1. Shamsuri AA. Functionalized Carbon Nano-onions for Polymer Composites. Journal of Nanotechnology and Nanomaterials. 2025; 6(1): 1–3. doi: 10.33696/nanotechnol.6.057
2. de Souza IAM, Augusto de Morais E, Geraldo V. Waterproofing materials by incorporating as grown carbon nanotubes into paint. Journal of Polymer Science and Engineering. 2024; 7(2): 6758. doi: 10.24294/jpse.v7i2.6758
3. Kausar A, Ahmad I. Footsteps of graphene filled polymer nanocomposites towards efficient membranes—Present and future. Journal of Polymer Science and Engineering. 2024; 7(1): 4978. doi: 10.24294/jpse.v7i1.4978
4. Chholak A, Mev N, Abedeen MZ, et al. Carbon nano onions: Synthesis and potential applications. Carbon. 2025; 245: 120814. doi: 10.1016/j.carbon.2025.120814
5. Shang F, Sun Y, Yan Z, et al. Rapid synthesis of onion-like nitrogen-doped carbon nanospheres with microwave and study of its tribological behavior. Carbon. 2025; 233: 119840. doi: 10.1016/j.carbon.2024.119840
6. Mykhailiv O, Zubyk H, Plonska-Brzezinska ME. Carbon nano-onions: Unique carbon nanostructures with fascinating properties and their potential applications. Inorganica Chimica Acta. 2017; 468: 49–66. doi: 10.1016/j.ica.2017.07.021
7. Xin Y. Carbon nano-onion as next-generation functional nanomaterial: Synthesis methods and practical applications. Functional Materials Letters. 2023; 16(06). doi: 10.1142/s1793604723300013
8. Ghalkhani M, Khosrowshahi EM, Sohouli E. Carbon nano-onions: Synthesis, characterization, and application. In: Handbook of Carbon-Based Nanomaterials. Elsevier; 2021. pp. 159–207. doi: 10.1016/b978-0-12-821996-6.00006-3
9. Júnior MLP, da Cunha WF, Júnior RTde S, et al. Dynamics and Structural Transformations of Carbon Onion-Like under High-Velocity Impacts. arXiv. 2021. doi: 10.48550/ARXIV.2109.06834
10. Čerņevičs K, Fuechsle M, Broome M, et al. Origin of metallic-like behavior in disordered carbon nano-onions. Carbon. 2023; 208: 303–310. doi: 10.1016/j.carbon.2023.03.056
11. Esparza-Cordero V, Castanedo-Carrillo C, Picos-Benítez AR, et al. Carbon-Based Nanostructured Materials: Designing, Properties and Applications. In: Carbon Based Nanomaterials for Drug Delivery. Springer; 2025. pp. 39–71.
12. Venugopal V, Siva Kumar B, Kurup DG, et al. Advances in microwave absorbing and shielding materials: the role of zero-dimensional carbon nanoparticles. Materials Technology. 2025; 40(1). doi: 10.1080/10667857.2025.2496318
13. Serban BC, Dumbravescu N, Buiu O, et al. Carbon Nano-Onions-Based Matrix Nanocomposite as Sensing Film for Resistive Humidity Sensor. Romanian Journal of Information Science and Technology. 2025; 28(1): 77–88. doi: 10.59277/romjist.2025.1.07
14. Al-antaki A. Carbon types derivatives of nanoscience via nanotechnology with applications. Al-Kufa University Journal for Biology. 2025; 17(2): 74–88. doi: 10.36320/ajb/v17.i2.19669
15. Plonska‐Brzezinska ME. Carbon Nano‐Onions: A Review of Recent Progress in Synthesis and Applications. ChemNanoMat. 2019; 5(5): 568–580. doi: 10.1002/cnma.201800583
16. Das N, Panda S, Das DK, et al. Polymer Nanocomposites. Exploring Nanomaterial Synthesis, Characterization, and Applications. In: Exploring Nanomaterial Synthesis, Characterization, and Applications. IGI Global; 2024. pp. 169–196. doi: 10.4018/979-8-3693-6326-3.ch008
18. Li JW, Cheng CC, Chiu CW. Advances in Multifunctional Polymer-Based Nanocomposites. Polymers. 2024; 16(23): 3440. doi: 10.3390/polym16233440
19. Manawi YM, Ihsanullah, Samara A, et al. A Review of Carbon Nanomaterials’ Synthesis via the Chemical Vapor Deposition (CVD) Method. Materials. 2018; 11(5): 822. doi: 10.3390/ma11050822
20. Borgohain R, Yang J, Selegue JP, et al. Controlled synthesis, efficient purification, and electrochemical characterization of arc-discharge carbon nano-onions. Carbon. 2014; 66: 272–284. doi: 10.1016/j.carbon.2013.09.001
21. de Campos da Costa JP, Teodoro V, Assis M, et al. A scalable electron beam irradiation platform applied for allotropic carbon transformation. Carbon. 2021; 174: 567–580. doi: 10.1016/j.carbon.2020.11.054
