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硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (8): 2932-2943.DOI: 10.16552/j.cnki.issn1001-1625.2026.0126

• 功能材料 • 上一篇    下一篇

B、N共掺杂碳/Ti3C2Tx复合材料的制备与电化学性能研究

麻洒洒(), 陈拥军, 贺子涵, 王骞壹, 王子晨, 李建保, 骆丽杰()   

  1. 海南大学材料科学与工程学院,海口 570228
  • 收稿日期:2026-02-03 修订日期:2026-03-02 出版日期:2026-08-15 发布日期:2026-09-01
  • 通信作者: 骆丽杰,博士,副教授。E-mail:luolijie013@hainanu.edu.cn
  • 作者简介:麻洒洒(1999—),女,硕士研究生。主要从事锌离子电容器正极材料的研究。E-mail:masasacc@163.com
  • 基金资助:
    国家自然科学基金(52362040);海南大学校级项目(HDJG-Y202531)

Preparation and Electrochemical Performance of B, N Co-Doped Carbon/Ti3C2TxComposites

MA Sasa(), CHEN Yongjun, HE Zihan, WANG Qianyi, WANG Zichen, LI Jianbao, LUO Lijie()   

  1. School of Materials Science and Engineering,Hainan University,Haikou 570228,China
  • Received:2026-02-03 Revised:2026-03-02 Published:2026-08-15 Online:2026-09-01

摘要:

二维层状Ti3C2Tx在电化学储能中极具潜力,但易受层间自堆叠与活性位点不足的制约。本文以小球藻、硼酸为原料,采用水热-高温碳化法制备了硼氮(B、N)共掺杂碳材料(CC),并利用十六烷基三甲基溴化铵诱导的静电自组装将CC与Ti3C2Tx复合,制备了不同CC与Ti3C2Tx质量比的CC/Ti3C2Tx复合材料(CTxy)。结构表征表明,CC的引入可抑制Ti3C2Tx的重堆叠并扩大层间距,构建更开放的离子传输通道。在三电极体系中,CC与Ti3C2Tx的质量比为1∶1的电极(CT11)在0.1 A·g-1电流密度下具有243.54 mAh·g-1质量比容量。基于CT11电极组装的锌离子电容器在0.1 A·g-1电流密度下可逆质量比容量达到166.5 mAh·g-1,并在10 A·g-1电流密度下循环16 000次后容量保持率为85.71%。本研究为生物质衍生碳与二维过渡金属碳化物、氮化物和碳氮化物的复合改性及高性能锌基储能器件设计提供了新路径。

关键词: Ti3C2TxMXene, 小球藻, 硼氮共掺杂碳, 静电自组装, 锌离子电容器, 电化学性能

Abstract:

With the escalating demand for reliable grid-scale energy storage systems, aqueous zinc-ion capacitors (ZICs) have garnered extensive research attention owing to their intrinsic safety, cost-effectiveness, and their ability to bridge the performance gap between high-energy batteries and high-power supercapacitors. Among myriads of electrode materials, two-dimensional (2D) layered Ti3C2Txmaterials have emerged as highly promising candidates due to their metallic conductivity, excellent hydrophilicity, and tunable surface chemistry. However, the severe self-restacking of nanosheets, driven by strong van der Waals forces, remains the critical bottleneck restricting their practical application. This phenomenon drastically reduces the accessible electrochemically active surface area and severely hinders internal ion transport kinetics. To address this inherent challenge, this work rationally designed a novel composite electrode by integrating chlorella-derived boron and nitrogen (B, N) co-doped carbon with Ti3C2Txnanosheets, aiming to enhance energy storage performance through synergistic effects.

In this work, a cost-effective and eco-friendly preparation process was developed using Chlorella microalgae and boric acid as precursors. Initially, B, N co-doped carbon (CC) was synthesized via a hydrothermal pretreatment, followed by high-temperature carbonization and potassium hydroxide (KOH) activation. Subsequently, the obtained CC was assembled via electrostatic self-assembly with etched Ti3C2Txnanosheets to fabricate a series of CC/Ti3C2Txcomposites (CTxy) with varying mass ratios. Comprehensive microstructural characterization indicate that the appropriate introduction of carbon materials effectively inhibits the self-restacking of Ti3C2Txlayers, expands the interlayer spacing, and constructs a robust multidimensional interconnected architecture. Particularly, the composite with the optimal proportion, CT11 (with a CC to MXene mass ratio of 1∶1), exhibits a significantly increased specific surface area of 626.54 m2 g-1, while concurrently forming a hierarchical porous network that provides abundant ion transport channels and high-density electrochemically active sites.

Electrochemical measurements reveal that the composite electrode exhibits outstanding performance in a three-electrode testing system: at a current density of 0.1 A g-1, the specific capacity of the CT11 electrode reaches 243.53 mAh g-1. Upon assembling CT11 with a zinc anode into a full aqueous zinc-ion capacitor, the device demonstrates immense potential for practical application. At a current density of 0.1 A g-1, the device delivers a high reversible specific capacity of 166.5 mAh g-1; even at an ultra-high current density of 20 A g-1, it maintains an excellent rate capability of 81.1 mAh g-1. Crucially, the CT11//Zn zinc-ion capacitor exhibits ultralong cycling stability, retaining 85.71% of its initial capacity after 16 000 continuous charge-discharge cycles at a high current density of 10 A g-1, demonstrating its superior electrochemical reversibility. In summary, the superior electrochemical performance of the composite originates from the synergistic interaction between Ti3C2Txand the B, N co-doped carbon. This highly efficient structural modulation strategy not only optimizes the ion and electron transport pathways but also enhances the interfacial pseudocapacitive storage mechanisms. This work proposes a facile, sustainable, and practical structural modification strategy for MXene-based composites, providing broad insights for the precise design of next-generation high-performance aqueous zinc-ion capacitors.

Key words: Ti3C2TxMXene, chlorella, boron and nitrogen co-doped carbon, electrostatic self-assembly, zinc-ion capacitor, electrochemical performance

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