无机材料学报 ›› 2023, Vol. 38 ›› Issue (6): 619-633.DOI: 10.15541/jim20220566
收稿日期:
2022-09-26
修回日期:
2022-11-21
出版日期:
2022-12-09
网络出版日期:
2022-12-09
作者简介:
丁玲(1976-), 女, 教授. E-mail: dingling@wust.edu.cn
基金资助:
DING Ling1(), JIANG Rui1, TANG Zilong2, YANG Yunqiong3
Received:
2022-09-26
Revised:
2022-11-21
Published:
2022-12-09
Online:
2022-12-09
About author:
DING Ling (1976-), female, professor. E-mail: dingling@wust.edu.cn
Supported by:
摘要:
温室气体的过量排放对全球气候产生严重不良影响, 如何减少碳排放已成为全球性议题。超级电容器具有使用寿命长、功率密度高、碳排放量相对较低的优点。大力发展超级电容器储能是建立未来能源系统的可靠和有效措施。MXene材料具有优良的亲水性、电导率、高电化学稳定性和表面化学可调性, 近年来在超级电容器储能应用研究领域广受关注, 但MXene严重的自堆叠问题限制了其储能性能充分发挥, 开发更先进的MXene材料对于下一代高性能电化学储能设备至关重要。基于此, 本文综述了MXene材料在超级电容器储能应用领域的研究进展, 介绍了MXene的结构和储能特性, 探讨了MXene的储能机理, 重点剖析了纳米工程改进MXene电极性能的结构设计, 详细总结了MXene复合材料构效关系和在超级电容器应用方面的最新研究进展, 最后提出了MXene材料用作超级电容器电极的研究方向和发展趋势。
中图分类号:
丁玲, 蒋瑞, 唐子龙, 杨运琼. MXene材料的纳米工程及其作为超级电容器电极材料的研究进展[J]. 无机材料学报, 2023, 38(6): 619-633.
DING Ling, JIANG Rui, TANG Zilong, YANG Yunqiong. MXene: Nanoengineering and Application as Electrode Materials for Supercapacitors[J]. Journal of Inorganic Materials, 2023, 38(6): 619-633.
图1 MXene在(a)水系和(b)非水系Li+电解质中的结构变化和电子结构变化示意图[21]
Fig. 1 Schematic illustration of structural and electronic structural changes of MXene in (a) aqueous and (b) nonaqueous Li+ electrolytes[21] φ, inner potential; ηe, electron electrochemical potential
图2 含碘端基MXene的制备方法与电化学性能[43]
Fig. 2 Preparation method and electrochemical performance of iodine-containing terminated MXene[43] (a) Preparing strategy by Lewis-acid melt etching; (b) CV curves of I-Ti3C2 MXene and HF-Ti3C2Tx MXene at 5 mV·s−1; WE, working electrode; RE, reference electrode; CE, counter electrode Colorful figures are available on website
图3 900N-Ti2CTx纳米片的合成方法与电化学性能[49]
Fig. 3 Synthesis procedure and electrochemical performance of 900N-Ti2CTx nanosheets[49] (a) Synthesis procedure; (b) CV curves at 100 mV·s−1; (c) Discharge current density as a function of scanning rate; 1 Å = 0.1 nm Colorful figures are available on website
图4 MXene带MR-0.5的(a)制备过程和(b)电化学性能[53]
Fig. 4 (a) Schematic illustration of the preparation and (b) electrochemical performance of the MXene ribbon MR-0.5[53] Colorful figures are available on website
图5 d-Ti3C2/NF复合材料的制备示意图和电化学性能[58]
Fig. 5 Schematic illustration and electrochemical performance of d-Ti3C2/NF composite[58] (a) Schematic illustration; (b) CV curves at 20 mV·s−1; (c) GCD curves at 1 A·g−1 Colorful figures are available on website
图6 MXene/PANI薄膜制备过程示意图和电化学性能[61]
