Journal of Textile Research ›› 2024, Vol. 45 ›› Issue (02): 126-133.doi: 10.13475/j.fzxb.20231008901

• Textile Engineering • Previous Articles     Next Articles

Energy storage performance of three-dimensional integrated knitted supercapacitor

CHEN Lu1, SHI Bao1,2, WEI Sainan1,2, JIA Lixia1,2, YAN Ruosi1,2()   

  1. 1. College of Textile and Garments, Hebei University of Science and Technology, Shijiazhuang, Hebei 050018, China
    2. Hebei Technology Innovation Center for Textile and Garment, Hebei University of Science and Technology, Shijiazhuang, Hebei 050018, China
  • Received:2023-10-26 Revised:2023-12-26 Online:2024-02-15 Published:2024-03-29

Abstract:

Objective In recent years, the development of compatible energy sources by combining wearable technology and textiles to make supercapacitors by replacing traditional forms of batteries with energy storage fabrics has gained wide attentions. The three-dimensional integrated fabrics possess inherent porous structures for effective attachment of active materials. The two-dimensional transition metal carbide Ti3C2Tx (MXene)/zinc (Zn) three-dimensional integrated knitted structure of the flexible supercapacitor (ZSC) was designed and prepared, combining flexibility of the three-dimensional fabrics with high electrical conductivity of the MXene so as to effectively improve its energy storage performance.

Method Monolayer Ti3C2Tx(MXene) nanosheets were prepared by selective extraction of element "A" in MAX-Ti3AlC2 phase using LiF and HCl. By the constant potential electrodeposition method, Zn monomers were electrodeposited on the surface of silver-plated nylon (SPN) fibers as the anode, and SPN yarns coated with MXene was used as the cathode. The functional fibers were weft knitted using STOLL computerized flat knitting machine. Cyclic voltammetry, constant current charge/discharge and electrochemical impedance methods were used to test the storage performance and durability of three-dimensional integrated knitted supercapacitors at the electrochemical workstation.

Results The morphological characteristics of prepared MXene nanosheets and the energy storage performance of Ti3C2Tx (MXene)/Zn three-dimensional integrated knitted flexible supercapacitors were comprehensively investigated. The results showed that the prepared MXene nanosheets were in forms of monolayer structure and hexagonal lattice, which had a 2-D layered structure with a thickness of 1.95 nm and a size of 1.4 μm. The lamellar structure with the main components of C, O and Ti was coated with MXene coated with silver-plated nylon fibers (SPN) as the cathode, and zinc monomers were electrodeposited on the SPN fibers as the anode. It was tested by cyclic voltammetry. By galvanostatic charge-discharge test, it is shown good linearity and remarkable symmetrical quasi-triangular charge-discharge curves, indicating a high coulombic efficiency and a capacitance retention of 52.18% even at higher current densities. The investigation revealed reversible Zn deposition/stripping at its cathode and anode ion adsorption/desorption.

The supercapacitor exhibited a low resistance (Rs) of 6.74 Ω determined by the internal resistance of the electrode material and the electrolyte solution, and a charge transfer resistance (Rct) of about 8 Ω. The energy density of 47.99 μW·h/cm2 (25.04 μW·h/cm2) and power density of 0.5 mW/cm2 (10 mW/cm2) in this study is better than the same type of reports. After 10 000 cycles of charging and discharging, it was found to have a capacitance retention of 93.51% and a coulombic efficiency of 92.43%. There was no significant change in the energy storage performance after leaving the supercapacitor in the air for 30 days. When two 1 cm2 supercapacitor fabrics were connected in series, a small electric meter could be lit up. The capocitance retention was 94.1% after 10 h of placement, with good resistance to self-discharge.

Conclusion The three-dimensional integrated knitted structure was prepared to effectively improve the energy storage performance of the supercapacitors, and its inherent porous structure effectively attracted the active material to achieve high ion diffusion speed and charge-discharge rate. The microstructure and chemical composition of MXene were discussed and analyzed. Electrochemical testing revealed that the area capacitance was 345.56 mF/cm2 at a current density of 1 mA/cm2, 93.51% capacitance retention and 92.43% coulombic efficiency after 10 000 charge-discharge cycles, and a power density of 10 mW/cm2 at an energy density of 25.05 μW·h/cm2. The three-dimensional knitted supercapacitor has good durability. It has high voltage retention of 94.1% after 10 h in air. The promising three-dimensional integrated knitted structure for flexible supercapacitors provides a reliable and efficient power supply for wearable electronic devices.

Key words: knitting, supercapacitor, two-dimensional transition metal carbide, smart wearable

CLC Number: 

  • TS181.8

Fig. 1

Schematic diagram of MXene/Zn three-dimensional integrated knitted supercapacitor"

Fig. 2

TEM images of MXene nanosheets. (a)Monolayer MXene nanosheets; (b)Selected electron diffraction"

Fig. 3

AFM images of single-layer MXene nanosheets"

Fig. 4

EDS images of MXene/SPN(×2 500)"

Fig. 5

XRD images of MXene/SPN and Zn/SPN yarns"

Fig. 6

SEM images of SPN yarns"

Fig. 7

SEM images of flat-needle structure on surfaces of knitting fabrics. (a)Zn/SPN flat fabric(×370); (b)MXene/SPN flat fabric(×370); (c)Zn/SPN flat fabric(× 30); (d)MXene/SPN flat fabric(× 30)"

