Page 58 - Read Online
P. 58
Page 16 of 17 Zhang et al. Soft Sci. 2026, 6, 16
30. Ohkubo, K.; Kohno, N.; Yamada, Y.; Fukuzumi, S. Laser-induced pinpoint hydrogen evolution from benzene and water using metal free
single-walled carbon nanotubes with high quantum yields. Chem. Sci. 2015, 6, 666-74. DOI PubMed PMC
31. Luo, Z.; Zhu, X.; Deng, J.; Gong, K.; Zhu, X. High-value utilization of mask and heavy fraction of bio-oil: from hazardous waste to
biochar, bio-oil, and graphene films. J. Hazard. Mater. 2021, 420, 126570. DOI PubMed PMC
32. Taylor, C. A.; Wayne, M. F.; Chiu, W. K. Residual stress measurement in thin carbon films by Raman spectroscopy and
nanoindentation. Thin. Solid. Films. 2003, 429, 190-200. DOI
33. Shin, J.; Lee, C. S.; Lee, K.; Eun, K. Y. Effect of residual stress on the Raman-spectrum analysis of tetrahedral amorphous carbon films.
Appl. Phys. Lett. 2001, 78, 631-3. DOI
34. Zhang, S.; Zeng, X.; Xie, H.; Hing, P. A phenomenological approach for the Id/Ig ratio and sp fraction of magnetron sputtered a-C
3
films. Surf. Coat. Technol. 2000, 123, 256-60. DOI
35. Dwivedi, N.; Kumar, S.; Malik, H.; Govind, .; Rauthan, C.; Panwar, O. Correlation of sp and sp fraction of carbon with electrical,
3
2
optical and nano-mechanical properties of argon-diluted diamond-like carbon films. Appl. Surf. Sci. 2011, 257, 6804-10. DOI
36. Li, J.; Chen, D.; Wu, Q. α‐Fe 2 O 3 based carbon composite as pure negative electrode for application as supercapacitor. Eur. J. Inorg.
Chem. 2019, 2019, 1301-12. DOI
37. Zhou, G.; Liang, G.; Xiao, W.; et al. Porous α-Fe 2 O 3 hollow rods/reduced graphene oxide composites templated by MoO 3 nanobelts for
high-performance supercapacitor applications. Molecules 2024, 29, 1262. DOI PubMed PMC
38. Jyothibasu, J. P.; Lee, R. H. Facile, scalable, eco-friendly fabrication of high-performance flexible all-solid-state supercapacitors.
Polymers 2018, 10, 1247. DOI PubMed PMC
39. Luo, Q.; Lu, C.; Liu, L.; Zhu, M. Triethanolamine assisted synthesis of bimetallic nickel cobalt nitride/nitrogen-doped carbon hollow
nanoflowers for supercapacitor. Microstructures 2023, 3, 2023011. DOI
40. Mane, D. B.; Pore, O. C.; Sawant, D. S.; et al. Supercapacitor performance of vanadium-doped nickel hydroxide microflowers
synthesized using the chemical route. Appl. Phys. A. 2023, 129, 158. DOI
41. Huang, X.; Sun, H.; Li, X.; et al. Eliminating charge transfer at cathode-electrolyte interface for ultrafast kinetics in Na-ion batteries. J.
Am. Chem. Soc. 2024, 146, 29391-401. DOI
42. Zhan, F.; Wang, H.; He, Q.; et al. Metal-organic frameworks and their derivatives for metal-ion (Li, Na, K and Zn) hybrid capacitors.
Chem. Sci. 2022, 13, 11981-2015. DOI PubMed PMC
43. Liu, Y.; Li, G.; Chen, Z.; Peng, X. CNT-threaded N-doped porous carbon film as binder-free electrode for high-capacity supercapacitor
and Li–S battery. J. Mater. Chem. A. 2017, 5, 9775-84. DOI
44. Zhang, J.; Cen, M.; Wei, T.; Wang, Q.; Xu, J. Hierarchical nickel cobalt phosphide @ carbon nanofibers composite microspheres:
ultrahigh energy densities of electrodes for supercapacitors. Nanomaterials 2023, 13, 2927. DOI PubMed PMC
45. Mitina, A. A.; Yakimov, E. E.; Knyazev, M. A.; Korotitsky, V. I.; Redkin, A. N. Binder-free Fe 2 O 3 /MWCNT/Al electrodes for
supercapacitors. Nanomaterials 2025, 15, 1222. DOI PubMed PMC
46. Gajraj, V.; Kumar, A.; Ekta, D.; et al. Multifunctionality exploration of NiCo 2 O 4 -rGO nanocomposites: photochemical water oxidation,
methanol electro-oxidation and asymmetric supercapacitor applications. Dalton. Trans. 2021, 50, 18001-15. DOI
47. Xia, H.; Xiao, W.; Lai, M. O.; Lu, L. Facile synthesis of novel nanostructured MnO 2 thin films and their application in supercapacitors.
Nanoscale. Res. Lett. 2009, 4, 1035-40. DOI PubMed PMC
48. Li, Y.; Kang, L.; Bai, G.; et al. Solvothermal synthesis of Fe 2 O 3 loaded activated carbon as electrode materials for high-performance
electrochemical capacitors. Electrochim. Acta. 2014, 134, 67-75. DOI
49. Xu, M.; Wang, X.; Li, Z.; Yang, M.; Zhao, J. From hydroxyl group to carbonyl group: tuning the supercapacitive performance of holey
graphene. Electrochim. Acta. 2024, 473, 143491. DOI
50. Liu, L.; Lang, J.; Zhang, P.; Hu, B.; Yan, X. Facile synthesis of Fe 2 O 3 nano-dots@nitrogen-doped graphene for supercapacitor electrode
with ultralong cycle life in KOH electrolyte. ACS. Appl. Mater. Interfaces. 2016, 8, 9335-44. DOI PubMed
51. Xu, J.; Li, M.; Sheng, W.; et al. One-step synthesis of ultra-small Fe 2 O 3 nanoparticles on carbon nanotubes at a low temperature as a
high-performance anode for supercapacitors. Ionics 2020, 26, 5211-9. DOI
52. Wan, L. M.; Xia, Q. Y.; Wu, J. H.; et al. Stabilizing charge storage of Fe 2 O 3 ‐based electrode via phosphate ion functionalization for long
cycling life. Rare. Metals. 2022, 42, 39-46. DOI
53. Liu, W.; Zhu, M.; Liu, J.; Li, X.; Liu, J. Flexible asymmetric supercapacitor with high energy density based on optimized MnO 2 cathode
and Fe 2 O 3 anode. Chin. Chem. Lett. 2019, 30, 750-6. DOI
54. Singh, U.; Patra, M.; Chakraborty, A. K.; Shukla, S.; Saxena, S. α‐Fe 2 O 3 nanocubes as high‐performance anode for supercapacitor. Adv.
Sustain. Syst. 2025, 9, 2400704. DOI

