Designing artificial ion channels with strict K+/Na+ selectivity toward next-generation electric-eel-mimetic ionic power generation

Author:

Li Jipeng1,Du Linhan2,Kong Xian3ORCID,Wu Jianzhong4,Lu Diannan2,Jiang Lei5,Guo Wei56

Affiliation:

1. State Key Laboratory of Marine Resource Utilization in South China Sea, School of Materials Science and Engineering, Hainan University , Haikou 570228 , China

2. Department of Chemical Engineering, Tsinghua University , Beijing 100084 , China

3. South China Advanced Institute for Soft Matter Science and Technology, Guangdong Provincial Key Laboratory of Functional and Intelligent Hybrid Materials and Devices, School of Emergent Soft Matter, South China University of Technology , Guangzhou 510640 , China

4. Department of Chemical and Environmental Engineering, University of California , Riverside , CA 92521 , USA

5. Research Institute for Frontier Science, Beihang University , Beijing 100191 , China

6. Center for Quantum Physics and Intelligent Sciences, Department of Physics, Capital Normal University , Beijing 100048 , China

Abstract

ABSTRACT A biological potassium channel is >1000 times more permeable to K+ than to Na+ and exhibits a giant permeation rate of ∼108 ions/s. It is a great challenge to construct artificial potassium channels with such high selectivity and ion conduction rate. Herein, we unveil a long-overlooked structural feature that underpins the ultra-high K+/Na+ selectivity. By carrying out massive molecular dynamics simulation for ion transport through carbonyl-oxygen-modified bi-layer graphene nanopores, we find that the twisted carbonyl rings enable strict potassium selectivity with a dynamic K+/Na+ selectivity ratio of 1295 and a K+ conduction rate of 3.5 × 107 ions/s, approaching those of the biological counterparts. Intriguingly, atomic trajectories of K+ permeation events suggest a dual-ion transport mode, i.e. two like-charged potassium ions are successively captured by the nanopores in the graphene bi-layer and are interconnected by sharing one or two interlayer water molecules. The dual-ion behavior allows rapid release of the exiting potassium ion via a soft knock-on mechanism, which has previously been found only in biological ion channels. As a proof-of-concept utilization of this discovery, we propose a novel way for ionic power generation by mixing KCl and NaCl solutions through the bi-layer graphene nanopores, termed potassium-permselectivity enabled osmotic power generation (PoPee-OPG). Theoretically, the biomimetic device achieves a very high power density of >1000 W/m2 with graphene sheets of <1% porosity. This study provides a blueprint for artificial potassium channels and thus paves the way toward next-generation electric-eel-mimetic ionic power generation.

Funder

National Natural Science Foundation of China

Recruitment Program of Guangdong

TCL Science and Technology Innovation Fund

Hainan University's Scientific Research Foundation

Publisher

Oxford University Press (OUP)

Subject

Multidisciplinary

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Evolution of artificial ion channels;National Science Review;2023-11-20

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