Constructing Continuous Interlayer Hydrogen‐Bond Network in Nanofluidic Clay Membranes for Fast Cation Conduction and Anti‐Swelling Osmotic Energy Generators

J Jiadong Tang (School of Chemistry and Molecular Engineering East China Normal University Shanghai 200241 China) Q Qianqian Zhang M Mengwei Zhang B Bing Liu C Chengze Lu (Beijing Key Laboratory For Green Catalysis and Separation State Key Laboratory of Materials Low‐Carbon Recycling College of Materials Science and Engineering Beijing University of Technology Beijing China) Y Yuhong Jin Q Quan‐Fu An (Beijing Key Laboratory For Green Catalysis and Separation State Key Laboratory of Materials Low‐Carbon Recycling College of Materials Science and Engineering Beijing University of Technology Beijing China)

Abstract

ABSTRACT Two‐dimensional clay nanofluidic membranes hold great promise for harvesting sustainable osmotic energy, yet their practical application is constrained by two core challenges. (1) The inherently tortuous and inefficient ion transport pathways within stacked nanosheet structures limit cation flux, and (2) the severe swelling of interlayer nanochannels in aqueous environments impairs ion selectivity and long‐term stability. To simultaneously tackle these challenges, we construct a continuous hydrogen‐bond network within the interlayer of a lamellar membrane (CHM) via a sequential crosslinking strategy. This engineered network serves a dual function: (1) establishing low‐energy barrier pathways to facilitate cation transport while (2) acting as a dynamic yet robust crosslinked matrix to anchor clay nanosheets for suppressing interlayer expansion. Experimental and theoretical results confirm that the negatively charged surface, in synergy with the hydrogen‐bond network, enables selective and rapid cation transport. The ionic conductivity of in‐plane transport reaches as high as 22 S m −1 in 1  m electrolyte. When employed for osmotic energy harvesting from artificial seawater and river water, the CHM delivers an impressive high‐power density of 22.7 W m −2 and maintains stable power output for over 30 days. Furthermore, an integrated osmotic power generator successfully drives multiple electronic devices, demonstrating its real‐world applicability.

Article Details

Volume / Issue Vol. 38, Issue 39
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

J

Jiadong Tang

School of Chemistry and Molecular Engineering East China Normal University Shanghai 200241 China

Q

Qianqian Zhang

M

Mengwei Zhang

B

Bing Liu

C

Chengze Lu

Beijing Key Laboratory For Green Catalysis and Separation State Key Laboratory of Materials Low‐Carbon Recycling College of Materials Science and Engineering Beijing University of Technology Beijing China

Y

Yuhong Jin

Q

Quan‐Fu An

Beijing Key Laboratory For Green Catalysis and Separation State Key Laboratory of Materials Low‐Carbon Recycling College of Materials Science and Engineering Beijing University of Technology Beijing China