A Microporous Multi‐Cage Metal–Organic Framework for an Effective One‐Step Separation of Branched Alkanes Feeds

Author:

Zhou Lin1234,Brântuas Pedro56,Henrique Adriano5678,Reinsch Helge9,Wahiduzzaman Mohammad10,Grenèche Jean‐Marc11,Rodrigues Alírio E.78,Silva José A. C.56,Maurin Guillaume10ORCID,Serre Christian1ORCID

Affiliation:

1. Institut des Matériaux Poreux de Paris, ESPCI Paris, Ecole Normale Supérieure, CNRS PSL University 75005 Paris France

2. Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering Zhejiang University 310027 Hangzhou China

3. Institute of Applied Micro-Nano Materials, School of Physical Science and Engineering Beijing Jiaotong University 100044 Beijing China

4. Zhejiang Baima Lake Laboratory Co., Ltd. 310052 Hangzhou China

5. Centro de Investigação de Montanha (CIMO) Instituto Politécnico de Bragança, Campus de Santa Apolónia 5300-253 Bragança Portugal

6. Laboratório Associado para a Sustentabilidade e Tecnologia em Regiões de Montanha (LA SusTEC) Instituto Politécnico de Bragança, Campus de Santa Apolónia 5300-253 Bragança Portugal

7. Laboratory of Separation and Reaction Engineering (LSRE), Associate Laboratory LSRE/LCM Department of Chemical Engineering, Faculty of Engineering University of Porto Rua Dr. Roberto Frias, S/N 4200-465 Porto Portugal

8. Associate Laboratory in Chemical Engineering (ALiCE), Faculdade de Engenharia Universidade do Porto, R. Dr. Roberto Frias, S/N 4200-465 Porto Portugal

9. Department for Inorganic Chemistry University of Kiel Max-Eyth Straße 2 24118 Kiel Germany

10. ICGM Univ. Montpellier, CNRS, ENSCM 34293 Montpellier France

11. Institut des Molécules et Matériaux du Mans (IMMM), UMR 6283 CNRS Le Mans Université 72085 Le Mans Cedex 9 France

Abstract

AbstractThe improvement of the Total Isomerization Process (TIP) for the production of high‐quality gasoline with the ultimate goal of reaching a Research Octane Number (RON) higher than 92 requires the use of specific sorbents to separate pentane and hexane isomers into classes of linear, mono‐ and di‐branched isomers. Herein we report the design of a new multi‐cage microporous Fe(III)‐MOF (referred to as MIP‐214, MIP stands for materials of the Institute of Porous Materials of Paris) with a flu‐e topology, incorporating an asymmetric heterofunctional ditopic ligand, 4‐pyrazolecarboxylic acid, that exhibits an appropriate microporous structure for a thermodynamic‐controlled separation of hydrocarbon isomers. This MOF produced via a direct, scalable, and mild synthesis route was proven to encompass a unique separation of C5/C6 isomers by classes of low RON over high RON alkanes with a sorption hierarchy: (n‐hexane≫n‐pentane≈2‐methylpentane>3‐methylpentane)low RON≫(2,3‐dimethylbutane≈i‐pentane≈2,2‐dimethylbutane)high RON following the adsorption enthalpy sequence. We reveal for the first time that a single sorbent can efficiently separate such a complex mixture of high RON di‐branched hexane and mono‐branched pentane isomers from their low RON counterparts, which is a major achievement reported so far.

Funder

National Natural Science Foundation of China

Fundação para a Ciência e a Tecnologia

Publisher

Wiley

Reference44 articles.

1. Seven chemical separations to change the world

2. T. C. Holcombe n-Paraffin-isoparaffin separation process U.S. Patent 41760531979.

3. T. C. Holcombe Total isomerization process U.S. Patent 42107711980.

4. A. Minkkinen L. Mank S. Jullian Process for the isomerization of C5/C6 normal paraffins with recycling of normal paraffins U.S. Patent 52331201995.

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