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Pore-Space Partition and Optimization for Propane-Selective High-Performance Propane/Propylene Separation
Author(s) -
Anh N. Hong,
Huajun Yang,
Tong Li,
Yong Wang,
Yanxiang Wang,
Xiaoxia Jia,
Angel Zhou,
Emily Kusumoputro,
Jinping Li,
Xianhui Bu,
Pingyun Feng
Publication year - 2021
Publication title -
acs applied materials and interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.535
H-Index - 228
eISSN - 1944-8252
pISSN - 1944-8244
DOI - 10.1021/acsami.1c10391
Subject(s) - propane , selectivity , materials science , chemical engineering , adsorption , distillation , organic chemistry , chemistry , catalysis , engineering
The development of effective propane (C 3 H 8 )-selective adsorbents for the purification of propylene (C 3 H 6 ) from C 3 H 8 /C 3 H 6 mixture is a promising alternative to replace the energy-intensive cryogenic distillation. However, few materials possess the dual desirable features of propane selectivity and high uptake capacity. Here, we report a family of pore-space-partitioned crystalline porous materials (CPM) with remarkable C 3 H 8 uptake capacity (up to 10.9 mmol/g) and the highly desirable yet uncommon C 3 H 8 selectivity (up to 1.54 at 0.1 bar and 1.44 at 1 bar). The selectivity-capacity synergy endows them with record-performing C 3 H 8 /C 3 H 6 separation potential (i.e., C 3 H 6 recovered from the mixture). Moreover, these CPMs exhibit outstanding properties including high stability, low regeneration energy, and multimodular chemical and geometrical tunability within the same isoreticular framework. The high C 3 H 8 /C 3 H 6 separation performance was further confirmed by the breakthrough experiments.

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