Ultrafast Ionic Cross‐Phase Transport in Nanofluidics for Simultaneously Boosting Osmotic Energy Conversion and Lithium Recovery

H Haoyang Ling (Laboratory of Bio-inspired Smart Interface Science) W Weiwen Xin (Laboratory of Bio-Inspired Smart Interface Science) Y Yongchao Qian (CAS Key Laboratory of Bio-inspired Materials and Interfacial Science) X Xingchao Li (State Key Laboratory of Bioinspired Interfacial Materials Science Suzhou Institute for Advanced Research University of Science and Technology of China Suzhou Jiangsu P.R. China) Y Yaoxu He (Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry) K Kehan Zou (Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry) Q Qingchen Wang K Ke Li W Wenxiong Shi (Institute for New Energy Materials and Low Carbon Technologies, State Key Laboratory of Crystal Materials, School of Materials Science and Engineering) X Xiang‐Yu Kong (Laboratory of Bio‐Inspired Smart Interface Science Technical Institute of Physics and Chemistry Beijing P.R. China) L Lei Jiang L Liping Wen (Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry)

Abstract

ABSTRACT The implementation of an integrated system adept at simultaneously harvesting energy and recovering resources from currently abandoned environments represents an effective and strategic approach. Herein, we conceive a proof‐of‐concept ion‐cross‐phase system, capable of simultaneously harvesting osmotic energy and recovering lithium resources, a dual function not achieved by previous nanofluidics systems which normally focus on one aspect in aqueous environments. This process provides a synergistic driving force originating from ionic solvation energy during cross‐phase transport and salinity gradient energy across concentration gradients, facilitating the transport of lithium ions from the organic phase to the aqueous phase. Molecular dynamics simulations validate that the enhanced lithium transport rate is activated by a reduction in the free energy, resulting from the coupling of cross‐phase ionic solvation energy, and salinity gradient energy. Consequently, the system could harvest energy in treatment of organic industrial wastewater, which generates 7.2 kWh of electricity per day. Meanwhile, the lithium ions could be enriched in aqueous and converted into Li 2 CO 3 products, with a purity greater than 99%. This work exemplifies a first strategic approach to the holistic recovery of sustainable energy and critical resources from organic‐aqueous cross‐phase industrial wastewater.

Article Details

Volume / Issue Vol. 65, Issue 18
Published April 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

H

Haoyang Ling

Laboratory of Bio-inspired Smart Interface Science

W

Weiwen Xin

Laboratory of Bio-Inspired Smart Interface Science

Y

Yongchao Qian

CAS Key Laboratory of Bio-inspired Materials and Interfacial Science

X

Xingchao Li

State Key Laboratory of Bioinspired Interfacial Materials Science Suzhou Institute for Advanced Research University of Science and Technology of China Suzhou Jiangsu P.R. China

Y

Yaoxu He

Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry

K

Kehan Zou

Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry

Q

Qingchen Wang

K

Ke Li

W

Wenxiong Shi

Institute for New Energy Materials and Low Carbon Technologies, State Key Laboratory of Crystal Materials, School of Materials Science and Engineering

X

Xiang‐Yu Kong

Laboratory of Bio‐Inspired Smart Interface Science Technical Institute of Physics and Chemistry Beijing P.R. China

L

Lei Jiang

L

Liping Wen

Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry