Sub-4 nanometer porous membrane enables highly efficient electrodialytic fractionation of dyes and inorganic salts

J Jiuyang Lin Z Zijian Yu T Tianci Chen J Junming Huang (Paul and Marcia Center on Contemporary China) L Lianxin Chen J Jiangjing Li X Xuewei Li X Xiaolei Huang J Jianquan Luo E Elisa Yun Mei Ang W William Toh P Peng Cheng Wang T Teng Yong Ng D Dong Han Seo S Shuaifei Zhao K Kuo Zhong M Ming Xie (Department of Chemical Engineering) W Wenyuan Ye B Bart Van der Bruggen Y Yinhua Wan

Abstract

Abstract During the synthesis of dyes, desalination of high-salinity dye-containing waste liquor is a critical premise for high-quality, clean dye production. Conventional membrane processes, such as electrodialysis, nanofiltration and ultrafiltration, are inevitably subjected to serious membrane fouling, deteriorating the dye/salt fractionation efficacy. Integrating the technical merits of electrodialysis and pressure-driven membrane separation, we devise an electro-driven filtration process using a tight ultrafiltration membrane as alternative to conventional anion exchange membrane for rapid anion transfer, in view of dye desalination and purification. By employing a sub-4 nanometer tight ultrafiltration membrane as anion conducting membrane, the electro-driven filtration process achieves 98.15% desalination efficiency and 99.66% dye recovery for one-step fractionation of reactive dye and NaCl salt, markedly outperforming the system using commercial anion exchange membranes. Notably, the electro-driven filtration system displays a consistently high and stable fractionation performance for dyes and salts with unprecedentedly low membrane fouling through an eight-cycle continuous operation. Our results demonstrate that the electro-driven filtration process using nanoporous membranes as high-performance anion conducting membranes shows a critical potential in fractionation of organic dyes and inorganic salts, unlocking the proof of concept of nanoporous membranes in electro-driven application.

Article Details

Volume / Issue Vol. 16, Issue 1
Published April 17, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (20)

J

Jiuyang Lin

Z

Zijian Yu

T

Tianci Chen

J

Junming Huang

Paul and Marcia Center on Contemporary China

L

Lianxin Chen

J

Jiangjing Li

X

Xuewei Li

X

Xiaolei Huang

J

Jianquan Luo

E

Elisa Yun Mei Ang

W

William Toh

P

Peng Cheng Wang

T

Teng Yong Ng

D

Dong Han Seo

S

Shuaifei Zhao

K

Kuo Zhong

M

Ming Xie

Department of Chemical Engineering

W

Wenyuan Ye

B

Bart Van der Bruggen

Y

Yinhua Wan