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February 14, 2026Energy & environment materials0 citationsOpen Access

Optimally Carbonized Mangrove Wood–Derived Hard Carbon with a Soft Carbon Coating for High‐Performance Sodium‐Ion Battery Anodes

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HSHyung‐Keun ShinGKGyoo‐Rin KimSHSeong‐Ju Han

Key Points

  • The aim is to develop high-performance sodium-ion battery anodes using hard carbon derived from mangrove wood.
  • Synthesis of hard carbon from mangrove wood via controlled carbonization at 1200 °C.
  • Application of pitch-derived soft carbon coatings at 5, 10, or 15 wt% to enhance storage performance.
  • Electrochemical performance testing of the resulting anode materials.
  • Hard carbon prepared at 1200 °C achieved a reversible capacity of 266.6 mAh g −1 and an initial coulombic efficiency of 75%.
  • The composite with 10 wt% pitch exhibited a reversible capacity of 291.5 mAh g −1 and an ICE of 82%.
  • Capacity retention of 90.4% was maintained after 200 cycles.

Abstract

Sodium‐ion batteries (SIBs) are emerging as promising alternatives to lithium‐ion batteries owing to the abundance of sodium resources and the limited supply of lithium raw materials. However, the development of high‐performance anode materials remains a critical challenge owing to the relatively low initial coulombic efficiencies (ICEs) and limited reversible capacities of conventional carbon‐based anodes. Herein, hard carbon (HC) from mangrove wood was synthesized via controlled carbonization, and its electrochemical performance was systematically investigated. HC prepared by carbonization at 1200 °C (MWHC‐1200) exhibited the best performance, delivering a high reversible capacity of 266.6 mAh g −1 and an ICE of 75%. Pitch‐derived soft carbon coatings (containing 5, 10, or 15 wt% pitch) were applied to HC synthesized at the optimal carbonization temperature to further enhance Na + ‐storage performance. Notably, the composite containing 10 wt% pitch (PC‐10) exhibited the best electrochemical performance, delivering a high reversible capacity of 291.5 mAh g −1 , an ICE of 82%, a capacity retention of 90.4% after 200 cycles, and an excellent rate capability. These improvements were associated with the suppression of irreversible reactions and improvement in interfacial stability. This study offers a simple yet effective approach for improving the electrochemical properties of biomass‐derived HC and provides insights into the design of practical SIB anodes.

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Cite This Study

Shin et al. (2026) studied this question.

synapsesocial.com/papers/699011172ccff479cfe578dbhttps://doi.org/10.1002/eem2.70302
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