Fig. 6 Preparative schematic illustration and electrochemical performance of MXene/PANI film[61] (a) Preparative schematic diagram; (b) CV plots of MP0, MP2, MP5 and MP8 at a scan rate of 50 mV·s−1 Colorful figures are available on website
图7 MXene尺寸分级设备示意图和尺寸细化效应表征的电化学性能[69]
Fig. 7 Schematic diagram of the equipment used for size grading MXene and size-refinement effect characterization[69] (a) Schematic diagram of the equipment; (b) Stress-strain curves; (c) GCD curves at 1 A·g−1 Colorful figures are available on website
图8 有序MXene水凝胶电极的多尺度结构工程制备策略示意图和电化学性能[70]
Fig. 8 Preparative schematic illustration of multi-scale structural engineering strategy and electrochemical performance of ordered MXene hydrogel supercapacitor electrode[70] (a) Preparative schematic illustration; (b) CV plots at 100 mV·s−1; (c) Rate performance Colorful figures are available on website
Electrode | Specific capacity | Rate capability | Power density/energy density | Electrolyte | Ref. |
---|---|---|---|---|---|
MXene-rHGO | 1445 F·cm−3@2 mV·s−1 | 988 F·cm−1@500 mV·s−1 | 38.6 Wh·L−1/206 W·L−1 | 3 mol·L−1 H2SO4 | [ |
Ti3C2/CNTs | 134 F·g-1@1 A·g-1 | - | 2.77 Wh·kg−1/311 W·kg−1 | 6 mol·L−1 KOH | [ |
MnO2@MXene/CNT | 371.1 F·cm−3@1 A·cm−3 | - | 8.22 mWh·cm−3/ 276.28 mW·cm−3 | 1 mol·L−1 H2SO4 | [ |
MnO2/Ti3C2Tx | 130.5 F·g−1@0.2 A·g−1 | 130.5 F·g−1@0.2 A·g−1 | - | 1 mol·L−1 Na2SO4 | [ |
Co3O4-Nb2C | 1061 F·g-1@2 A·g-1 | 547 F·g−1@50 A·g−1 | 60.3 Wh·kg−1/670 W·kg−1 | 6 mol·L−1 KOH | [ |
Co-MXene | 1081 F·g-1@0.5 A·g-1 | - | 26.06 Wh·kg−1/700 W·kg−1 | 6 mol·L−1 KOH | [ |
MXene/MnCo2O4 | 806.67 F·g-1@1 A·g-1 | 545.83 F·g−1@5 A·g−1 | 26.8 Wh·kg−1/2.88 kW·kg−1 | 1 mol·L−1 KOH | [ |
NiMoO4/Ti3C2Tx | 545.5 C·g−1 (1364 F·g−1)@0.5 A·g−1 | 66.5 C·g−1 @5 A·g−1 | 33.36 Wh·kg−1/400.08 W·kg−1 | 3 mol·L−1 KOH | [3] |
MoO3 NWs/MXene@CC | 775 F·g-1@1 A·g-1 | - | - | 2 mol·L−1 KOH | [ |
Ti3C2Tx/CoS2 | 1320 F·g−1@1 A·g−1 | 1320 F·g−1@1 A·g−1 | - | 2 mol·L−1 KOH | [ |
MXene-NiCo2S4@NF | 596.69 C·g−1@1 A·g−1 | 596.69 C·g−1@1 A·g−1 | - | 3 mol·L−1 KOH | [ |
Ti3C2-DA-NiMoS4 | 1288 F·g-1@1 A·g-1 | 1288 F·g−1@1 A·g−1 | 40.5 Wh·kg−1/810 W·kg−1 | Not mentioned | [ |
NiCo2Se4/MXene | 953.8 F·g-1@1 A·g-1 | - | 22.4 Wh·kg−1/800 W·kg−1 | 3 mol·L−1 KOH | [ |
Co Ni(Ox)Se @MXene | 1782 F·g-1@5 mV·s-1 | - | 7.2 kW·kg−1/131.9 Wh·kg−1 | 1 mol·L−1 KOH | [ |
NS-MXene | 495 F·g-1@1 A·g-1 | 180 F·g−1@10 A·g−1 | - | 1 mol·L−1 H2SO4 | [ |