22. Abe, H. Nucleation of carbon onions and nanocapsules under ion implantation at high temperature. Diamond and related materials, 2001; 10(3–7): 1201–1204. doi: 10.1016/S0925-9635(00)00452-0
23. Zuaznabar-Gardona JC, Fragoso A. Electrochemistry of redox probes at thin films of carbon nano-onions produced by thermal annealing of nanodiamonds. Electrochimica Acta. 2020; 353: 136495. doi: 10.1016/j.electacta.2020.136495
24. Mongwe TH, Matsoso BJ, Mutuma BK, et al. Synthesis of chain-like carbon nano-onions by a flame assisted pyrolysis technique using different collecting plates. Diamond and Related Materials. 2018; 90: 135–143. doi: 10.1016/j.diamond.2018.10.002
25. Dhand V, Yadav M, Kim SH, et al. A comprehensive review on the prospects of multi-functional carbon nano onions as an effective, high- performance energy storage material. Carbon. 2021; 175: 534–575. doi: 10.1016/j.carbon.2020.12.083
26. Butenko Y, Šiller L, Hunt MRC. Carbon Onions. In: Nanomaterials Handbook. CRC Press; 2017. pp. 391–414. doi: 10.1201/9781315371795-14
27. Kharwar PK, Verma RK, Debnath K, et al. Synthesis of Catalyst-Free Carbon Nano Onions (CNOs) for Advanced Functional Materials. In: Trends in Fabrication of Polymers and Polymer Composites. AIP Publishing; 2022. pp. 8.1–8.22.
28. Sahu S, Tiwari S. Carbon allotropes: Fundamental, synthesis, characterization, and properties functionalization. In: Carbon Allotropes. CRC Press; 2023. pp. 41–70. doi: 10.1201/9781003323976-5
29. Bartelmess J, Giordani S. Carbon nano-onions (multi-layer fullerenes): chemistry and applications. Beilstein Journal of Nanotechnology. 2014; 5: 1980–1998. doi: 10.3762/bjnano.5.207
30. Lucherelli MA, Stiegler LMS, Steiger F, et al. Carbon nano-onions: Individualization and enhanced water dispersibility. Carbon. 2024; 218: 118760. doi: 10.1016/j.carbon.2023.118760
31. Amjad Z, Terzyk AP, Boncel S. Covalent functionalization of 1D and 2D sp2-carbon nanoallotropes – twelve years of progress (2011–2023). Nanoscale. 2024; 16(19): 9197–9234. doi: 10.1039/d3nr06413a
32. Pinto RMR, Sankar Nemala S, Faraji M, et al. Inkjet-Printing of Carbon Nano Onions for Sensor Applications in Flexible Printed Electronics. In: Proceedings of the 2022 IEEE International Conference on Flexible and Printable Sensors and Systems (FLEPS); 2022. pp. 1–4. doi: 10.1109/fleps53764.2022.9781548
33. Thennarasi A, Siva P, Sreelakshmi C, et al. Synthesis and application of onion-like carbons. In: Nanocarbon Allotropes Beyond Graphene. IOP Publishing; 2023. pp. 8-1–8-28. doi: 10.1088/978-0-7503-5177-5ch8
34. Muduli S, Pati SK, Martha SK. Bio‐waste derived carbon nano‐onions as an efficient electrode material for symmetric and lead‐carbon hybrid ultracapacitors. International Journal of Energy Research. 2022; 46(10): 14074–14087. doi: 10.1002/er.8123
35. Pallavolu MR, Gaddam N, Banerjee AN, et al. Superior energy‐power performance of N‐doped carbon nano‐onions‐based asymmetric and symmetric supercapacitor devices. International Journal of Energy Research. 2021; 46(2): 1234–1249. doi: 10.1002/er.7242
36. Han TH, Mohapatra D, Mahato N, et al. Effect of nitrogen doping on the catalytic activity of carbon nano-onions for the oxygen reduction reaction in microbial fuel cells. Journal of Industrial and Engineering Chemistry. 2020; 81: 269–277. doi: 10.1016/j.jiec.2019.09.014
38. Mamidi N, Delgadillo RMV, González-Ortiz A. Engineering of carbon nano-onion bioconjugates for biomedical applications. Materials Science and Engineering: C. 2021; 120: 111698. doi: 10.1016/j.msec.2020.111698
39. Giannopoulos GI, Batsoulas ND. Carbon Nano-Onions as Nanofillers for Enhancing the Damping Capacity of Titanium and Fiber-Reinforced Titanium: A Numerical Investigation. Metals. 2023; 13(9): 1577. doi: 10.3390/met13091577
40. Gowthaman NSK, Mohapatra D, Arul P, et al. Ultrasonic-assisted decoration of AuNPs on carbon nano-onions as robust electrochemical scaffold for sensing of carcinogenic hydrazine in industrial effluents. Journal of Industrial and Engineering Chemistry. 2023; 117: 227–237. doi: 10.1016/j.jiec.2022.10.009
