Electronic‐Structure‐Directed Pore Engineering in Metal–Organic Frameworks for Molecular Sieving of C <sub>3</sub> F <sub>6</sub> /C <sub>3</sub> F <sub>8</sub>

X Xiangyang Zhang Q Qi Ding X Xuannuo Yi Q Qingxue Hui Y Yu‐Hao Gu (State Key Laboratory of Coordination Chemistry School of Chemistry and Chemical Engineering Nanjing University Nanjing China) J Jiali Fu K Kuan Lu (State Key Laboratory of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, Department of Chemical Biology, College of Chemistry) D Deli Li C Chaoyue Fang (School of Chemistry and Chemical Engineering Southeast University Nanjing China) Y Ye Xu S Shuai Yuan (State Key Laboratory of Coordination Chemistry, Key Laboratory of Mesoscopic Chemistry of MOE, Jiangsu Key Laboratory of Advanced Organic Materials, School of Chemistry and Chemical Engineering) W Wei Wang Z Zhaoqiang Zhang (State Key Laboratory of Coordination Chemistry, School of Chemistry and Chemical Engineering)

Abstract

ABSTRACT Trace removal of hexafluoropropylene (C 3 F 6 ) from octafluoropropane (C 3 F 8 ) is crucial for producing high‐purity fluorinated electronic gases, yet it remains highly challenging because of their similar molecular dimensions. Here, we report an electronically driven pore‐engineering strategy for C 3 F 6 /C 3 F 8 separation, in which Jahn–Teller‐active Cu 2+ directs framework reconstruction from the large‐aperture channels of ZnTPO (H 3 TPO = tris(4‐carboxyphenyl) phosphine oxide) to the narrow cage‐like pore network of CuHTPO, thereby switching the separation behavior from co‐adsorption to molecular sieving. Consequently, CuHTPO delivers &gt; 99.999% pure C 3 F 8 with productivities of 314.9 and 2819 L kg −1 from 1/9 and 1/99 C 3 F 6 /C 3 F 8 mixtures, respectively. Optical imaging at the single‐particle level directly visualizes the rapid transport of C 3 F 6 through the channels, while single‐crystal X‐ray diffraction, FTIR spectroscopy, and molecular simulations collectively elucidate the structural origin of the electronically regulated sieving behavior. Taken together, this work positions electronic‐structure‐directed pore reconstruction as a powerful material‐design strategy for programming confined pore spaces, enabling robust and recyclable molecular sieving of closely related gases.

Article Details

Volume / Issue Vol. 1, Issue 1
Published June 30, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

X

Xiangyang Zhang

Q

Qi Ding

X

Xuannuo Yi

Q

Qingxue Hui

Y

Yu‐Hao Gu

State Key Laboratory of Coordination Chemistry School of Chemistry and Chemical Engineering Nanjing University Nanjing China

J

Jiali Fu

K

Kuan Lu

State Key Laboratory of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, Department of Chemical Biology, College of Chemistry

D

Deli Li

C

Chaoyue Fang

School of Chemistry and Chemical Engineering Southeast University Nanjing China

Y

Ye Xu

S

Shuai Yuan

State Key Laboratory of Coordination Chemistry, Key Laboratory of Mesoscopic Chemistry of MOE, Jiangsu Key Laboratory of Advanced Organic Materials, School of Chemistry and Chemical Engineering

W

Wei Wang

Z

Zhaoqiang Zhang

State Key Laboratory of Coordination Chemistry, School of Chemistry and Chemical Engineering