MXene-PANI/a-Fe2O3-MnO2/MXene-PANI | 661 F·g-1 3138 mF·cm−3@3 mV·s -1 | - | 53.32 Wh·L−1/17.45 Wh·kg−1 | 1 mol·L−1 H2SO4 | [ |
Ti3C2Tx/Ni-MOFs | 1124 F·g-1@1 A·g-1 | 697 F·g−1@20 A·g−1 | 24 Wh·kg−1/8 kW·kg−1 | 6 mol·L−1 KOH | [ |
BiOCl-Ti3C2Tx | 396.5 F·cm−3@1 A·g-1 | 228 F·cm−3@15 A·g−1 | 15.2 Wh·kg−1/567.4 W·kg−1 | 1 mol·L−1 KOH | [ |
表1 MXene基电极电化学性能
Table 1 Examples of electrochemical properties of MXene-based electrodes
Electrode | Specific capacity | Rate capability | Power density/energy density | Electrolyte | Ref. |
---|---|---|---|---|---|
MXene-rHGO | 1445 F·cm−3@2 mV·s−1 | 988 F·cm−1@500 mV·s−1 | 38.6 Wh·L−1/206 W·L−1 | 3 mol·L−1 H2SO4 | [ |
Ti3C2/CNTs | 134 F·g-1@1 A·g-1 | - | 2.77 Wh·kg−1/311 W·kg−1 | 6 mol·L−1 KOH | [ |
MnO2@MXene/CNT | 371.1 F·cm−3@1 A·cm−3 | - | 8.22 mWh·cm−3/ 276.28 mW·cm−3 | 1 mol·L−1 H2SO4 | [ |
MnO2/Ti3C2Tx | 130.5 F·g−1@0.2 A·g−1 | 130.5 F·g−1@0.2 A·g−1 | - | 1 mol·L−1 Na2SO4 | [ |
Co3O4-Nb2C | 1061 F·g-1@2 A·g-1 | 547 F·g−1@50 A·g−1 | 60.3 Wh·kg−1/670 W·kg−1 | 6 mol·L−1 KOH | [ |
Co-MXene | 1081 F·g-1@0.5 A·g-1 | - | 26.06 Wh·kg−1/700 W·kg−1 | 6 mol·L−1 KOH | [ |
MXene/MnCo2O4 | 806.67 F·g-1@1 A·g-1 | 545.83 F·g−1@5 A·g−1 | 26.8 Wh·kg−1/2.88 kW·kg−1 | 1 mol·L−1 KOH | [ |
NiMoO4/Ti3C2Tx | 545.5 C·g−1 (1364 F·g−1)@0.5 A·g−1 | 66.5 C·g−1 @5 A·g−1 | 33.36 Wh·kg−1/400.08 W·kg−1 | 3 mol·L−1 KOH | [3] |
MoO3 NWs/MXene@CC | 775 F·g-1@1 A·g-1 | - | - | 2 mol·L−1 KOH | [ |
Ti3C2Tx/CoS2 | 1320 F·g−1@1 A·g−1 | 1320 F·g−1@1 A·g−1 | - | 2 mol·L−1 KOH | [ |
MXene-NiCo2S4@NF | 596.69 C·g−1@1 A·g−1 | 596.69 C·g−1@1 A·g−1 | - | 3 mol·L−1 KOH | [ |
Ti3C2-DA-NiMoS4 | 1288 F·g-1@1 A·g-1 | 1288 F·g−1@1 A·g−1 | 40.5 Wh·kg−1/810 W·kg−1 | Not mentioned | [ |
NiCo2Se4/MXene | 953.8 F·g-1@1 A·g-1 | - | 22.4 Wh·kg−1/800 W·kg−1 | 3 mol·L−1 KOH | [ |
Co Ni(Ox)Se @MXene | 1782 F·g-1@5 mV·s-1 | - | 7.2 kW·kg−1/131.9 Wh·kg−1 | 1 mol·L−1 KOH | [ |
NS-MXene | 495 F·g-1@1 A·g-1 | 180 F·g−1@10 A·g−1 | - | 1 mol·L−1 H2SO4 | [ |
MXene-PANI/a-Fe2O3-MnO2/MXene-PANI | 661 F·g-1 3138 mF·cm−3@3 mV·s -1 | - | 53.32 Wh·L−1/17.45 Wh·kg−1 | 1 mol·L−1 H2SO4 | [ |
Ti3C2Tx/Ni-MOFs | 1124 F·g-1@1 A·g-1 | 697 F·g−1@20 A·g−1 | 24 Wh·kg−1/8 kW·kg−1 | 6 mol·L−1 KOH | [ |
BiOCl-Ti3C2Tx | 396.5 F·cm−3@1 A·g-1 | 228 F·cm−3@15 A·g−1 | 15.2 Wh·kg−1/567.4 W·kg−1 | 1 mol·L−1 KOH | [ |
图9 (a)I-Ti3C2中间层插层PPy示意图和(b)I-Ti3C2中间层插层PPy原子尺度示意图[94]
Fig. 9 (a) Schematic and (b) atomic-scale schematic of intercalated PPy in the interlayer of I-Ti3C2[94]
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