Research on Interface Control and Electrochemical Performance Optimization of High Stability Textile based Composite Electrode Materials
Main Article Content
Abstract
In response to the urgent demand for high stability, high conductivity, and long-life electrode materials in fields such as wearable electronics, flexible energy storage, and smart fabrics, textile based composite electrodes have become a research hotspot due to their advantages of flexibility, breathability, braiding, and low cost. However, the current textile based electrodes generally have bottlenecks such as weak interfacial bonding strength, easy breakage of conductive networks, easy detachment of active substances, poor cycling stability, and insufficient rate performance, which seriously restrict their practical applications. This article focuses on improving the long-term stability and electrochemical perfor mance of electrodes, and systematically conducts research on interface regulation and performance optimization of textile based composite electrodes. Construct a three in one structural model of “fiber substrate transition interface active layer” to reveal the intrinsic relationship between interface binding force, charge transfer, ion diffusion, and structural stability; Propose four types of interface control strategies: interface etching, interface bridging, interface cross-linking, and interface encapsulation, to achieve strong bonding between the substrate and functional layer. The stable textile electrode interface supports flexible energy storage and wearable sensing devices where electrical contact reliability is critical.
Downloads
Article Details

This work is licensed under a Creative Commons Attribution 4.0 International License.
Authors who publish with this journal agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution License that allows others to share the work with an acknowledgement of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgement of its initial publication in this journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work (See The Effect of Open Access).
References
Z. Jie, L. Pan, W. Guoxiang, et al., “Design strategy for high-performance bifunctional electrode materials with heterogeneous structures formed by hydrothermal sulfur etching,” Journal of Colloid And Interface Science, vol. 633, pp. 608-618, 2023, doi: 10.1016/J.JCIS.2022.11.133.
M, “J G, Luis A H, G,” J R, et al. Metalglycerolates and their derivatives as electrode materials: A review on recent developments, challenges, and future perspectives. Coordination Chemistry Reviews, vol. 477, 2023, doi: 10.1016/J.CCR.2022.214954.
T. Zhiyou, W. Wang, Z. Mengke, et al., “Ti3C2Tx MXene@carbon dots hybrid microflowers as a binder-free electrode material toward high capacity capacitive deionization,” Desalination, vol. 548, 2023, doi: 10.1016/J.DESAL.2022.116267.
F. Xiaoping, G. Wen, C. Long, et al., “Coal-derived N,O codoped mesoporous carbon as electrode material for high performance aqueous electric double layer capacitors and zinc-ion hybrid supercapacitors,” Electrochimica Acta, vol. 439, 2023, doi: 10.1016/J.ELECTACTA.2022.141576.
W. Da, J. Yao, S. Wei, et al., “Fundamentals and advances of ligand field theory in understanding structure-electrochemical property relationship of intercalation-type electrode materials for rechargeable batteries,” Progress in Materials Science, vol. 133, 2023, doi: 10.1016/J.PMATSCI.2022.101055.
N. Sunny, Y. Yichen, Y. Xintong, et al., “Vanadyl ethylene glycolate: A novel organic-inorganic electrode material for rechargeable aqueous aluminum-ion battery,” Solid State Ionics, vol. 389, 2023, doi: 10.1016/J.SSI.2022.116085.
P. Yuanyou, Y. Meimei, Z. Lei, et al., “A 3D nanosandwich structure constructed by intercalation of aramid nanofibers preventing restack of graphene for high surface area electrode materials,” Applied Surface Science, vol. 612, 2023, doi: 10.1016/J.APSUSC.2022.155903.
L. Jinjie, K. Lu, L. Ketong, et al., “Encapsulating Cu2Se into 3D porous carbon as high-voltage electrode materials for aluminum-ion batteries,” Ceramics International, vol. 49, no. 2, pp. 2613-2618, 2023, doi: 10.1016/J.CERAMINT.2022.09.241.
S. Chetana, U. Sanjay, J. Chandra N, et al., “A facile supercritical fluid synthesis of cobalt sulfide integrated with MXene and PANI/PEDOT nanocomposites as electrode material for supercapacitor applications,” FlatChem, vol. 37, 2023, doi: 10.1016/J.FLATC.2022.100456.
A, “D S, L,” J A, Binbin L, et al. Multivariate hyperspectral data analytics across length scales to probe compositional, phase, and strain heterogeneities in electrode materials. Patterns, vol. 3, no. 12, Art. no. 100634, 2022, doi: 10.1016/J.PATTER.2022.100634.
I. Zahir M, A. Nayyab, S. Salma, et al., “Exploring the synergy of binder free MoWS2@Ag as electrode materials for hybrid supercapacitors,” Journal of Energy Storage, vol. 56, no. PB, 2022, doi: 10.1016/J.EST.2022.105925.
M. Singh J, V. Roudabeh, and W. Henrik, “From wood to supercapacitor electrode material via fast pyrolysis,” Journal of Energy Storage, vol. 57, 2023, doi: 10.1016/J.EST.2022.106179.
W. Hongyan, T. Lecheng, Z. Xin, et al., “In situ growth MoS2/NiS composites on Ni foam as electrode materials for supercapacitors,” Materials Today Communications, vol. 34, 2023, doi: 10.1016/J.MTCOMM.2022.105041.
W. Chunxiao, L. Zhiqiang, S. Yuesheng, et al., “Honeycomb-like MgCo2O4@ZnCo layered double hydroxide as novel electrode material for high-performance all-solid-state supercapacitors,” Applied Surface Science, vol. 612, 2023, doi: 10.1016/J.APSUSC.2022.155661.
G.T, “C, A,” S, R.C. P, et al. Hierarchical framework of CoZnS as a high-performance electrode material for supercapacitors. Ceramics International, vol. 49, no. 1, pp. 282-293, 2023, doi: 10.1016/J.CERAMINT.2022.08.342.
Y. Sapna, Y. Jyoti, K. Manoj, et al., “Synthesis and characterization of nickel oxide/cobalt oxide nanocomposite for effective degradation of methylene blue and their comparative electrochemical study as electrode material for supercapacitor application,” International Journal of Hydrogen Energy, vol. 47, no. 99, pp. 41684-41697, 2022, doi: 10.1016/J.IJHYDENE.2022.02.011.
J. Aman, C. Prakash, and S. Sunaina, “Improved electrochemical performance of rare earth doped Bi1-xMxPO4 (x = 0, 0.15; M = La, Ce, Sm) Nanostructures as electrode material for energy storage applications,” Journal of Alloys and Compounds, vol. 935, no. P2, 2023, doi: 10.1016/J.JALLCOM.2022.168063.
D. Junjie, Z. Wenwen, L. Sen, et al., “FeCo2O4@PC as the electrode material for enhanced electrochemical performance of supercapacitors,” Diamond & Related Materials, vol. 131, 2023, doi: 10.1016/J.DIAMOND.2022.109584.
J. Amrita, M. Rashmi S, T. Rui, et al., “Vanadium oxide nanorods as an electrode material for solid state supercapacitor,” Scientific Reports, vol. 12, no. 1, Art. no. 21024, 2022, doi: 10.1038/s41598-022-25707-z.
S. Sandra, M. Vukojevic N, V. Ladislav, et al., “Combining natural zeolite and electrocoagulation with different electrode materials – electrode surface analysis and Taguchi optimization,” Applied Surface Science Advances, vol. 12, 2022, doi: 10.1016/J.APSADV.2022.100330.