硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (8): 2932-2943.DOI: 10.16552/j.cnki.issn1001-1625.2026.0126
麻洒洒(
), 陈拥军, 贺子涵, 王骞壹, 王子晨, 李建保, 骆丽杰(
)
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:
MA Sasa(
), CHEN Yongjun, HE Zihan, WANG Qianyi, WANG Zichen, LI Jianbao, LUO Lijie(
)
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。
中图分类号:
麻洒洒, 陈拥军, 贺子涵, 王骞壹, 王子晨, 李建保, 骆丽杰. B、N共掺杂碳/Ti3C2Tx复合材料的制备与电化学性能研究[J]. 硅酸盐通报, 2026, 45(8): 2932-2943.
MA Sasa, CHEN Yongjun, HE Zihan, WANG Qianyi, WANG Zichen, LI Jianbao, LUO Lijie. Preparation and Electrochemical Performance of B, N Co-Doped Carbon/Ti3C2TxComposites[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(8): 2932-2943.
| Sample No. | Ti—C 2p3/2 | Ti—O—C 2p3/2 | C—Ti—F 2p3/2 | Ti—O 2p3/2 | Ti—C 2p1/2 | Ti—O—C 2p1/2 | C—Ti—F 2p1/2 | Ti—O 2p1/2 |
|---|---|---|---|---|---|---|---|---|
| CT12 | 9.86 | 15.58 | 8.09 | 38.88 | 8.44 | 4.35 | 5.59 | 9.21 |
| CT11 | 18.69 | 22.88 | 10.53 | 19.70 | 8.89 | 8.88 | 4.73 | 5.62 |
| CT21 | 20.26 | 18.61 | 8.81 | 24.79 | 10.73 | 6.90 | 4.17 | 5.73 |
表1 Ti 2p各分峰相对占比 (%)
Table 1 Relative content of individual deconvoluted peaks of Ti 2p
| Sample No. | Ti—C 2p3/2 | Ti—O—C 2p3/2 | C—Ti—F 2p3/2 | Ti—O 2p3/2 | Ti—C 2p1/2 | Ti—O—C 2p1/2 | C—Ti—F 2p1/2 | Ti—O 2p1/2 |
|---|---|---|---|---|---|---|---|---|
| CT12 | 9.86 | 15.58 | 8.09 | 38.88 | 8.44 | 4.35 | 5.59 | 9.21 |
| CT11 | 18.69 | 22.88 | 10.53 | 19.70 | 8.89 | 8.88 | 4.73 | 5.62 |
| CT21 | 20.26 | 18.61 | 8.81 | 24.79 | 10.73 | 6.90 | 4.17 | 5.73 |
Electrode material | Current density/(A·g-1) | Specific capacity/(mAh·g-1) | Current density/(A·g-1) | Cycle number | Cycling stability/% | Reference |
|---|---|---|---|---|---|---|
| CT11 | 0.1 | 166.5 | 10.0 | 16 000 | 85.71 | This study |
| NBPC-3 | 0.5 | 78.75 | 2.0 | 1 200 | 82.00 | [ |
| SMC-800 | 0.1 | 156.54 | 4.0 | 20 000 | 98.08 | [ |
| MCN50 | 0.5 | 84.5 | 10.0 | 8 000 | 93.00 | [ |
| N-Ti3C2 | 0.1 | 79.19 | 1.5 | 6 000 | 88.34 | [ |
| 3D-PHMF | 0.1 | 105.6 | 10.0 | 20 000 | 90.00 | [ |
表2 基于CT11的锌离子电容器与已报道的碳基或MXene基锌离子电容器的电化学性能比较
Table 2 Elctrochemical performance comparison of CT11-based zinc-ion capacitors with reported carbon-based or MXene-based zinc-ion capacitors
Electrode material | Current density/(A·g-1) | Specific capacity/(mAh·g-1) | Current density/(A·g-1) | Cycle number | Cycling stability/% | Reference |
|---|---|---|---|---|---|---|
| CT11 | 0.1 | 166.5 | 10.0 | 16 000 | 85.71 | This study |
| NBPC-3 | 0.5 | 78.75 | 2.0 | 1 200 | 82.00 | [ |
| SMC-800 | 0.1 | 156.54 | 4.0 | 20 000 | 98.08 | [ |
| MCN50 | 0.5 | 84.5 | 10.0 | 8 000 | 93.00 | [ |
| N-Ti3C2 | 0.1 | 79.19 | 1.5 | 6 000 | 88.34 | [ |
| 3D-PHMF | 0.1 | 105.6 | 10.0 | 20 000 | 90.00 | [ |
| [1] | YAO Y, RUI X H, BAI R L, et al. Roadmap for next-generation electrochemical energy storage technologies: secondary batteries and supercapacitors[J]. ACS Nano, 2025, 19(34): 30568-30687. |
| [2] | JIA W H, DING T, HE Y H. Synergistic integration of green hydrogen in renewable power systems: a comprehensive review of key technologies, research landscape, and future perspectives[J]. Renewable and Sustainable Energy Reviews, 2026, 226: 116375. |
| [3] | JIANG H, YAO L, QIN J, et al. Globally interconnected solar-wind system addresses future electricity demands[J]. Nature Communications, 2025, 16: 4523. |
| [4] | WANG Y Y, SUN S R, WU X L, et al. Status and opportunities of zinc ion hybrid capacitors: focus on carbon materials, current collectors, and separators[J]. Nano-Micro Letters, 2023, 15(1): 78. |
