电解质
阴极
陶瓷
材料科学
接口(物质)
燃料电池
化学工程
激光器
化学
复合材料
电极
工程类
润湿
物理化学
光学
物理
坐滴法
作者
Tianyi Zhou,Huang Hua,Yuqing Meng,J.R. Conrad,Minda Zou,Zeyu Zhao,Kyle S. Brinkman,Jianhua Tong
出处
期刊:ACS energy letters
[American Chemical Society]
日期:2024-08-26
卷期号:: 4557-4563
标识
DOI:10.1021/acsenergylett.4c01785
摘要
Protonic ceramic fuel cells have attracted much attention due to their good performance at intermediate temperatures (400–700 °C). However, the highly resistive electrolyte-cathode interface has been discovered to be a crucial obstacle inhibiting further cell improvements in performance. Herein, using a model cell material system of BaCe0.7Zr0.1Y0.1Yb0.1O3-δ electrolyte, 40 wt % BaCe0.7Zr0.1Y0.1Yb0.1O3-δ + 60 wt % NiO anode, and BaCo0.4Fe0.4Zr0.1Y0.1O3-δ cathode, we proved that the laser ablation of electrolyte surfaces could accurately remove chemistry discrepancy, increase microroughness, and create versatile patterns for engineering electrolyte/cathode interfaces toward decreased ohmic and polarization resistances. The cells with laser cross-patterned interfaces quadrupled the peak power density of those with pristine interfaces, achieving around 1.4 W/cm2 at 650 °C, among the highest performance regions. The stability testing for 180 h showed no noticeable performance degradation. This laser engineering process is more scalable and ubiquitous than the recently reported chemical-processing methodologies and is suitable for manufacturing a wide range of solid oxide cells.
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