Vascular‐Mimetic 2D Membranes with Hemoglobin Catalysis for Efficient Uranium Extraction

S Siqi Han W Wenbin Liang (MOE Frontiers Science Center for Rare Isotopes Lanzhou University Lanzhou 730000 China) H Hongyan Wan (MOE Frontiers Science Center for Rare Isotopes Lanzhou University Lanzhou 730000 China) L Longlong Tian (MOE Frontiers Science Center for Rare Isotopes Lanzhou University Lanzhou 730000 China) C Chuanxi Wen (MOE Frontiers Science Center for Rare Isotopes Lanzhou University Lanzhou 730000 China) Q Qiang Wu (Jiangsu Cancer Hospital Nanjing China) Z Zhan Li (Plant Biology Section, School of Integrative Plant Science, Cornell University) X Ximeng Chen (Frontiers Science Center for Rare Isotopes, Lanzhou University 1 , Lanzhou 730000,) W Wangsuo Wu

Abstract

Abstract The extraction of uranium from seawater is crucial for sustainable nuclear energy development but is challenged by its ultralow concentration, the presence of competing ions, and the high energy demands of conventional methods. Membrane separation is a promising alternative, owing to its in simplicity, low energy consumption, and scalability. However, current membranes fail to achieve the selectivity and efficiency required for uranium capture. Herein, this study introduces a bioinspired graphene oxide‐red blood cells (GO‐RBC) membrane, that mimics vascular transport for ultra‐selective uranium extraction. In the innovative GO‐induced remodeling of red blood cell, hemoglobin (Hb) adsorbs onto the hydrophobic regions of GO and, phospholipids self‐assemble into concentric hydrophilic rings around Hb. This unique “island‐reef” structure within the membrane channels forces ions to follow an S‐shaped path, thereby enhancing interactions with Hb. In addition, Hb catalytically reduces U(VI) to U(IV), enabling trapping of uranium while allowing competing ions to pass through. The membrane achieves an unprecedented U/V selectivity (110.6), far outperforming current technologies. Moreover, the GO‐RBC membrane exhibited exceptional antifouling properties, mechanical robustness, and long‐term stability. This study provides a scalable, energy‐efficient solution for uranium extraction from seawater, further opening new pathways for the development of biomimetic membranes for application in resource recovery.

Article Details

Volume / Issue Vol. 38, Issue 1
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

S

Siqi Han

W

Wenbin Liang

MOE Frontiers Science Center for Rare Isotopes Lanzhou University Lanzhou 730000 China

H

Hongyan Wan

MOE Frontiers Science Center for Rare Isotopes Lanzhou University Lanzhou 730000 China

L

Longlong Tian

MOE Frontiers Science Center for Rare Isotopes Lanzhou University Lanzhou 730000 China

C

Chuanxi Wen

MOE Frontiers Science Center for Rare Isotopes Lanzhou University Lanzhou 730000 China

Q

Qiang Wu

Jiangsu Cancer Hospital Nanjing China

Z

Zhan Li

Plant Biology Section, School of Integrative Plant Science, Cornell University

X

Ximeng Chen

Frontiers Science Center for Rare Isotopes, Lanzhou University 1 , Lanzhou 730000,

W

Wangsuo Wu