| [5] | DONG L B, YANG W, YANG W, et al. High-power and ultralong-life aqueous zinc-ion hybrid capacitors based on pseudocapacitive charge storage[J]. Nano-Micro Letters, 2019, 11(1): 94. |
| [6] | TANG H, YAO J J, ZHU Y R. Recent developments and future prospects for zinc-ion hybrid capacitors: a review[J]. Advanced Energy Materials, 2021, 11(14): 2003994. |
| [7] | FANG K, LI P, ZHANG B, et al. Insights on updates in sodium alginate/MXenes composites as the designer matrix for various applications: a review[J]. International Journal of Biological Macromolecules, 2024, 269: 132032. |
| [8] | CAI M, YAN H, LI Y T, et al. Elucidating the electrochemical mechanism for enhanced corrosion of Ti3C2Tx-coated mild steel[J]. Surface Topography: Metrology and Properties, 2021, 9(3): 035033. |
| [9] | LIU M M, YANG L T, WU Z C, et al. Entropy-modulated atomic ripple texturing in two-dimensional transition metal carbonitrides[J]. Nature Communications, 2025, 16: 5633. |
| [10] | KUMAR M, GAUTAM M K, SINGH K, et al. A comprehensive review of the MXene-PANI nanohybrids: preparation, characterization, and electrochemical performances for supercapacitor applications[J]. Journal of Industrial and Engineering Chemistry, 2025, 142: 141-156. |
| [11] | MASHELE A, SEROKA N S, KHOTSENG L. A review on electrochemical performance of MXene/carbon-based materials for aqueous zinc-ion batteries[J]. Renewable and Sustainable Energy Reviews, 2026, 226: 116373. |
| [12] | JUNG H, KANG J, NAM I, et al. Graphitic porous carbon derived from waste coffee sludge for energy storage[J]. Materials, 2020, 13(18): 3972. |
| [13] | ZHAO C J, LIU G Q, SUN N, et al. Biomass-derived N-doped porous carbon as electrode materials for Zn-air battery powered capacitive deionization[J]. Chemical Engineering Journal, 2018, 334: 1270-1280. |
| [14] | LUO J W, JIA C, SHEN M H, et al. Enhancement of adsorption and energy storage capacity of biomass-based N-doped porous carbon via cyclic carbothermal reduction triggered by nitrogen dopants[J]. Carbon, 2019, 155: 403-409. |
| [15] | ZHANG D H, ZHAN X, ZHOU T, et al. N/B co-doped porous carbon with superior specific surface area derived from activation of biomass waste by novel deep eutectic solvents for Zn-ion hybrid supercapacitors[J]. Journal of Materials Science & Technology, 2024, 193: 22-28. |
| [16] | SAMAGE A, HALAKARNI M, YOON H, et al. Sustainable conversion of agricultural biomass waste into electrode materials with enhanced energy density for aqueous zinc-ion hybrid capacitors[J]. Carbon, 2024, 219: 118774. |
| [17] | ZHAO G Z, WEI M Q, TAO X, et al. S-doped MXene@porous carbon nano-fiber composite for improved sodium storage performance[J]. Applied Surface Science, 2024, 670: 160610. |
| [18] | SHI X Y, LIANG W Q, LIU G P, et al. Electrode materials for Li/Na storage from mechanochemically synthesised MOFs/MXene composites: a solvent-free approach[J]. Chemical Engineering Journal, 2023, 462: 142271. |
| [19] | ALTHUBITI N A, AMAN S, TAHA T A M. Synthesis of MnFe2O4/MXene/NF nanosized composite for supercapacitor application[J]. Ceramics International, 2023, 49(16): 27496-27505. |
| [20] | LEE K S, PARK M, PARK C W, et al. Sustainable fabrication of nitrogen activated carbon from chlorella vulgaris for energy storage devices[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2017, 529: 102-106. |
