Permeability and stability enhancement of dual-phase membrane by nickel-based porous layer for water splitting

被引:7
作者
Su, Fangchun
Cheng, Hongwei [1 ]
Liu, Yanbo
Sun, Qiangchao
Xu, Xiaofang
Chen, Jianguo
Xu, Qian
Lu, Xionggang [1 ]
机构
[1] Shanghai Univ, State Key Lab Adv Special Steel, Shanghai 200444, Peoples R China
基金
中国国家自然科学基金;
关键词
dual-phase ceramic membrane; Catalyst porous layer; Oxygen permeability; Thermochemical water splitting; Spin coating; METHANE PARTIAL OXIDATION; HOLLOW-FIBER MEMBRANE; OXIDE FUEL-CELL; OXYGEN PERMEABILITY; HYDROGEN-PRODUCTION; PEROVSKITE CATHODE; CO2; STABILITY; TEMPERATURE; SEPARATION; REACTOR;
D O I
10.1016/j.ceramint.2022.01.360
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The high oxygen permeability and stability of oxygen transport membrane (OTM) materials remain critical issues in the implementation of hydrogen production via thermochemical water splitting. In this study, a novel design of a fluorite phase Ce0.85Pr0.15O2-delta (CP) porous layer coupled with a nickel-based catalyst anchored to a dual-phase Ce0.85Pr0.15O2-delta-Pr0.6Sr0.4Fe0.9Al0.1O3-delta (CP-PSFA) ceramic membrane is developed owing to its excellent tolerance in the reductive atmosphere during static experiments. The oxygen permeability and hydrogen pro-duction performance of the modified CP-PSFA OTM were improved significantly with the coating of the CP porous layer; that is, a high O-2 permeation flux of 3.7 mL cm(-2) min(-1) at 925 ?C under a reductive atmosphere was achieved, which was approximately 43% higher than that of its counterpart. Meanwhile, after the nickel-based catalyst was loaded, the hydrogen production rate reached 1.79 mL cm(-2) min(-1) at 925 ?C with the condition of optimal catalyst loading (30 wt% NiO), which shows a 64% increase compared to its counterpart. In addition, the long-term stability of the modified membranes remained intact. The results prove that the CP porous layer loaded with a nickel-based catalyst improves the permeability of the CP-PSFA ceramic membrane as well as the stability, providing an effective strategy for the design of high-performance OTMs for thermochemical water splitting for hydrogen production.
引用
收藏
页码:14662 / 14671
页数:10
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