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A Microdroplet-Confined Precipitation Route to Small-Sized Porous Catalysts and Thermal-Tolerant BaCO3-CuZnAlO for H2
Xiaohui Zhong1, Xiaoliang Yang1, Shoujie Liu2
1School of Chemical and Environmental Engineering, Hydrogen Energy Technology Research Center of Wuhu, Anhui Engineering Research Center for Clean Catalysis, Anhui Polytechnic University, Beijing Middle Road, Wuhu241000, China.
Abstract:
Small sizes of active particles and porous microstructures are important features of advanced industrial catalysts. This work presents a microdroplet-confined precipitation (MDCPr) method to synthesize porous hydroxycarbonate precursors for deriving dual-porous and small-sized catalysts. In addition, their morphology can be further regulated through the addition of polymers. Moreover, MDCPr is demonstrated to be a general and scalable method for synthesizing versatile porous small-sized oxides, including low-/medium-entropy CuZnAlO, NiZnAlO, and NiCuZnAlO, to high-entropy NiCoCuZnAlO. Specifically, the model reaction of water-gas shift shows that the activity of a porous BaCO3-CuZnAlO catalyst is 2-2.5 times that of traditional solution precipitation and BaCO3-free Cu-ZnAlO catalysts. More valuable, BaCO3-CuZnAlO exhibits outstanding sintering resistance. Demonstrated by the practical H2 production from CH3OH steam reforming, the activity hardly deteriorates after working for 8 days at 320 °C and another 2 days at 330 °C. The in situ X-ray studies show that the thermally stable BaCO3 plays a key role in inhibiting the sintering of active Cu nanoparticles. These findings establish MDCPr as a versatile and scalable methodology for high-throughput screening and the development of highly efficient thermal catalysts.
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