Invoking Hybrid‐Ion Correlation Electrochemistry to Enable Optimal Aqueous Zn‐Ion Batteries

D Da Wang (Guangdong Provincial Key Laboratory of Optical Information Materials and Technology, Institute of Electronic Paper Displays, South China Academy of Advanced Optoelectronics) Y Yajie Li G Geng Zhang M Mengdie Yan (Department of Chemistry) W Wenxuan Wang Z Zheyi Zou (School of Material Science and Engineering, Xiang Tan University 1 , Xiangtan 411105,) H Huilin Pan (Department of Chemistry) Z Zelang Jian (State Key Laboratory of Advanced Technology for Materials Synthesis and Processing School of Materials Science and Engineering Wuhan University of Technology Wuhan 430070 China) M Maxim Avdeev P Pu Hu (Material Science and Engineering Wuhan Institute of Technology Wuhan 430205 China) L Liquan Chen (Beijing Frontier Research Center on Clean Energy) S Siqi Shi

Abstract

Abstract As a generation beyond conventional batteries based on mono‐/poly‐valent ions, hybrid‐ion batteries (HIBs) offer more opportunities to build battery prototypes because they utilize the merits of multiple ions. However, the limited understanding of ionic correlations in these heterogeneous systems experimentally and theoretically brings a great challenge in exploring their performance limits. Here, an approach is proposed combining electrochemical phase‐field simulation with thermodynamic calculation, where ionic correlation in the electrolyte and electrode is addressed using the linearized Poisson‐Boltzmann equation embedded with Debye‐Hückel theory and ion‐occupied sub‐lattice model, to invoke the ionic electrodeposition and ( de )intercalation advantages. This approach is independent of specific HIB electrolytes or electrodes. A “Seesaw‐Inhibition” mechanism is uncovered, operating under hybrid‐ion concentration regulation to determine the electrodeposition morphology in three types of HIBs, and simultaneously predict a general ion competitive behavior during their intercalation. Following this, a prototype of Na 3 V 2 (PO 4 ) 3 ||1 M NaTfO+1 M Zn(TfO) 2 ||Zn aqueous HIB is built, surpassing pure Zn‐ion batteries by 32% in measured energy density (128.3 Wh kg −1 ) and exhibiting low capacity decay (0.10% per cycle over 300 cycles). The scalability of the approach for regulating hybrid‐ion electrochemistry demonstrates its practical viability for designing HIBs.

Article Details

Volume / Issue Vol. 37, Issue 40
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

D

Da Wang

Guangdong Provincial Key Laboratory of Optical Information Materials and Technology, Institute of Electronic Paper Displays, South China Academy of Advanced Optoelectronics

Y

Yajie Li

G

Geng Zhang

M

Mengdie Yan

Department of Chemistry

W

Wenxuan Wang

Z

Zheyi Zou

School of Material Science and Engineering, Xiang Tan University 1 , Xiangtan 411105,

H

Huilin Pan

Department of Chemistry

Z

Zelang Jian

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing School of Materials Science and Engineering Wuhan University of Technology Wuhan 430070 China

M

Maxim Avdeev

P

Pu Hu

Material Science and Engineering Wuhan Institute of Technology Wuhan 430205 China

L

Liquan Chen

Beijing Frontier Research Center on Clean Energy

S

Siqi Shi