Cr3+-doped TiNb2O7 nanorods for ultra-fast charging lithium-ion batteries: Enhanced through structural and electronic engineering

X Xiao-Bin Zhong T Tian Zhang (Division of Hematology‐Oncology, Department of Internal Medicine University of Texas Southwestern Medical Center Dallas Texas USA) Y Yi-Jing Liu (School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,) F Feng-Xiao Hou (School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,) Q Qing-Tao Hu (School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,) C Chao-Yu Rong (School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,) Y Yue-Xian Song (School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,) K Kai Wang J Jun-Fei Liang (School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,) H Han-Tao Liu (School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,) J Jin-Chao Dong (College of Chemistry and Chemical Engineering, College of Energy, State Key Laboratory of Physical Chemistry of Solid Surfaces, iChEM)

Abstract

TiNb2O7 is regarded as an ideal anode candidate for next-generation lithium-ion batteries because of the high theoretical specific capacity and operating potential. However, poor multiplicity performance and low intrinsic conductivity hinder their application. We have designed one-dimensional Cr3+-doped titanium niobate nanorods (TNO-Cr) by combining the advantages of heteroatom doping and nanosizing in order to improve the electronic conductivity. The optimal Cr3+-doped TNO anode material (TNO-6.0%Cr) maintains a discharge capacity of 125.1 mAh g−1 after 2000 cycles at 5C and 104.5 mAh g−1 even after 1000 cycles at 10C. In addition, NCM811//TNO-6.0%Cr maintains a discharge capacity of 119 mAh g−1 at 100 cycles at full cell 1C. The great electrochemical performance is attributed to its one-dimensional nanostructure that shortens the lithium-ion diffusion distance and the successful substitution of Cr for Ti sites that narrows the bandgap width and improves the ionic conductivity. The materials can be used as promising anode materials for fast-charging lithium-ion batteries.

Article Details

Volume / Issue Vol. 163, Issue 16
Published October 28, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (11)

X

Xiao-Bin Zhong

T

Tian Zhang

Division of Hematology‐Oncology, Department of Internal Medicine University of Texas Southwestern Medical Center Dallas Texas USA

Y

Yi-Jing Liu

School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,

F

Feng-Xiao Hou

School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,

Q

Qing-Tao Hu

School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,

C

Chao-Yu Rong

School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,

Y

Yue-Xian Song

School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,

K

Kai Wang

J

Jun-Fei Liang

School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,

H

Han-Tao Liu

School of Energy and Power Engineering, State Key Laboratory of Coal and CBM Co-Mining, North University of China 1 , Taiyuan 030051,

J

Jin-Chao Dong

College of Chemistry and Chemical Engineering, College of Energy, State Key Laboratory of Physical Chemistry of Solid Surfaces, iChEM