祝贺岳晓康博士的论文发表在Green Energy & Environment期刊上
In-situ Encapsulation of Pt and Acid-Site Engineering in Hierarchical SAPO-11 for Enhanced Isomerization-cracking and Anti-Coking in Sustainable Aviation Fuel Production
Xiaokang Yue, Yufeng Hou, Luyao Xie, Fei Han, Zhongxu Zhang
, Qingxin Guan
*, Wei Li
* , Green Energy & Environment, 2026,
https://doi.org/10.1016/j.gee.2026.03.001
Highlights
-
•
A hierarchical Pt@SAPO-11-H catalyst was synthesized via in-situ encapsulation.
-
•
P123 creates mesopores and in-situ amorphous AlPO4 to moderate acidity.
-
•
A high SAF yield of 66.43% with i/n=4.12 was achieved from octadecane.
-
•
Superior stability over 100 h with anti-coking due to confined Pt clusters.
-
•
Versatile performance with real oils, boosting SAF yield to 82.00%.
Abstract
Isomerization-cracking is a critical step in the preparation of sustainable aviation fuel (SAF). The practical application of conventional Pt/SAPO-11 catalysts is hampered by several deactivation mechanisms: metal sintering, pore blockage, and inefficient mass transfer of bulky molecules, all contributing to unsustainable performance over time. To overcome these challenges, this study introduces a novel Pt@SAPO-11-H catalyst, where sub-nanometric Pt clusters are encapsulated within a hierarchically porous SAPO-11 framework. The synthesis employs a ligand-assisted in situ encapsulation strategy with P123 as a mesoprogen. Beyond constructing hierarchical porosity, a critical secondary role of P123: the formation of amorphous AlPO4 during crystallization, which selectively covers strong acid sites on SAPO-11. This acid-site engineering effectively suppresses excessive cracking, a key factor for maximizing SAF yield. Comprehensive characterizations confirmed the confinement of Pt clusters, the hierarchical pore structure, and the moderated acidity. Catalytic evaluation using octadecane as a model feedstock, achieving a 66.4% SAF yield with a 4.12 i/n ratio. The SAF yields of cottonseed oil, castor oil, palm oil, and tiger nut oil reached 82%, 70.2%, 79%, and 80% respectively. These results highlight the dual benefits of hierarchical porosity for enhanced diffusion and metal encapsulation for precise active site localization, offering a promising solution for scalable SAF production.