Suppressing Sodium Dendrites Through Protein‐Mediated Tip Adsorption Effect

Y Yue Li H Haocheng Yuan (State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China) H Hongji Pan L Li Cai P Peipei Ding (State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China) D Dengfeng Yu (State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China) H Huifeng Zhuang (State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China) Y Ying Liang H Hanlin Luo (State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China) C Chuangjie Guo (State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China) J Jingteng Zhao (Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion Science Center for Material Creation and Energy Conversion Institute of Frontier Chemistry School of Chemistry and Chemical Engineering Shandong University Qingdao P.R. China) X Xiaoli Ren Q Qiang Gao Y Yaoyu Ren (State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China) C Cewen Nan Y Yang Shen (Beijing National Laboratory for Condensed Matter Physics, Institute of Physics)

Abstract

ABSTRACT Dendrite growth and interfacial side reactions severely limit the cycle life of sodium batteries. While electrolyte additives represent the simplest mitigation strategy, conventional additives rely on single chemical driving mechanisms, and pose environmental concerns. Here, we propose a bio‐adaptive approach based on the protein tip adsorption effect, demonstrating at the “amino acid–peptide–protein” scale that this mechanism regulates electric field distribution around sodium bud tips to induce uniform sodium deposition and stripping. Concurrently, it promotes formation of a robust solid electrolyte interphase, rearranging the sodium metal anode into a smoother surface. Electrolytes engineered via this tip adsorption effect deliver enhanced cycling and stripping performance in sodium symmetric cells across 1, 5, and 10 mA cm −2 , with a maximum tolerable current density exceeding 25 mA cm − 2 . Remarkably, NVP||Na cells achieve 20,000 cycles at 10 C and 16,000 cycles at an ultrahigh 50 C rate. The electrolyte also shows broad anode compatibility: NVP||Al@C cells with a high NVP loading of 10.32 mg cm − 2 sustain 1,000 cycles at 5 C. Guided by sustainable development principles, this work may inspire exploration of natural, eco‐friendly materials for battery modification.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 17, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

Y

Yue Li

H

Haocheng Yuan

State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China

H

Hongji Pan

L

Li Cai

P

Peipei Ding

State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China

D

Dengfeng Yu

State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China

H

Huifeng Zhuang

State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China

Y

Ying Liang

H

Hanlin Luo

State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China

C

Chuangjie Guo

State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China

J

Jingteng Zhao

Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion Science Center for Material Creation and Energy Conversion Institute of Frontier Chemistry School of Chemistry and Chemical Engineering Shandong University Qingdao P.R. China

X

Xiaoli Ren

Q

Qiang Gao

Y

Yaoyu Ren

State Key Laboratory of New Ceramic Materials School of Materials Science and Engineering Tsinghua University Beijing China

C

Cewen Nan

Y

Yang Shen

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics