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February 8, 2026Journal of Materials Science0 citations

N-doped carbon boosted high-rate and stable lithium storage for TiP2O7-based anode

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WCWenfang CuiMZMingzhu ZhuYSYongmei Sun

Key Points

  • To improve the lithium storage capacity and stability of TiP2O7-based anodes using nitrogen-doped carbon coating.
  • Synthesis of nitrogen-doped carbon-coated TiP2O7 composite
  • Evaluation of specific capacities at various current densities
  • Kinetic analysis of charge transfer behavior
  • Ex-situ transmission electron microscopy for structural evaluation
  • Achieved specific capacities of 435, 341, and 263 mA h g−1 at current densities of 2, 5, and 10 A g−1
  • Nitrogen-doped carbon coating significantly accelerates charge transfer leading to pseudocapacitive behavior
  • TiP2O7 transforms into homogeneous nanocrystals after 100 cycles at low current density of 0.2 A g−1
  • Capacity preserved at 462.6 mA h g−1 after high-density cycling due to effective N-doped carbon coating

Abstract

The three-dimensional framework for lithium storage endows TiP 2 O 7 with excellent stability and considerable capacity. However, its practical application is hindered by poor electrical conductivity and an unclear understanding of its structural evolution. Herein, we present a nitrogen-doped carbon-coated TiP 2 O 7 composite prepared by a straightforward and scalable surface modification strategy, which exhibits superior rate capability compared to previous reports. Specifically, it achieves specific capacities of 435, 341, and 263 mA h g −1 at current densities of 2, 5, and 10 A g −1 , respectively. Kinetic analysis confirms that the nitrogen-doped carbon coating on TiP 2 O 7 surface significantly accelerates the interfacial charge transfer, leading to a dominant pseudocapacitive behavior. Importantly, ex-situ transmission electron microscopy characterization reveals that the TiP 2 O 7 in the composite evolves into homogeneous nanocrystals after 100 cycles at a low current density of 0.2 A g −1 . By contrast, despite the TiP 2 O 7 transforming into nanocrystals with inconsistent sizes and reduced crystallinity after 1000 cycles at a high current density of 1 A g −1 , the effective coating of N-doped carbon preserves the capacity of the anode at up to 462.6 mA h g −1 . These findings suggest that this universal strategy can significantly enhance the performance of TiP 2 O 7 -based anode materials for lithium-ion batteries.

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Cite This Study

Cui et al. (2026) studied this question.

synapsesocial.com/papers/6987eb5df6bacdd2fe8fc907https://doi.org/10.1007/s10853-026-12210-3
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