BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (8): 2932-2943.DOI: 10.16552/j.cnki.issn1001-1625.2026.0126
• Functional Materials • Previous Articles Next Articles
MA Sasa(
), CHEN Yongjun, HE Zihan, WANG Qianyi, WANG Zichen, LI Jianbao, LUO Lijie(
)
Received:2026-02-03
Revised:2026-03-02
Online:2026-08-15
Published:2026-09-01
Contact:
LUO Lijie
CLC Number:
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 |
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 | [ |
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. |
| [1] | YU Jiahui, HE Ke, LI Mengyu, YANG Zhiguang, CHEN Qianqian, FAN Bingbing. Research Progress of Metal-Organic Framework Derivatives in the Field of Energy Storage [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2025, 44(7): 2680-2692. |
| [2] | ZHANG Yaxin, LUO Dongqing, WANG Feifei, LYU Jingbo, QIN Zengming. Design and Performance Optimization of High-Entropy Perovskite La0.7Sr0.3Co0.4Fe0.1Ni0.4Cu0.1O3 Supercapacitor Electrode Materials [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2025, 44(7): 2693-2700. |
| [3] | MENG Xudong, WANG Siyan, QUAN Bo, JIN Aihua. Preparation of Nickel Sulfide/Carbon Composite Materials and Their Sodium Storage Performance [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2025, 44(10): 3864-3872. |
| [4] | DONG Hao, CAO Zhiqun, LI Na, WEI Zhaotong. Preparation and Performance of High-Performance LSFT-GDC Composite Electrode [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2025, 44(10): 3873-3879. |
| [5] | CHANG Hong, NIU Jiachun. Preparation and CO2 Electrolysis Performance of A-Site Deficient La6Sr0.3Cr0.5Fe0.5O3-δ Materials [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2024, 43(12): 4649-4656. |
| [6] | YUAN Zhongchun, LI Jia, YAO Mengqin, LIU Fei, MA Jun, GENG Shuo. Electrochemical Performance of Lithium-Rich Manganese-Based Cathode Materials Improved by Polymorphic MnO2 [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2023, 42(9): 3387-3394. |
| [7] | LI Qiwang, ZHANG Weike, WANG Jiawei, GAO Bowen, CHEN Liuling. Surface Confined Synthesis and Electrochemical Performance of Si-C-N-Al [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2023, 42(8): 2895-2903. |
| [8] | LIU Xinnan, XIAO Yanzhi, HUANG Meiqi, JIANG Han, KONG Jiangrong, ZHOU Tao. Properties of LSCM-GDC Composite Cathode Impregnatedwith Ni and Cu [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2022, 41(7): 2458-2466. |
| [9] | HUANG Jinping, CHEN Qing, LI Jianbao, LUO Lijie, CHEN Yongjun. Fabrication and Electrochemical Performances of Ga-Doped FeNb11O29 Materials [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2021, 40(8): 2740-2747. |
| [10] | ZHA Cheng, ZHANG Tianyu, JI Yuchen, LIU Shuhe. Research Progress of Cathode Materials for Lithium-Sulfur Battery [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2021, 40(4): 1352-1360. |
| [11] | ZHANG Ying-jie;ZHAO Li-wen;CHU Hua;YUAN Long-fei. Advancement in Sol-gel-systhesized Si/TiO2 Composite Anode Materials for Lithium-ion Batteries [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2016, 35(8): 2454-2459. |
| [12] | YANG Shao-bin;DONG Wei;SHEN Ding;WANG Zhong-jiang;ZHANG Jia-min;MENG Yang;SUN Wen. Effect of Ball Milling Time on the Microstructure and Reversible Storage Properties of Natural Graphite [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2016, 35(4): 1080-1084. |
| [13] | ZHANG Ying-jie;LIU Hong-bing. Research Progress on Si/C Composite Anode Materials for Lithium-ion Battery [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2015, 34(4): 989-994. |
| [14] | YAN Ke-jun;WU Si-cong;ZHEN Shu-cong;GU Shi-guo;KANG Xiao-rong. Study on Algae Removal by Enhanced Coagulation with Alternating Electromagnetic Field [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2015, 34(4): 1155-1159. |
| [15] | WANG Fen-fen;CAI Dong-hui;HUANG Hui-ying;HU Zhong-hua;XU Zi-jie. Influence of Sodium Metal on Low Temperature Graphitization of Activated Carbon [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2013, 32(9): 1704-1708. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||