One-step propylene purification from a quaternary mixture by a single physisorbent

P Peixin Zhang (Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering) Z Zhensong Qiu (Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering) Y Yechen Liu (Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering) S Sen Chen L Lifeng Yang X Xian Suo (Institute for Intelligent Bio/Chem Manufacturing) X Xili Cui (Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering) H Huabin Xing (Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering)

Abstract

Abstract One-step removal of multiple impurities implemented by adsorptive separation is an efficient and simple process to afford high purity products, but is hindered by the lack of advanced porous materials that could capture different types of molecules. Herein, a series of novel metal-organic frameworks ZU-921 to ZU-924 with cooperative binding environment of integrated aromaticity surface and fluorine/oxygen electronegative sites are designed, and ZU-921 is presented as the demonstration that solves the long-standing challenge in one-step propylene (C 3 H 6 ) purification from the C3 quaternary mixture. The selective recognition ability towards alkyne, allene, alkane than alkene implemented by ZU-921 is attributed to the optimal interaction contribution from polarizability and dipole/quadruple moments that is realized by the fine-tuned density of parallelly-distributed electronegative sites via ligand engineering strategy. Ultra-high purity (99.99%) C 3 H 6 could be directly obtained from the C3 quaternary mixture (C 3 H 4 /C 3 H 4 (PD)/C 3 H 8 /C 3 H 6 1 v/1 v/3 v/95 v) with the productivity of 17.27 L/kg derived from the 10-times scale-up column (1.0 cm × 50 cm) breakthrough experiment. This work not only presents a common strategy in advanced adsorbents design for multiple impurities capture but also provides an energy-efficient alternative for C 3 H 6 purification.

Article Details

Volume / Issue Vol. 16, Issue 1
Published December 13, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (8)

P

Peixin Zhang

Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering

Z

Zhensong Qiu

Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering

Y

Yechen Liu

Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering

S

Sen Chen

L

Lifeng Yang

X

Xian Suo

Institute for Intelligent Bio/Chem Manufacturing

X

Xili Cui

Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering

H

Huabin Xing

Zhejiang Key Laboratory of Intelligent Manufacturing for Functional Chemicals, College of Chemical and Biological Engineering