Page 59 - Read Online
P. 59

Zhang et al. Soft Sci. 2026, 6, 16                                               Page 17 of 17





               55.  Duan, G.; Zhang, H.; Zhang, C.; Jiang, S.; Hou, H. High mass-loading α-Fe 2 O 3  nanoparticles anchored on nitrogen-doped wood carbon
                  for high-energy-density supercapacitor. Chin. Chem. Lett. 2023, 34, 108283. DOI
               56.  Arun, T.; Prabakaran, K.; Udayabhaskar, R.; Mangalaraja, R.; Akbari-Fakhrabadi, A. Carbon decorated octahedral shaped Fe 3 O 4  and
                  α-Fe 2 O 3  magnetic hybrid nanomaterials for next generation supercapacitor applications. Appl. Surf. Sci. 2019, 485, 147-57. DOI
               57.  Yan, C.; Yang, X.; Lu, S.; et al. Hydrothermal synthesis of vanadium doped nickel sulfide nanoflower for high-performance
                  supercapacitor. J. Alloys. Compd. 2022, 928, 167189. DOI
               58.  Guo, T.; Zhou, D.; Pang, L.; Sun, S.; Zhou, T.; Su, J. Perspectives on working voltage of aqueous supercapacitors. Small 2022, 18,
                  e2106360. DOI PubMed
               59.  Zhang, Q.; Zhang, C.; Yang, F.; et al. High performance fiber-shaped flexible asymmetric supercapacitor based on MnO 2  nanostructure
                  composited with CuO nanowires and carbon nanotubes. Ceram. Int. 2022, 48, 13996-4003. DOI
               60.  Issar, S.; Kodan, S.; Bansal, A.; Tomar, A.; Choudhary, N.; Chandra, R. Li-salt assisted high performance bimetallic titanium vanadium
                  nitride-based symmetric supercapacitor device for energy storage application. Electrochim. Acta. 2025, 535, 146636. DOI
               61.  Azizi, E.; Arjomandi, J.; Shi, H.; Kiani, M. A. Flexible polypyrrole/TiO 2 /MXene nanocomposite supercapacitor: a promising energy
                  storage device. J. Energy. Storage. 2024, 75, 109665. DOI
               62.  Zhuang, Q.; Li, W.; Zhu, Z.; et al. Facile growth of hierarchical SnO 2 @PPy composites on carbon cloth as all-solid-state flexible
                  supercapacitors. J. Alloys. Compd. 2022, 906, 164275. DOI
               63.  Zheng, D.; Lai, Y.; Wang, M.; et al. Robust nanoporous copper-nickel@copper-nickel oxides/metallic glass sandwiches enabling highly
                  flexible supercapacitors. Appl. Surf. Sci. 2025, 696, 162995. DOI
               64.  Yao, P.; Lv, A.; Shi, L.; et al. Multi-level nanostructures of NiCoP/CNTs/CuO nanowire arrays/Cu foam with excellent electrochemical
                  performance for flexible supercapacitors. J. Alloys. Compd. 2024, 1009, 176847. DOI
               65.  Zhao, Z.; Yang, J.; Lin, J.; et al. Mesoporous Co 0.85 Se nanowire arrays for flexible asymmetric supercapacitors with high energy and
                  power densities. J. Energy. Storage. 2023, 65, 107360. DOI
               66.  Nie, Y.; Ping, R.; Ji, C.; et al. Achieving superior high-life-stability and stable structure for flexible fiber electrodes inspired by Bamboo
                  rice dumpling. Electrochim. Acta. 2023, 452, 142352. DOI
               67.  Dong, K.; Zan, G.; Mao, X.; et al. A conductive folding metamaterial via laser-induced biomimetic electrospinning. Proc. Natl. Acad.
                  Sci. U. S. A. 2025, 122, e2516066122. DOI PubMed PMC
               68.  Wang, H.; Dong, C.; Gui, Y.; et al. Self-powered Sb 2 Te 3 /MoS 2  heterojunction broadband photodetector on flexible substrate from visible
                  to near infrared. Nanomaterials 2023, 13, 1973. DOI PubMed PMC
               69.  Li, L.; Fu, C.; Lou, Z.; et al. Flexible planar concentric circular micro-supercapacitor arrays for wearable gas sensing application. Nano.
                  Energy. 2017, 41, 261-8. DOI
               70.  Meng, S.; Wang, N.; Cao, X. Built-in piezoelectric nanogenerators promote sustainable and flexible supercapacitors: a review. Materials
                  2023, 16, 6916. DOI PubMed PMC



               Disclaimer/Publisher’s Note: All statements, opinions, and data contained in this publication are solely those of the individual author(s) and
               contributor(s) and do not necessarily reflect those of OAE and/or the editor(s). OAE and/or the editor(s) disclaim any responsibility for harm to
               persons or property resulting from the use of any ideas, methods, instructions, or products mentioned in the content.

                          © The Author(s) 2026. Open Access This article is licensed under a Creative Commons Attribution 4.0 International License
                          (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, sharing, adaptation, distribution and
               reproduction in any medium or format, for any purpose, even commercially, as long as you give appropriate credit to the original author(s) and
               the source, provide a link to the Creative Commons license, and indicate if changes were made.
   54   55   56   57   58   59   60   61   62   63   64