41. Haggar AM, Aboul-Enein AA, Awadallah AE, et al. Novel concept for synthesizing carbon nano-onion, graphene layers, and graphene nano-ribbons from polypropylene waste over Fe2O3 nanoparticles. Carbon Letters. 2025; 35(4): 1755–1767. doi: 10.1007/s42823-025-00893-8
42. Vindhyasarumi A, Anjali KP, Sethulekshmi AS, et al. A comprehensive review on recent progress in carbon nano-onion based polymer nanocomposites. European Polymer Journal. 2023; 194: 112143. doi: 10.1016/j.eurpolymj.2023.112143
43. Almeida Gonzalez HD, Hernandez Ojeda J, Corcho‐Valdés AL, et al. The Promise of Carbon Nano‐Onions: Preparation, Characterization and Their Application in Electrochemical Sensing. Analysis & Sensing. 2024; 5(1). doi: 10.1002/anse.202400035
44. Riaz U, Singh N, Banoo S. Theoretical studies of conducting polymers: a mini review. New Journal of Chemistry. 2022; 46(11): 4954–4973. doi: 10.1039/d1nj05352c
45. K N, Rout CS. Conducting polymers: a comprehensive review on recent advances in synthesis, properties and applications. RSC Advances. 2021; 11(10): 5659–5697. doi: 10.1039/d0ra07800j
46. Shahid MdA, Rahman MdM, Hossain MdT, et al. Advances in Conductive Polymer-Based Flexible Electronics for Multifunctional Applications. Journal of Composites Science. 2025; 9(1): 42. doi: 10.3390/jcs9010042
47. Chen J, Lee PS. Electrochemical Supercapacitors: From Mechanism Understanding to Multifunctional Applications. Advanced Energy Materials. 2020; 11(6). doi: 10.1002/aenm.202003311
48. Wustoni S, Ohayon D, Hermawan A, et al. Material Design and Characterization of Conducting Polymer-Based Supercapacitors. Polymer Reviews. 2023; 64(1): 192–250. doi: 10.1080/15583724.2023.2220131
49. Li L, Meng J, Zhang M, et al. Recent advances in conductive polymer hydrogel composites and nanocomposites for flexible electrochemical supercapacitors. Chemical Communications. 2022; 58(2): 185–207. doi: 10.1039/d1cc05526g
50. Thamizhchelvan, A.M. and N. Lien, Unique Nanostructures of Carbon Nano Onions. In: Handbook of Functionalized Carbon Nanostructures: From Synthesis Methods to Applications. Springer; 2024, 181–228. doi: 10.1007/978-3-031-32150-4_5
51. Kovalenko I, Bucknall DG, Yushin G. Detonation Nanodiamond and Onion‐Like‐Carbon‐Embedded Polyaniline for Supercapacitors. Advanced Functional Materials. 2010; 20(22): 3979–3986. doi: 10.1002/adfm.201000906
52. Plonska‐Brzezinska ME, Mazurczyk J, Palys B, et al. Preparation and Characterization of Composites that Contain Small Carbon Nano‐Onions and Conducting Polyaniline. Chemistry – A European Journal. 2012; 18(9): 2600–2608. doi: 10.1002/chem.201102175
53. Bobrowska DM, Plonska‐Brzezinska ME. Spherical Onion‐Like Carbons. In: Synthesis and Applications of Nanocarbons. Wiley; 2020. pp. 63–105. doi: 10.1002/9781119429418.ch3
54. Rettenbacher AS, Perpall MW, Echegoyen L, et al. Radical Addition of a Conjugated Polymer to Multilayer Fullerenes (Carbon Nano-onions). Chemistry of Materials. 2007; 19(6): 1411–1417. doi: 10.1021/cm0626132
55. Olejnik P, Gniadek M, Echegoyen L, et al. Nanoforest: Polyaniline Nanotubes Modified with Carbon Nano-Onions as a Nanocomposite Material for Easy-to-Miniaturize High-Performance Solid-State Supercapacitors. Polymers. 2018; 10(12): 1408. doi: 10.3390/polym10121408
56. Kumari P, Chholak A, Tripathi KM, et al. Synthesis and applications of carbon nano-onions and their composites for the remediation of organic pollutants from wastewater. RSC Sustainability. 2025; 3(11): 5070–5088. doi: 10.1039/d5su00422e
57. Kausar A. The promise of carbon nano-onions for thermoplastic and biodegradable thermoplastic nanocomposites—status quo and future vision. Journal of Thermoplastic Composite Materials. 2025. doi: 10.1177/08927057251387083
58. Ananthalakshmi S, Balachandran M, Bhowmik S. A Comprehensive Review of Ultra‐High Performance Thermoplastic Nano and Multiscale Composites for Structural, Aerospace and Nuclear Applications: Recent Developments, Current Challenges, and Future Trends. Polymer Engineering & Science. 2025.