| [21] | LI Y J, ZOU X F, LI S Q, et al. Biomass-derived B/N/P co-doped porous carbons as bifunctional materials for supercapacitors and sodium-ion batteries[J]. Journal of Materials Chemistry A, 2024, 12(29): 18324-18337. |
| [22] | 叶江林, 朱彦武. 氢氧化钾活化制备超级电容器多孔碳电极材料[J]. 电化学, 2017, 23(5): 548-559. |
| YE J L, ZHU Y W. Porous carbon materials produced by KOH activation for supercapacitor electrodes[J]. Journal of Electrochemistry, 2017, 23(5): 548-559 (in Chinese). | |
| [23] | 孙靖, 艾金贵, 张津凤, 等. 分级多孔活性炭的KOH再活化法制备及其电化学性能[J]. 中国粉体技术, 2019, 25(6): 56-61. |
| SUN J, AI J G, ZHANG J F, et al. Preparation and electrochemical performance of hierarchical porous activated carbon by KOH re-activation method[J]. China Powder Science and Technology, 2019, 25(6): 56-61 (in Chinese). | |
| [24] | CAI Y M, ZHAO G Y, YUAN Q, et al. Elaborate designed sandwich structural faradic material NPC/NiMn-LDH/MXene for enriched ion accessible transfer pathways in capacitive deionization[J]. Chemical Engineering Journal, 2024, 484: 149491. |
| [25] | WANG D W, LIAN Y, ZHOU Q P, et al. An intercalated structure MXene@CCNS: cuttlefish ink-derived carbon nanospheres composite Ti3C2TxMXene for supercapacitors[J]. Chemical Engineering Journal, 2025, 522: 167612. |
| [26] | WANG S B, LIU Y, LIU Y Y, et al. Effect of HF etching on titanium carbide (Ti3C2Tx) microstructure and its capacitive properties[J]. Chemical Engineering Journal, 2023, 452: 139512. |
| [27] | ALHABEB M, MALESKI K, ANASORI B, et al. Guidelines for synthesis and processing of two-dimensional titanium carbide (Ti3C2TxMXene)[M]//MXenes. New York: Jenny Stanford Publishing, 2023: 415-449. |
| [28] | TIAN W H, REN P G, HOU X, et al. Advanced porous N-doped MXene/graphene/porous carbon as self-standing thick electrode for zinc-ion hybrid supercapacitors with wide working temperature range[J]. Carbon, 2025, 244: 120661. |
| [29] | ZHAO D D, XU D, WANG T T, et al. Nitrogen-rich nanoporous carbon with MXene composite for high-performance Zn-ion hybrid capacitors[J]. Materials Today Energy, 2024, 45: 101671. |
| [30] | LU W, LIU H P, LI S Q, et al. Boron and defects co-doped MXene enables high-performance Na-Se batteries[J]. Journal of Colloid and Interface Science, 2025, 683: 655-666. |
| [31] | JIN C J, GUO F J, MI H Y, et al. Template-oriented synthesis of boron/nitrogen-rich carbon nanoflake superstructure for high-performance Zn-ion hybrid capacitors[J]. Carbon Energy, 2025, 7(3): e673. |
| [32] | LUO Y J, QUE W X, TANG Y, et al. Regulating functional groups enhances the performance of flexible microporous MXene/bacterial cellulose electrodes in supercapacitors[J]. ACS Nano, 2024, 18(18): 11675-11687. |
| [33] | LIU L S, ZHANG X H, ZHANG D H, et al. Regulating the N/B ratio to construct B,N co-doped carbon nanotubes on carbon felt for high-performance vanadium redox flow batteries[J]. Chemical Engineering Journal, 2023, 473: 145454. |
| [34] | TAO L M, PANG K, QIN W, et al. Facile fabrication of boron-doped titanium carbide for efficient electrocatalytic nitrogen reduction[J]. Catalysis Science & Technology, 2023, 13(15): 4517-4524. |
| [35] | WANG H F, WANG Y R, CHANG J, et al. Nacre-inspired strong MXene/cellulose fiber with superior supercapacitive performance via synergizing the interfacial bonding and interlayer spacing[J]. Nano Letters, 2023, 23(12): 5663-5672. |
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