- By:
- Wang, Tao ; Siniard, Kevin M; Li, Meijia; Polo Garzon, Felipe ; Liu, Jue ; Zhuo, Zengqing; Guo, Jinghua; Ivanov, Aleksandr ; Kobayashi, Takeshi; Tan, Kui; Amagbor, Stella; Ali maruf, Abdullah; Kelber, Jeffry; Yang, Shize; Song, Haohong; JIang, De-en; Duscher, Gerd; Yang, Zhenzhen ; Dai, Sheng
- Journal Name:
- Nature Communications
- Page Number:
- 9948
- Volume:
- 16
- Issue Number:
- 1
- Publication Date:
- December 5, 2025
- View DOI Listing:
- https://doi.org/10.1038/s41467-025-64886-x
Abstract
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.