59. de Freitas A de SM, da Silva APB, Montagna LS, et al. Thermoplastic starch nanocomposites: sources, production and applications – a review. Journal of Biomaterials Science, Polymer Edition. 2022; 33(7): 900–945. doi: 10.1080/09205063.2021.2021351
60. Zhou L, Gao C, Zhu D, et al. Facile Functionalization of Multilayer Fullerenes (Carbon Nano‐Onions) by Nitrene Chemistry and “Grafting from” Strategy. Chemistry – A European Journal. 2009; 15(6): 1389–1396. doi: 10.1002/chem.200801642
61. Abdullah A, Alwan L, Ahmed A, et al. Physical Study of PVA Filled with Carbon Nanotube and Nano Carbon with Roughness Morphology. PCR. 2023; 11(4). doi: 10.22036/pcr.2022.362088.2195
62. Kopylov MV, Kleymenova NL, Bolgova IN, et al. Nanocarbon Additives Application in the Polyvinyl Chloride Siding Panels Manufacture. IOP Conference Series: Materials Science and Engineering. 2021; 1079(2): 022019. doi: 10.1088/1757-899x/1079/2/022019
63. Cardoso Oliveira T, Alves Nunes Simonetti E, Simone Cividanes L. Nanocarbons Reinforcement Effect into Polyethylene Nanocomposites: γ-Ray Attenuation Potential and Hardness Improvement by the Taguchi Method. ACS Omega. 2025; 10(5): 4827–4835. doi: 10.1021/acsomega.4c10046
64. Adeniyi AG, Abdulkareem SA, Iwuozor KO, et al. Production and characterization of rubberized plantain fibre-reinforced polystyrene composites. Materials Chemistry and Physics. 2025; 334: 130426. doi: 10.1016/j.matchemphys.2025.130426
65. Kausar A. Nanocomposites of poly(ε-caprolactone) with nanocarbon and inorganic nanoparticles: a versatile platform for industrial applications. Materials Research Innovations. 2019; 24(6): 373–383. doi: 10.1080/14328917.2019.1686559
66. Shi G, Sun X, Liu Y. Percolation-Triggered Negative Permittivity in Nano Carbon Powder/Polyvinylidene Fluoride Composites. Molecules. 2024; 29(16): 3862. doi: 10.3390/molecules29163862
67. Pan F, Khan M, Tiehu L, et al. Effect of nanodiamond particles on the structure, mechanical, and thermal properties of polymer embedded ND/PMMA composites. Journal of Polymer Engineering. 2022; 42(9): 795–807. doi: 10.1515/polyeng-2022-0012
68. Serban BC, Dumbravescu N, Buiu O, et al. Carbon Nano-Onions–Polyvinyl Alcohol Nanocomposite for Resistive Monitoring of Relative Humidity. Sensors. 2025; 25(10): 3047. doi: 10.3390/s25103047
69. Fernández DA, Velásquez JD, Plonska-Brzezinska ME, et al. Evaluation of chitosan composites with functionalized carbon nano-onions for supercapacitor applications. Electrochimica Acta. 2024; 504: 144886. doi: 10.1016/j.electacta.2024.144886
70. Grande Tovar C, Castro J, Valencia C, et al. Preparation of Chitosan/Poly(Vinyl Alcohol) Nanocomposite Films Incorporated with Oxidized Carbon Nano-Onions (Multi-Layer Fullerenes) for Tissue-Engineering Applications. Biomolecules. 2019; 9(11): 684. doi: 10.3390/biom9110684
71. Villegas-Peralta Y, Sánchez-Duarte RG, et al. Nano-onions based on chitosan: Production and characterization. Revista Internacional de Contaminación Ambiental. 2023; 39: 203–213. doi: 10.20937/rica.54204
