催化作用
脱氢
材料科学
涂层
化学工程
铂金
氢
催化剂载体
碳纤维
非阻塞I/O
保形涂层
纳米
纳米技术
化学气相沉积
多相催化
金属有机骨架
工业催化剂
碳纳米管
沉积(地质)
制氢
烯烃纤维
作者
Marcel F G Disl,Derrick Ng,Jurie Swart,Franziska Auer,Stephan Kiermaier,Monica Distaso,Peter Wasserscheid,Christian Hornung,Zongli Xie
标识
DOI:10.1021/acssuschemeng.6c00102
摘要
High Resolution Image Download MS PowerPoint Slide The efficient immobilization of active catalyst materials onto surfaces of complex scaffold geometries remains a key challenge in the development of high-performance structured reactor systems. We demonstrate, for the first time, a carbon-based coating for the direct deposition of a carbon black-supported platinum catalyst onto an additively manufactured stainless steel catalytic static mixer (CSM). The conformal carbon-based coating provides mechanical stability comparable to that of conventional alumina supports while offering a chemically robust interface for catalyst immobilization. In liquid organic hydrogen carrier hydrogenation and dehydrogenation, the carbon-coated CSMs exhibit higher activity than industrial benchmark catalysts and reduced side product formation in the dehydrogenation, relative to alumina-based catalysts. Moreover, the carbon-based catalyst enables dual functionality within a single catalyst system, eliminating the need for separate hydrogenation and dehydrogenation catalysts. Beyond catalytic performance, the integration of the carbon coating with the structured stainless steel CSM architecture enhances heat/mass transfer and reduces pressure drop, offering distinct advantages over pelletized and slurry-based systems. The developed carbon-based CSM offers a versatile platform that extends the reach of carbon-based catalysis across diverse catalytic processes.
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