- Baranwal, J., et al., Electrochemical sensors and their applications: A review. Chemosensors, 2022. 10(9): p. 363.
- Javaid, M., et al., Sensors for daily life: A review. Sensors International, 2021. 2: p. 100121.
- Wang, F. and S. Hu, Electrochemical sensors based on metal and semiconductor nanoparticles. Microchimica Acta, 2009. 165: p. 1-22.
- Holmannova, D., et al., Reproductive and Developmental Nanotoxicity of Carbon Nanoparticles. Nanomaterials, 2022. 12(10): p. 1716.
- Gibi, C., et al., Carbon Materials for Electrochemical Sensing Application–A Mini Review. Journal of the Taiwan Institute of Chemical Engineers, 2023: p. 105071.
- Kotia, A., et al., Carbon nanoparticles as sources for a cost-effective water purification method: A comprehensive review. Fluids, 2020. 5(4): p. 230.
- Zhang, T., et al., Theoretical approaches to graphene and graphene-based materials. Nano Today, 2012. 7(3): p. 180-200.
- Olabi, A.G., et al., Application of graphene in energy storage device–A review. Renewable and Sustainable Energy Reviews, 2021. 135: p. 110026.
- Cho, G., et al., Electrical and electrochemical sensors based on carbon nanotubes for the monitoring of chemicals in water—A review. Sensors, 2021. 22(1): p. 218.
- Anas, N.A.A., et al., Development of graphene quantum dots-based optical sensor for toxic metal ion detection. Sensors, 2019. 19(18): p. 3850.
- Sukumaran, L., A study of graphene. Int. J. Educ. Manag. Eng, 2014. 4: p. 9-14.
- Fritea, L., et al., Metal nanoparticles and carbon-based nanomaterials for improved performances of electrochemical (Bio) sensors with biomedical applications. Materials, 2021. 14(21): p. 6319.
- Lisik, K. and A. Krokosz, Application of carbon nanoparticles in oncology and regenerative medicine. International Journal of Molecular Sciences, 2021. 22(15): p. 8341.
- Sengupta, J. and C.M. Hussain, Decadal Journey of CNT-Based Analytical Biosensing Platforms in the Detection of Human Viruses. Nanomaterials, 2022. 12(23): p. 4132.
- Hu, P., et al., Carbon nanostructure-based field-effect transistors for label-free chemical/biological sensors. Sensors, 2010. 10(5): p. 5133-5159.
- Isaacson, C.W., M. Kleber, and J.A. Field, Quantitative analysis of fullerene nanomaterials in environmental systems: a critical review. Environmental science & technology, 2009. 43(17): p. 6463-6474.
- Kroto, H.W., et al., C60: Buckminsterfullerene. nature, 1985. 318(6042): p. 162-163.
- Markovic, Z. and V. Trajkovic, Biomedical potential of the reactive oxygen species generation and quenching by fullerenes (C60). Biomaterials, 2008. 29(26): p. 3561-3573.
- Manawi, Y.M., et al., A review of carbon nanomaterials’ synthesis via the chemical vapor deposition (CVD) method. Materials, 2018. 11(5): p. 822.
- Dhand, C., et al., Methods and strategies for the synthesis of diverse nanoparticles and their applications: a comprehensive overview. Rsc Advances, 2015. 5(127): p. 105003-105037.
- Kokorina, A.A., et al., Luminescent carbon nanoparticles: Synthesis, methods of investigation, applications. Russian Chemical Reviews, 2017. 86(11): p. 1157.
- Ealia, S.A.M. and M.P. Saravanakumar. A review on the classification, characterisation, synthesis of nanoparticles and their application. in IOP conference series: materials science and engineering. 2017. IOP Publishing.
- Lim, J.-V., et al., A review on the synthesis, properties, and utilities of functionalized carbon nanoparticles for polymer nanocomposites. Polymers, 2021. 13(20): p. 3547.
- Asadian, E., M. Ghalkhani, and S. Shahrokhian, Electrochemical sensing based on carbon nanoparticles: A review. Sensors and Actuators B: Chemical, 2019. 293: p. 183-209.
- Arora, N. and N. Sharma, Arc discharge synthesis of carbon nanotubes: Comprehensive review. Diamond and related materials, 2014. 50: p. 135-150.
- El-Khatib, A.M., et al., Synthesize of silver nanoparticles by arc discharge method using two different rotational electrode shapes. Journal of Cluster Science, 2018. 29: p. 1169-1175.
- Mohd Nurazzi, N., et al., Fabrication, functionalization, and application of carbon nanotube-reinforced polymer composite: An overview. Polymers, 2021. 13(7): p. 1047.
- Semaltianos, N., Nanoparticles by laser ablation. Critical reviews in solid state and materials sciences, 2010. 35(2): p. 105-124.
- Chrzanowska, J., et al., Synthesis of carbon nanotubes by the laser ablation method: Effect of laser wavelength. physica status solidi (b), 2015. 252(8): p. 1860-1867.
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