72. Castro JI, Chaur MN, Llano CHV, et al. Biocompatibility Study of Electrospun Nanocomposite Membranes Based on Chitosan/Polyvinyl Alcohol/Oxidized Carbon Nano-Onions. Molecules. 2021; 26(16): 4753. doi: 10.3390/molecules26164753
73. Grande Tovar CD, Castro JI, Valencia CH, et al. Nanocomposite Films of Chitosan-Grafted Carbon Nano-Onions for Biomedical Applications. Molecules. 2020; 25(5): 1203. doi: 10.3390/molecules25051203
74. Ullah Khan S, Jamshed W. Self-Healing Materials in Aerospace and Automotive Engineering: A Systematic Review of Material Systems, Integration Strategies, and Application Performance. Babylonian Journal of Mechanical Engineering. 2025; 2025: 1–17. doi: 10.58496/bjme/2025/001
75. Kausar A. Incipient shape memory featuring nano-reinforced epoxy nanocomposites—structural diversity and innovations. Polymer-Plastics Technology and Materials. 2024; 63(9): 1209–1226. doi: 10.1080/25740881.2024.2326133
76. Gouda MM, El-Khatib AM, Khalil MM, et al. Comparative study between micro- and nano-carbon with epoxy for gamma shielding applications. Carbon Letters. 2024; 34(4): 1129–1141. doi: 10.1007/s42823-023-00673-2
77. Dąbrowska A. Nanocarbon/epoxy composites: Preparation, properties, and applications. In: Nanocarbon and its Composites. Elsevier; 2019. pp. 421–448. doi: 10.1016/b978-0-08-102509-3.00013-4
78. Palaimiene E, Macutkevic J, Banys J, et al. Ultra-low percolation threshold in epoxy resin–onion-like carbon composites. Applied Physics Letters. 2018; 113(3). doi: 10.1063/1.5030526
79. Tretjak M, Palaimiene E, Pralgauskaitė S, et al. Noise and Electrical Characteristics of Composites Filled with Onion-Like Carbon Nanoparticles. Polymers. 2021; 13(7): 997. doi: 10.3390/polym13070997
80. Thakur A, Kumar A. Carbon Allotropes: Covalent and Noncovalent Functionalization and Characterization. In: Carbon Allotropes. CRC Press; 2023. pp. 71–98. doi: 10.1201/9781003323976-6
81. Giordani S, Camisasca A, Maffeis V. Carbon Nano-onions: A Valuable Class of Carbon Nanomaterials in Biomedicine. Current Medicinal Chemistry. 2019; 26(38): 6915–6929. doi: 10.2174/0929867326666181126113957
82. Li Z, Wu D, Huang X, et al. Fabrication of novel polymeric and carbonaceous nanoscale networks by the union of self-assembly and hypercrosslinking. Energy & Environmental Science. 2014; 7(9): 3006. doi: 10.1039/c4ee00941j
83. Chen X, Gao J, Hu B, et al. Template‐Induced Self‐Activation Route for Hierarchical Porous Carbon Derived from Interpenetrating Polymer Networks as Electrode Material for Supercapacitors. ChemElectroChem. 2019; 6(10): 2648–2658. doi: 10.1002/celc.201900020
84. Pathania Y, Ahluwalia PK, Kapoor P. Industrial Applications of Carbon Nanomaterials. In: Carbon‐based Nanomaterials for Green Applications. IEEE; 2024. pp. 469–504. doi: 10.1002/9781394243426.ch18
85. Fu R, Xu Y, Qiao S, et al. Size-dependent melting of onion-like fullerenic carbons: a molecular dynamics and machine learning study. Journal of Physics: Condensed Matter. 2022; 34(42): 425402. doi: 10.1088/1361-648x/ac877e
