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Zhang et al. Soft Sci. 2026, 6, 16                                               Page 15 of 17





               4.  Song, W.; Wang, K.; Lian, X.; Zheng, F.; Niu, H. Non-preoxidation synthesis of MXene integrated flexible carbon film for
                  supercapacitors. Chem. Eng. J. 2024, 493, 152804. DOI
               5.  Zhang, W.; Xu, J.; Li, G.; Wang, K. Nitrogen-doped nanoporous anodic stainless steel foils towards flexible supercapacitors. Materials
                  2022, 15, 1615. DOI PubMed PMC
               6.  Li, S.; Zhao, M.; Peng, C.; Xiao, Y.; Yu, S. Binder-free carbon nanofiber@carbon cloth for supercapacitor and Li-ion capacitor. Appl.
                  Surf. Sci. 2025, 685, 161990. DOI
               7.  Xiong, C.; Wang, T.; Han, J.; Zhang, Z.; Ni, Y. Recent research progress of paper‐based supercapacitors based on cellulose. Energy.
                  Environ. Mater. 2023, 7, e12651. DOI
               8.  Kumar, R.; Ranjan, B.; Kumar, K.; Shankhdhar, S.; Kaur, D. Ti–Cr–N nanopyramid/nitrogen-doped carbon quantum dot/stainless steel
                  mesh as a flexible supercapacitor electrode. ACS. Appl. Nano. Mater. 2024, 7, 7663-73. DOI
               9.  Zhu, Y.; Cheng, S.; Zhou, W.; et al. Construction and performance characterization of α-Fe 2 O 3 /rGO composite for long-cycling-life
                  supercapacitor anode. ACS. Sustainable. Chem. Eng. 2017, 5, 5067-74. DOI
               10.  Ahmed, I. B.; Diaby, M.; Nafati, H.; et al. Supercapacitive performance of 3D-cobalt oxide (Co 3 O 4 ) nanowires grown onto anodized
                  stainless-steel substrate: effect of anodization time. Solid. State. Sci. 2024, 152, 107537. DOI
               11.  Feng, T.; Luo, X.; Liu, Z.; et al. Nanoarchitectonics of highly flexible iron-oxide nanoporous electrodes on stainless steel substrate for
                  wearable supercapacitors. Appl. Phys. Rev. 2024, 11, 041414. DOI
               12.  Chai, C.; Feng, T.; Liu, Z.; et al. Vanadium-doped nanoporous structure on stainless steel substrate for high-performance flexible
                  supercapacitor. J. Power. Sources. 2025, 628, 235933. DOI
               13.  Huang, P.; Lethien, C.; Pinaud, S.; et al. On-chip and freestanding elastic carbon films for micro-supercapacitors. Science 2016, 351,
                  691-5. DOI PubMed
               14.  Pauleau, Y.; Thièry, F. Deposition and characterization of nanostructured metal/carbon composite films. Surf. Coat. Technol. 2004,
                  180-1, 313-22. DOI
               15.  Asen, P.; Shahrokhian, S.; Zad, A. I. Transition metal ions-doped polyaniline/graphene oxide nanostructure as high performance
                  electrode for supercapacitor applications. J. Solid. State. Electrochem. 2017, 22, 983-96. DOI
               16.  Wang, C.; Diao, D. Cross-linked graphene layer embedded carbon film prepared using electron irradiation in ECR plasma sputtering.
                  Surf. Coat. Technol. 2011, 206, 1899-904. DOI
               17.  Gao, S.; Liu, L.; Lin, Z.; Zhang, X.; Diao, D. High photoresponsivity of vertical graphene nanosheets/P-Si enhanced by electron trapping
                  at edge quantum wells. J. Phys. Chem. C. 2021, 125, 5392-8. DOI
               18.  Huang, L.; Cao, Y.; Diao, D. Surface N-doped graphene sheets induced high electrocatalytic activity for selective ascorbic acid sensing.
                  Sens. Actuators. B. Chem. 2019, 283, 556-62. DOI
               19.  Wu, Z. S.; Parvez, K.; Feng, X.; Müllen, K. Graphene-based in-plane micro-supercapacitors with high power and energy densities. Nat.
                  Commun. 2013, 4, 2487. DOI PubMed PMC
               20.  Kim, M.; Ha, J.; Kim, Y.; Choi, J. Stainless steel: a high potential material for green electrochemical energy storage and conversion.
                  Chem. Eng. J. 2022, 440, 135459. DOI
               21.  Saeki, I.; Saito, T.; Furuichi, R.; et al. Growth process of protective oxides formed on type 304 and 430 stainless steels at 1273 k. Corros.
                  Sci. 1998, 40, 1295-302. DOI
               22.  Dwivedi, N.; Yeo, R. J.; Zhang, Z.; Dhand, C.; Tripathy, S.; Bhatia, C. S. Interface engineering and controlling the friction and wear of
                  ultrathin carbon films: high sp  versus high sp  carbons. Adv. Funct. Mater. 2016, 26, 1526-42. DOI
                                      3
                                                2
               23.  Mu, Y.; Pei, X.; Zhao, Y.; et al. In situ confined vertical growth of Co 2.5 Ni 0.5 Si 2 O 5 (OH) 4  nanoarrays on rGO for an efficient oxygen
                  evolution reaction. Nano. Mater. Sci. 2023, 5, 351-60. DOI
               24.  Atamny, F.; Blöcker, J.; Dübotzky, A.; et al. Surface chemistry of carbon: activation of molecular oxygen. Mol. Phys. 1992, 76, 851-86.
                  DOI
               25.  Wang, Y.; Yin, Z.; Fan, D.; Bai, L. Friction behaviors of DLC films in an oxygen environment: an atomistic understanding from ReaxFF
                  simulations. Tribol. Int. 2022, 168, 107448. DOI
               26.  Wang, G.; Jin, Z. Oxygen-vacancy-rich cobalt–aluminium hydrotalcite structures served as high-performance supercapacitor cathode. J.
                  Mater. Chem. C. 2021, 9, 620-32. DOI
               27.  Long, B.; Yang, H.; Wang, F.; et al. Chemically-modified stainless steel mesh derived substrate-free iron-based composite as anode
                  materials for affordable flexible energy storage devices. Electrochim. Acta. 2018, 284, 271-8. DOI
               28.  Larciprete, R.; Gardonio, S.; Petaccia, L.; Lizzit, S. Atomic oxygen functionalization of double walled C nanotubes. Carbon 2009, 47,
                  2579-89. DOI
               29.  Liu, H.; Zhu, J.; Li, Z.; Shi, Z.; Zhu, J.; Mei, H. Fe 2 O 3 /N doped rGO anode hybridized with NiCo LDH/Co(OH) 2  cathode for battery-like
                  supercapacitor. Chem. Eng. J. 2021, 403, 126325. DOI
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