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author:

Wu, Junxiu (Wu, Junxiu.) [1] | Liu, Hao-Wen (Liu, Hao-Wen.) [2] | Tang, Anwen (Tang, Anwen.) [3] | Zhang, Weifeng (Zhang, Weifeng.) [4] | Sheu, Hwo-Shuenn (Sheu, Hwo-Shuenn.) [5] | Lee, Jyh-Fu (Lee, Jyh-Fu.) [6] | Liao, Yen-Fa (Liao, Yen-Fa.) [7] | Huang, Shuping (Huang, Shuping.) [8] | Wei, Mingdeng (Wei, Mingdeng.) [9] | Wu, Nae-Lih (Wu, Nae-Lih.) [10]

Indexed by:

EI

Abstract:

High-power, fast-charging capability is an urgent issue for the development of advanced Li-ion batteries (LIBs) for electrified mobility applications. An anatase titanium oxide mesocrystal (TOM) Li-ion battery (LIB) anode comprising extremely small (3–5 nm) and crystallographically coherent nanocrystallite subunits demonstrate a high specific capacity (up to 225 mAh g-1) and extraordinary rate capability and cycle stability under stressful currents (83 % capacity retention after 9000 cycles at 10 C rate, 1 C = 168 mA g-1), considerably outperforming the conventional nanocrystalline titanium oxide (TO) electrode. The investigation of the underlying (de)lithiation mechanism using synchrotron X-ray analyses and density functional theory calculations reveals a novel crystalline–amorphous–crystalline pathway for TOM involving an amorphous phase existing within a Li stoichiometry range approximately LixTiO2, x = 0.2–0.9. The combination of structure amorphization and existing of a fast inter-grain diffusion network inherent to the hierarchical interior of mesocrystal empowers the TOM electrode with orders-of-magnitude higher diffusion rates as compared with the TO electrode. The single-crystal-like crystallographic coherence of the (de)lithiation end-products enables favorable chemo-mechanical stability to avert particle cracking during high-rate cycling. The study indicates a potential new direction for engineering cycle-stable fast-charging electrode materials. © 2022 Elsevier Ltd

Keyword:

Anodes Charging (batteries) Density functional theory Energy dispersive X ray analysis Ions Lithium compounds Lithium-ion batteries Mechanical stability Nanocrystalline materials Nanocrystals Single crystals Titanium dioxide

Community:

  • [ 1 ] [Wu, Junxiu]Fujian Provincial Key Laboratory of Electrochemical Energy Storage Materials, Fuzhou University, Fujian, Fuzhou; 350116, China
  • [ 2 ] [Liu, Hao-Wen]Department of Chemical Engineering, National Taiwan University, Taipei; 106, Taiwan
  • [ 3 ] [Tang, Anwen]Fujian Provincial Key Laboratory of Electrochemical Energy Storage Materials, Fuzhou University, Fujian, Fuzhou; 350116, China
  • [ 4 ] [Zhang, Weifeng]Fujian Provincial Key Laboratory of Electrochemical Energy Storage Materials, Fuzhou University, Fujian, Fuzhou; 350116, China
  • [ 5 ] [Sheu, Hwo-Shuenn]National Synchrotron Radiation Research Center, Hsinchu; 30076, Taiwan
  • [ 6 ] [Lee, Jyh-Fu]National Synchrotron Radiation Research Center, Hsinchu; 30076, Taiwan
  • [ 7 ] [Liao, Yen-Fa]National Synchrotron Radiation Research Center, Hsinchu; 30076, Taiwan
  • [ 8 ] [Huang, Shuping]Fujian Provincial Key Laboratory of Electrochemical Energy Storage Materials, Fuzhou University, Fujian, Fuzhou; 350116, China
  • [ 9 ] [Wei, Mingdeng]Fujian Provincial Key Laboratory of Electrochemical Energy Storage Materials, Fuzhou University, Fujian, Fuzhou; 350116, China
  • [ 10 ] [Wei, Mingdeng]Jiangsu Collaborative Innovation Center of Photovoltaic Science and Engineering, Changzhou University, Jiangsu, Changzhou; 213164, China
  • [ 11 ] [Wu, Nae-Lih]Department of Chemical Engineering, National Taiwan University, Taipei; 106, Taiwan

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Source :

Nano Energy

ISSN: 2211-2855

Year: 2022

Volume: 102

1 7 . 6

JCR@2022

1 6 . 8 0 0

JCR@2023

ESI HC Threshold:91

JCR Journal Grade:1

CAS Journal Grade:1

Cited Count:

WoS CC Cited Count: 0

SCOPUS Cited Count: 9

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 0

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