86. Chowdhury SN, Tung TT, Ta QTH, et al. Upgrading of diesel engine exhaust waste into onion-like carbon nanoparticles for integrated degradation sensing in nano-biocomposites. New Journal of Chemistry. 2021; 45(7): 3675–3682. doi: 10.1039/d0nj05950a
87. Guo A, Bao K, Sang S, et al. Soft-chemistry synthesis, solubility and interlayer spacing of carbon nano-onions. RSC Advances. 2021; 11(12): 6850–6858. doi: 10.1039/d0ra09410b
88. Jung S, Myung Y, Das GS, et al. Carbon nano-onions from waste oil for application in energy storage devices. New Journal of Chemistry. 2020; 44(18): 7369–7375. doi: 10.1039/d0nj00699h
89. Neelakandan M, Dhandapani P, Ramasamy S, et al. A review on perovskite oxides and their composites as electrode materials for supercapacitors. RSC Advances. 2025; 15(21): 16766–16791. doi: 10.1039/d5ra01950h
90. Wegner KD, Resch-Genger U. The 2023 Nobel Prize in Chemistry: Quantum dots. Analytical and Bioanalytical Chemistry. 2024; 416(14): 3283–3293. doi: 10.1007/s00216-024-05225-9
91. Krishna Saraswat S, Ahmed Mustafa M, Kamil Ghadir G, et al. Carbon quantum dots: A comprehensive review of green Synthesis, characterization and investigation their applications in bioimaging. Inorganic Chemistry Communications. 2024; 162: 112279. doi: 10.1016/j.inoche.2024.112279
92. Ayesha Kausar. Technical Competence of Nanodiamond Nanocomposites in Energy Sector (Solar Cells, Fuel Cells, Batteries, Supercapacitors)-State-of-the-Art. Advanced Energy Conversion Materials. 2024; 6: 57–82. doi: 10.37256/aecm.6120255951
93. Licht G, Peltier E, Gee S, et al. Direct air capture (DAC): molten carbonate direct transformation of airborne CO2 to durable, useful carbon nanotubes and nano-onions. RSC Sustainability. 2025; 3(3): 1339–1345. doi: 10.1039/d4su00679h
94. Ravele T, Fuku XG, Kebede MA. Review of Organic–Inorganic Heterojunction Hybrid Solar Cells with Embedded Plasmonic Nanocrystals: Recent Advances and Future Perspectives. Energy & Fuels. 2025; 39(13): 6026–6044. doi: 10.1021/acs.energyfuels.4c05517
95. Dakhil T, Hamidinezhad H, Baron AS. Fabrication and characterization of a hybrid organic-inorganic perovskite materials and applications in solar cell. Optical Materials. 2025; 160: 116708. doi: 10.1016/j.optmat.2025.116708
96. Ou Z, Zheng YJ, Li C, et al. Role of A-Site Cation Hydrogen Bonds in Hybrid Organic–Inorganic Perovskites: A Theoretical Insight. The Journal of Physical Chemistry Letters. 2025; 16(3): 802–810. doi: 10.1021/acs.jpclett.4c03211
97. Cheng B, Hou W, Han C, et al. Manipulating crystallization kinetics and vertical phase distribution via a small molecule donor guest for organic photovoltaic cells with 20% efficiency. Energy & Environmental Science. 2025; 18(3): 1375–1384. doi: 10.1039/d4ee04623d
98. Pang B, Zhang M, Zhou C, et al. Nitrogen‐doped carbon nano‐onions decorated on graphene network: A novel all‐carbon composite counter electrode for dye‐sensitized solar cell with a 10.28% power conversion efficiency. Solar Rrl. 2020; 4(9): 2000263.
