Polyanion Electrointercalation Enables Termination‐Tailored Oligolayer Ti <sub>3</sub> C <sub>2</sub> T <i> <sub>x</sub> </i> MXene Synthesis in Alkali Chloroaluminate Melt

F Feng Tian Z Zhongya Pang X Xing Yu Z Zhenqiang Jiang (State Key Laboratory of Advanced Refractories &amp; School of Materials Science and Engineering Shanghai University Shanghai 200444 P.R. China) F Fei Wang J Jianlin Xu (State Key Laboratory of Advanced Refractories &amp; School of Materials Science and Engineering Shanghai University Shanghai 200444 P.R. China) G Guangshi Li S Shen Hu Q Qian Xu H Hsien‐Yi Hsu (School of Energy and Environment Department of Materials Science and Engineering Centre For Functional Photonics City University of Hong Kong Kowloon Hong Kong P. R. China) Y Yufeng Zhao (Department of Materials Science and NanoEngineering) L Li Ji X Xionggang Lu X Xingli Zou

Abstract

Abstract Tailoring surface chemistry and achieving non‐destructive interlayer exfoliation are crucial for controlling MXene properties. Conventional synthesis strategies typically involve damaging intercalation processes and yield MXenes with mixed surface terminations, compromising their functionality. Herein, we propose an anodic etching strategy to produce facilely delaminated, termination‐tailored Ti 3 C 2 T x from Ti 3 AlC 2 in low‐temperature alkali‐chloroaluminate (AlCl 3 ‐NaCl‐KCl) melts at 170 °C through the in situ electrochemical intercalation of polyanions (Al n Cl 3 n +1 − , n  ≥ 1). Oligolayer Ti 3 C 2 Cl x (MSE‐Ti 3 C 2 Cl x ) was readily achieved via further gently exfoliating the etching product, preserving the original surface chemistry featuring oxygen depletion and uniform chlorine termination. As functional coatings, MSE‐Ti 3 C 2 Cl x significantly extended the cycling lifespan of Zn anodes to 5500 h at 2 mA cm −2 and 1 mAh cm −2 , attributed to the tailored surface chemistry and oligolayer‐induced ordered alignment that enabled efficient Zn 2+ capture and uniform deposition. The strategy's versatility was also demonstrated by tailoring terminations (e.g., −Br, −NH) via molten salt composition engineering, providing a non‐destructive pathway for MXene surface engineering and interlayer delamination, thereby unlocking their full potential for advanced energy applications.

Article Details

Volume / Issue Vol. 64, Issue 45
Published November 03, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

F

Feng Tian

Z

Zhongya Pang

X

Xing Yu

Z

Zhenqiang Jiang

State Key Laboratory of Advanced Refractories &amp; School of Materials Science and Engineering Shanghai University Shanghai 200444 P.R. China

F

Fei Wang

J

Jianlin Xu

State Key Laboratory of Advanced Refractories &amp; School of Materials Science and Engineering Shanghai University Shanghai 200444 P.R. China

G

Guangshi Li

S

Shen Hu

Q

Qian Xu

H

Hsien‐Yi Hsu

School of Energy and Environment Department of Materials Science and Engineering Centre For Functional Photonics City University of Hong Kong Kowloon Hong Kong P. R. China

Y

Yufeng Zhao

Department of Materials Science and NanoEngineering

L

Li Ji

X

Xionggang Lu

X

Xingli Zou