.7736/JKSPE.022.135
In this study, we fabricated thin film solid oxide fuel cells on nanoporous anodic aluminum oxide (AAO) substrate for low-temperature operation using the all-through sputtering method. To deposit up to a three-micrometer thick anode with both porosity and electrical conductivity, we used the glancing angle deposition and co-sputtering methods. For the anode materials, we used nickel gadolinium-doped-ceria (Ni-GDC) mixed ionic and electronic conductor (MIEC), which improved hydrogen oxidation reaction reactivity at the anode side. TF-SOFCs were successfully operated at 500℃, and 223.6 mW/cm² was their highest measured maximum power density. We conducted structural and electrochemical analyses to figure out cells’ unique resistant characteristics; ohmic resistance through the anode thin film and polarization resistance of reaction area near the narrowed anode pores. We found how the anode thin film thickness affects the current collecting performance and the anode reactivity, and their effects were qualitatively and quantitatively compared.
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Thin Film Process for Thin Film Solid Oxide Fuel Cells - A Review
Gu Young Cho, Yoon Ho Lee, Suk Won Cha
J. Korean Soc. Precis. Eng. 2018;35(12):1119-1129.
Published online December 1, 2018
DOI: https://doi.org/10.7736/KSPE.2018.35.12.1119
Thin film solid oxide fuel cells (TF-SOFCs) are considered to be a promising next generation energy conversion device. TFSOFCs have many advantages such as rapid turn-on and off, fuel flexibility, material flexibility, high power density and availability of compact system. Electrodes and electrolytes of TF-SOFCs are fabricated by thin film processes. In order to fabricate high performance TF-SOFCs, proper thin film processes have to be used due to the unique requirements of each part of the TF-SOFCs. This paper reviews the thin film deposition process for fabrication of TF-SOFCs and the advantages and disadvantages of physical and chemical vapor deposition processes. In addition, materials prepared through thin film processes and the performance results of TF-SOFCs are reviewed.

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  • Manipulating the grain boundary properties of BaCeO3-based ceramic materials through sintering additives introduction
    Gennady Vdovin, Anna Rudenko, Boris Antonov, Vacheslav Malkov, Anatoly Demin, Dmitry Medvedev
    Chimica Techno Acta.2019; 6(2): 38.     CrossRef
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