脱氢
催化作用
材料科学
丙烷
生产力
限制
化学工程
航程(航空)
工艺工程
冶金
理论(学习稳定性)
表征(材料科学)
丙烯
高能
空间速度
纳米技术
热稳定性
空格(标点符号)
生产(经济)
数码产品
作者
Shangchen Lu,Yaxin Tang,Bingqing Yao,Yishui Ding,Huanhuan Yang,Shibo Xi,Kang Hui Lim,Chaokai Xu,Yankun Du,Xingjie Fu,Shengdong Tan,Binbin Zhao,Wenhao Yuan,C. Austin Wade,Dali Yang,Ma Lu,Sheng Dai,Sibudjing Kawi,Ning Yan,Jiong Lu
出处
期刊:
[Figshare (United Kingdom)]
日期:2026-05-27
被引量:1
标识
DOI:10.6084/m9.figshare.31743865
摘要
Propane dehydrogenation (PDH) processes typically operate at low weight-hourly space velocities (WHSV) about 10 h⁻¹ to ensure catalyst stability, limiting propylene productivity to around 0.1 molC3H6·gcatalyst-1·h-1. Here, we report that controlling the formation of sub-nm PtSn alloyed clusters encapsulated in silicalite-1 affords a catalyst that can sustain high propylene productivities. At 165 h⁻¹, the catalyst achieved about 1 molC3H6·gcatalyst-1·h-1 for over 300 hours, with >99% propylene selectivity. Furthermore, the spent catalyst can be effectively regenerated using simple air calcination. Detailed characterization and computational modelling attribute the high PDH performance to the distinctive electronic structures of the Pt sites within sub-nm alloyed clusters. The dynamic structures of these sub-nm alloyed clusters likely allow these Pt sites to access a broader range of electronic and structural configurations, expanding the reaction’s accessible energy landscape and effectively breaking the longstanding trade-off between productivity and stability that constrains conventional PDH catalysts.
科研通智能强力驱动
Strongly Powered by AbleSci AI