https://doi.org/10.1002/solr.202000263
99. Bu IYY. Synthesis of graphitic carbon nano-onions for dye sensitized solar cells. Solar Energy. 2014; 105: 236–242. doi: 10.1016/j.solener.2014.03.015
100. Zheng D, Yang G, Zheng Y, et al. Carbon Nano-Onions as a Functional Dopant to Modify Hole Transporting Layers for Improving Stability and Performance of Planar Perovskite Solar Cells. Electrochimica Acta. 2017; 247: 548–557. doi: 10.1016/j.electacta.2017.07.061
101. Pedram M, Chang N, Kim Y, et al. Hybrid electrical energy storage systems. In: Proceedings of the 16th ACM/IEEE international symposium on Low power electronics and design; 2010. pp. 363–368. doi: 10.1145/1840845.1840924
102. Zhang Y, Jiang Z, Yu X. Control Strategies for Battery/Supercapacitor Hybrid Energy Storage Systems. In: Proceedings of the 2008 IEEE Energy 2030 Conference; 2008. pp. 1–6. doi: 10.1109/energy.2008.4781031
103. Larcher D, Tarascon JM. Towards greener and more sustainable batteries for electrical energy storage. Nature Chemistry. 2014; 7(1): 19–29. doi: 10.1038/nchem.2085
104. Koblischka MR, Koblischka DM, Koblischka-Veneva A, et al. Superconductivity and the Sustainable Development Goals (SDGs): A Challenge for Researchers in Superconductivity. Sustainability. 2025; 17(9): 4068. doi: 10.3390/su17094068
105. Pallavolu MR, Kumar YA, Ramesh reddy N, et al. Design and synthesis of highly efficient nitrogen-doped carbon nano-onions for asymmetric supercapacitors. Journal of Alloys and Compounds. 2022; 918: 165609. doi: 10.1016/j.jallcom.2022.165609
106. Pan H, Jiao X, Zhang W, et al. Supercapacitor with Ultra-High power and energy density enabled by Nitrogen/Oxygen-Doped interconnected hollow carbon Nano-Onions. Chemical Engineering Journal. 2024; 484: 149663. doi: 10.1016/j.cej.2024.149663
107. Jin H, Wu S, Li T, et al. Synthesis of porous carbon nano-onions derived from rice husk for high-performance supercapacitors. Applied Surface Science. 2019; 488: 593–599. doi: 10.1016/j.apsusc.2019.05.308
108. Mohapatra D, Dhakal G, Sayed MS, et al. Sulfur Doping: Unique Strategy To Improve the Supercapacitive Performance of Carbon Nano-onions. ACS Applied Materials & Interfaces. 2019; 11(8): 8040–8050. doi: 10.1021/acsami.8b21534
109. Majumder M, Thakur AK, Bhushan M, et al. Polyaniline integration and interrogation on carbon nano-onions empowered supercapacitors. Electrochimica Acta. 2021; 370: 137659. doi: 10.1016/j.electacta.2020.137659
110. Tian M, Wang Z, Yang HY, et al. Recent Progress in Computational Materials Science Boosting Development of Rechargeable Batteries. Advanced Energy Materials. 2024; 15(1). doi: 10.1002/aenm.202403443
111. Fiorini Granieri S, Pagano GM, Messaggi M, et al. An High Performance Carbon-Nano Onion Electrode for Vanadium Redox Flow Battery. ECS Meeting Abstracts. 2022; MA2022-01(48): 2036–2036. doi: 10.1149/ma2022-01482036mtgabs
112. Zhou H, Zhou HP, Yang B, et al. Carbon nano-onions/tubes catalyzed by Ni nanoparticles on SiOx for superior lithium storage. Applied Surface Science. 2023; 640: 158355. doi: 10.1016/j.apsusc.2023.158355
113. Namwong N, Kruehong C. Chain-like carbon nano-onions from candle flame combustion as a high-performance cathode for aluminum-air batteries. Diamond and Related Materials. 2022; 129: 109396. doi: 10.1016/j.diamond.2022.109396
114. Hryniewicka A, Breczko J, Siemiaszko G, et al. Polymer-derived N-doped carbon nanomaterials containing carbon nano-onions and their potential applicability. Materials Advances. 2025; 6(9): 2899–2910. doi: 10.1039/d4ma01230e
115. Xu Z, Chen Y, Li K, et al. One-step assembly of conductive coatings from polyphenol and Nanocarbon-PIL: A versatile approach for fabricating multifunctional sensors. Composites Science and Technology. 2025; 262: 111083. doi: 10.1016/j.compscitech.2025.111083
116. Sun Q, Yu W, He W, et al. Screen-printed flexible sensors for plantar pressure monitoring and gait analysis. Sensors and Actuators A: Physical. 2026; 401: 117579. doi:10.1016/j.sna.2026.117579
117. Leili Z, Asadpour S, Saberi Z. Exploring peroxidase mimetic activity of carbon nano-onions for colorimetric detection of H2O2 and glucose. Journal of the Taiwan Institute of Chemical Engineers. 2025; 170: 106029. doi: 10.1016/j.jtice.2025.106029