Fig. 8

Cyclic voltammetry curves"

Fig. 9

Galvanostatic charge-discharge curves"

Tab. 1

Area capacitance and capacitance retention of ZSC at different current densities"

电流密度/
(mA·cm-2)
面积电容/
(mF·cm-2)
电容保持
率/%
1 345.56 100
3 270.36 78.24
5 244.79 70.84
7.5 236.72 68.5
10 222.28 64.32
20 180.32 52.18

Fig. 10

Energy storage mechanism of ZSC"

Fig. 11

Electrochemical impedance spectroscopy result of ZSC"

Fig. 12

Power density-energy density curves of ZSC"

Fig. 13

Capacitance retention and coulombic efficiency curves of ZSC"

Fig. 14

Energy storage performance of ZSC before and after 30 days in air. (a)Cyclic voltammetry curves; (b)Galvanostatic charge-discharge curves"

Fig. 15

Self-discharge curve of ZSC"

[1] XIONG Y, HAN J, WANG Y, et al. Emerging iontronic sensing: materials, mechanisms, and applications[J]. Research, 2022, 50; 479-488.
[2] 娄辉清, 朱斐超, 李磊磊, 等. 碳纳米管/Ni/聚苯胺纤维状超级电容器的制备及其电化学性能[J]. 纺织学报, 2022, 43(11): 35-40.
LOU Huiqing, ZHU Feichao, LI Leilei, et al. Preparation and electrochemical performance of composite carbon nanotube/Ni/polyanilline fibrous supercapacitor[J]. Journal of Textile Research, 2022, 43(11): 35-40.
[3] 聂文琪, 孙江东, 许帅, 等. 柔性纺织纤维基超级电容器研究进展[J]. 纺织学报, 2022, 43(7): 200-206.
NIE Wenqi, SUN Jiangdong, XU Shuai, et al. Progress on flexible textile fibre-based supercapacitors[J]. Journal of Textile Research, 2022, 43(7): 200-206.
[4] CHEN A, WANG C, ABU O A, et al. MXene@nitrogen-doped carbon films for supercapacitor and piezoresistive sensing applications[J]. Composites Part A: Applied Science and Manufacturing, 2022.DOI:10.1016/j.compositesa.2022.107174.
[5] YUAN M, ZHANG X, WANG J, et al. Recent progress of energy-storage-device-integrated sensing systems[J]. Nanomaterials (Basel), 2023, 4(12): 645.
[6] ZHU W B, LUO H S, TANG Z H, et al. Ti3C2Tx MXene/Bamboo fiber/PDMS pressure sensor with simultaneous ultrawide linear sensing range, superb environmental stability, and excellent biocompati-bility[J]. ACS Sustainable Chemistry & Engineering, 2022, 10 (11): 3546-3556.
[7] GUNASEKARAN S S, VEERALINGAM S, BADHULIKA S, et al. "One for two" strategy of fully integrated textile based supercapacitor powering an ultra-sensitive pressure sensor for wearable applications[J]. Journal of Energy Storage, 2022. DOI:10.1016/j.est.2022.103994.
[8] NAGUIB M, KURTOGLU M, PRESSER V, et al. Two-dimensional nanocrystals produced by exfoliation of Ti3AlC2[J]. Advanced Materials, 2011, 23(37): 4248-4253.
doi: 10.1002/adma.v23.37
[9] GHIDIU M, LUKATSKAYA M R, ZHAO M Q, et al. Conductive two-dimensional titanium carbide 'clay' with high volumetric capacitance[J]. Nature, 2014, 516(7529): 78-81.
doi: 10.1038/nature13970
[10] HE J, SHI F, LIU Q, et al. Wearable superhydrophobic PPy/MXene pressure sensor based on cotton fabric with superior sensitivity for human detection and information transmission[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2022.DOI:10.1016/j.colsurfa.2022.128676.
[11] CHEN C, CHEN L, WU Z, et al. 3D double-faced interlock fabric triboelectric nanogenerator for bio-motion energy harvesting and as self-powered stretching and 3D tactile sensors[J]. Materials Today, 2020; 32: 84-93.
doi: 10.1016/j.mattod.2019.10.025
[12] WEN J, XU B, ZHOU J. Towards 3D knitted-fabric derived supercapacitors with full structural and functional integrity of fiber and electroactive mater-ials[J]. Journal of Power Sources, 2020.DOI:10.1016/j.jpowsour.2020.228559.
[13] ZHANG Y, WANG L, ZHAO L, et al. Flexible self-powered integrated sensing system with 3D periodic ordered black phosphorus @ MXene thin-films[J]. Advanced Materials, 2021.DOI:10.1002/adma.202007890.
[14] XU S K, DALL'AGNESEA Y, WEI G, et al. Screen-printable microscale hybrid device based on MXene and layered double hydroxide electrodes for powering force sensors[J]. Nano Energy, 2018, 50, 479-488.
doi: 10.1016/j.nanoen.2018.05.064
[15] PENG Y Y, AKUZUM B, KURRA N. All-MXene (2D titanium carbide) solid-state microsupercapacitors for on-chip energy storage[J]. Energy Environmental Science, 2016, 9: 2847-2854.
doi: 10.1039/C6EE01717G
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