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March 21, 2026Journal of the American Chemical Society14 citations

Covalent Quantum Bridging Enables Bicontinuous Electron–Ion Highways in Hard Carbon for Ultrafast Sodium Storage

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LXLi-Zhi XuJCJunxiong ChenDLDeguang Liu

Key Points

  • The aim is to enhance the performance of hard carbon in sodium-ion batteries by improving electron and ion transport.
  • Designed a bicontinuous carbon network using bamboo powder and carbon quantum dots.
  • Used stepwise pyrolysis to create the carbon framework.
  • Generated interconnected graphene nanodomains and optimized sodium adsorption sites.
  • Achieved a specific capacity of 391.1 mAh g-1 at 0.1 C.
  • Initial Coulombic efficiency measured at 92%.
  • Maintained 83.5% capacity after 15,000 cycles at 20 C.
  • Achieved 90.2% capacity retention after 400 cycles at -20 °C.

Abstract

As one of the best alternatives to anodes for sodium-ion batteries, hard carbon holds strong promise for commercial application. However, its inherently slow ion diffusion and poor electronic conductivity fundamentally limit the rate capability and cycling stability. Herein, inspired by biological vascular bundles, we design a bicontinuous network within a carbon framework via a bridging strategy using bamboo powder (BP) and carbon quantum dots (CQDs), which achieves the ultrafast transfer of electrons and ions from graphite-like domains (interlayer adsorption/conversion) to closed-pore (filling). Specifically, through stepwise pyrolysis, CQDs acting as "transport highways" were covalently grafted onto BP, and the resulting "quantum-bridge" precursor was topologically reconstructed into a bicontinuous carbon framework. This process generates interconnected graphene nanodomains (GNDs) that facilitate electron transport, while concurrently creating topological defects and sites for pyridinic/pyrrolic N to enable efficient Na+ adsorption and surface migration. The designed hard carbon achieves a high specific capacity (391.1 mAh g-1 at 0.1 C), excellent initial Coulombic efficiency (92%), outstanding rate capability (83.5% capacity retention after 15,000 cycles at 20 C), and remarkable low-temperature performance (90.2% capacity retention after 400 cycles at 1 C and -20 °C). This work establishes a general design principle for energy storage materials requiring simultaneous, rapid electron-ion migration.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69be369a6e48c4981c675b15https://doi.org/10.1021/jacs.5c21030
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