118. Panda A, Arumugasamy SK, Lee J, et al. Chemical-free sustainable carbon nano-onion as a dual-mode sensor platform for noxious volatile organic compounds. Applied Surface Science. 2021; 537: 147872. doi: 10.1016/j.apsusc.2020.147872
119. Serban BC, Dumbravescu N, Buiu O, et al. Carbon Nano-Onions-Polyvinyl Alcohol Nanocomposite as Sensing Film for Resistive Monitoring of Relative Humidity. Preprints. 2025. doi: 10.20944/preprints202504.0849.v1
120. Saini P, Kumar K, Saini S, et al. Nanostructured Materials for Visible-Light-Driven Organic Synthesis: A New Catalytic Solution for a Sustainable World. In: Handbook of Materials Science. Springer Nature Singapore; 2025. pp. 143–180. doi: 10.1007/978-981-96-8229-4
121. Dhayal M, Sharma S, Jakhar P, et al. Carbon-Supported Photocatalysts: A Sustainable Approach for Enhanced Environmental Remediation. Comments on Inorganic Chemistry. 2025; 46(1): 30–84. doi: 10.1080/02603594.2025.2494273
122. Zhang H, Li L, Wang C, et al. Recent advances in designable nanomaterial-based electrochemical sensors for environmental heavy-metal detection. Nanoscale. 2025; 17(5): 2386–2407. doi: 10.1039/d4nr04108a
123. Zheng ALT, Lih ETY, Hung YP, et al. Biochar-based electrochemical sensors: a tailored approach to environmental monitoring. Analytical Sciences. 2025; 41(6): 715–735. doi: 10.1007/s44211-025-00726-8
124. Fic K, Frackowiak E, Béguin F. Unusual energy enhancement in carbon-based electrochemical capacitors. Journal of Materials Chemistry. 2012; 22(46): 24213. doi: 10.1039/c2jm35711a
125. Zhou G, Wang DW, Li F, et al. Graphene-Wrapped Fe3O4 Anode Material with Improved Reversible Capacity and Cyclic Stability for Lithium Ion Batteries. Chemistry of Materials. 2010; 22(18): 5306–5313. doi: 10.1021/cm101532x
126. Yang Y, Qiu S, He C, et al. Green chemical functionalization of multiwalled carbon nanotubes with poly(ɛ-caprolactone) in ionic liquids. Applied Surface Science. 2010; 257(3): 1010–1014. doi: 10.1016/j.apsusc.2010.08.009
127. Wang G shuo, Wei Z yong, Sang L, et al. Morphology, crystallization and mechanical properties of poly(ɛ-caprolactone)/graphene oxide nanocomposites. Chinese Journal of Polymer Science. 2013; 31(8): 1148–1160. doi: 10.1007/s10118-013-1278-8
128. Marroquin JB, Rhee KY, Park SJ. Chitosan nanocomposite films: Enhanced electrical conductivity, thermal stability, and mechanical properties. Carbohydrate Polymers. 2013; 92(2): 1783–1791. doi: 10.1016/j.carbpol.2012.11.042
129. Han D, Yan L, Chen W, et al. Preparation of chitosan/graphene oxide composite film with enhanced mechanical strength in the wet state. Carbohydrate Polymers. 2011; 83(2): 653–658. doi: 10.1016/j.carbpol.2010.08.038
130. Chen W, Tao X, Xue P, et al. Enhanced mechanical properties and morphological characterizations of poly(vinyl alcohol)–carbon nanotube composite films. Applied Surface Science. 2005; 252(5): 1404–1409. doi: 10.1016/j.apsusc.2005.02.138
131. Yang X, Li L, Shang S, et al. Synthesis and characterization of layer-aligned poly(vinyl alcohol)/graphene nanocomposites. Polymer. 2010; 51(15): 3431–3435. doi: 10.1016/j.polymer.2010.05.034
132. Xin Y, Odachi K, Shirai T. Fabrication of ultra-bright carbon nano-onions via a one-step microwave pyrolysis of fish scale waste in seconds. Green Chemistry. 2022; 24(10): 3969–3976. doi: 10.1039/d1gc04785j
133. Razzaq MEA, Luo Y, Forrester M, et al. Facile green synthesis of oxygen-functionalized carbon nano-onion from lignin and biochar and its application in high-performance polylactic acid. Journal of Cleaner Production. 2023; 428: 139361. doi: 10.1016/j.jclepro.2023.139361
134. Liu X, Ren J, Licht G, et al. Carbon Nano‐Onions Made Directly from CO2 by Molten Electrolysis for Greenhouse Gas Mitigation. Advanced Sustainable Systems. 2019; 3(10). doi: 10.1002/adsu.201900056
135. Nizam NUM, Hanafiah MM, Woon KS. A Content Review of Life Cycle Assessment of Nanomaterials: Current Practices, Challenges, and Future Prospects. Nanomaterials. 2021; 11(12): 3324. doi: 10.3390/nano11123324