Tao Wang, Kevin M. Siniard, Meijia Li, Felipe Polo‐Garzon, Jue Liu, Zengqing Zhuo, Jinghua Guo, Alexander S. Ivanov, Takeshi Kobayashi, Kui Tan, Stella Amagbor, Abdullah Ali Maruf, Jeffry A. Kelber, Shize Yang, Haohong Song, De‐en Jiang, Gerd Duscher, Zhenzhen Yang, Sheng Dai
Efficient removal of trace acetylene from ethylene streams is essential for producing polymer-grade ethylene, yet achieving highly selective semihydrogenation without over-hydrogenation remains a long-standing challenge. A key barrier is the lack of a simple, low-cost catalyst that can activate hydrogen effectively while preventing ethylene from reacting further. Here we show that defect-rich boron nitride, prepared through a straightforward flux reconstruction method, serves as a highly selective and metal-free catalyst for acetylene semihydrogenation. The catalyst contains abundant open boron and nitrogen sites that enable efficient hydrogen activation and rapid release of ethylene, thereby avoiding over-hydrogenation. Experiments combined with isotope labeling and theoretical analysis reveal that these defects lower the energy barrier for hydrogen activation while accelerating product desorption. Our findings demonstrate a scalable strategy for defect engineering in boron nitride and highlight its potential as a robust, sustainable alternative to metal-based catalysts in industrial ethylene purification.