Synthesis of graphene Potential carbon precursors

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1310  Yuxin Yan et al. [83] Tseng KH, Ku HC, Tien DC, Stobinski L. Parameter control and concentration analysis of graphene colloids prepared by electric spark discharge method. Nanotechnol Rev. 2019;8(1):201–9. [84] Zhong YL, Tian Z, Simon GP, Li D. Scalable production of graphene via wet chemistry: Progress and challenges. Mater Today. 2015;18(2):73–8. [85] Mohan VB, Lau KT, Hui D, Bhattacharyya D. Graphene-based materials and their composites: A review on production, applications and product limitations. Compos Part B Eng. 2018;142:200–20. [86] Chua CK, Pumera M. Chemical reduction of graphene oxide: A synthetic chemistry viewpoint. Chem Soc Rev. 2014;43(1):291–312. [87] Kauppila J, Kunnas P, Damlin P, Viinikanoja A, Kvarnström C. Electrochemical reduction of graphene oxide films in aqu- eous and organic solutions. Electrochim Acta. 2013;89:84–9. [88] Harima Y, Setodoi S, Imae I, Komaguchi K, Ooyama Y, Ohshita J, et al. Electrochemical reduction of graphene oxide in organic solvents. Electrochim Acta. 2011;56(15):5363–8. [89] Chen L, Tang Y, Wang K, Liu C, Luo S. Direct electrodeposition of reduced graphene oxide on glassy carbon electrode and its electrochemical application. Electrochem Commun. 2011;13(2):133–7. [90] Toh SY, Loh KS, Kamarudin SK, Daud WR. Graphene pro- duction via electrochemical reduction of graphene oxide: Synthesis and characterisation. Chem Eng J. 2014;251:422–34. [91] Viinikanoja A, Wang Z, Kauppila J, Kvarnström C. Electrochemical reduction of graphene oxide and its in situ spectroelectrochemical characterization. Phys Chem Chem Phys. 2012;14(40):14003–9. [92] Alanyalıoğlu M, Segura JJ, Oro-Sole J, Casan-Pastor N. The synthesis of graphene sheets with controlled thickness and order using surfactant-assisted electrochemical processes. Carbon. 2012;50(1):142–52. [93] Toh SY, Loh KS, Kamarudin SK, Daud WR. Graphene pro- duction via electrochemical reduction of graphene oxide: Synthesis and characterisation. Chem Eng J. 2014;251:422–34. [94] Guo HL, Wang XF, Qian QY, Wang FB, Xia XH. A green approach to the synthesis of graphene nanosheets. ACS Nano. 2009;3(9):2653–9. [95] Cai M, Thorpe D, Adamson DH, Schniepp HC. Methods of graphite exfoliation. J Mater Chem. 2012; 22(48):24992–5002. [96] Botas C, Álvarez P, Blanco C, Santamaría R, Granda M, Gutiérrez MD, et al. Critical temperatures in the synthesis of graphene-like materials by thermal exfoliation–reduction of graphite oxide. Carbon. 2013;52:476–85. [97] Toh SY, Loh KS, Kamarudin SK, Daud WR. Graphene pro- duction via electrochemical reduction of graphene oxide: Synthesis and characterisation. Chem Eng J. 2014;251:422–34. [98] Papageorgiou DG, Kinloch IA, Young RJ. Mechanical proper- ties of graphene and graphene-based nanocomposites. Prog Mater Sci. 2017;90:75–127. [99] Yan KA, Fu LE, Peng H, Liu Z. Designed CVD growth of gra- phene via process engineering. Acc Chem Res. 2013;46(10):2263–74. [100] [101] [102] [103] [104] [105] [106] [107] [108] [109] [110] [111] [112] [113] [114] [115] [116] Yang Y, Han C, Jiang B, Iocozzia J, He C, Shi D, et al. Graphene-based materials with tailored nanostructures for energy conversion and storage. Mater Sci Eng R Rep. 2016;102:1–72. Jia K, Ci H, Zhang J, Sun Z, Ma Z, Zhu Y, et al. Superclean growth of graphene using a cold‐wall chemical vapor deposition approach. Angew Chem Int Ed. 2020;59(39):17214–8. Boas CR, Focassio B, Marinho E, Larrude DG, Salvadori MC, Leão CR, et al. Characterization of nitrogen doped graphene bilayers synthesized by fast, low temperature microwave plasma-enhanced chemical vapour deposition. Sci Rep. 2019;9(1):1–2. Akimoto T, Ueno K. High crystallinity multilayer graphene deposited by a low-temperature CVD using Ni catalyst with applying current. 2019 Electron devices technology and manufacturing conference (EDTM). New York, US: IEEE; 2019 Mar 12. p. 351–53 Sutter P. How silicon leaves the scene. Nat Mater. 2009;8(3):171–2. Norimatsu W, Kusunoki M. Epitaxial graphene on SiC {0001}: Advances and perspectives. Phys Chem Chem Phys. 2014;16(8):3501–11. Illakkiya JT, Rajalakshmi PU, Oommen R. Nebulized spray pyrolysis: A new method for synthesis of graphene film and their characteristics. Surf Coat Technol. 2016;307:65–72. Bianco A, Cheng HM, Enoki T, Gogotsi Y, Hurt RH, Koratkar N, et al. All in the graphene family–A recommended nomen- clature for two-dimensional carbon materials. Carbon. 2013;65:1–6. Geim AK, Novoselov KS. The rise of graphene. Nanoscience and technology: A collection of reviews from nature journals. Berlin: Springer; 2010. p. 11–19 Sinclair RC, Suter JL, Coveney PV. Micromechanical exfolia- tion of graphene on the atomistic scale. Phys Chem Chem Phys. 2019;21(10):5716–22. Parvez K, Yang S, Feng X, Müllen K. Exfoliation of graphene via wet chemical routes. Synth Met. 2015;210:123–32. Low CT, Walsh FC, Chakrabarti MH, Hashim MA, Hussain MA. Electrochemical approaches to the production of graphene flakes and their potential applications. Carbon. 2013; 54:1–21. Skaltsas T, Ke X, Bittencourt C, Tagmatarchis N. Ultrasonication induces oxygenated species and defects onto exfoliated graphene. J Phys Chem C. 2013;117(44):23272–8. Ober JA. Mineral commodity summaries 2016. US Geol Surv. 2016;1–202. Burchell TD, Pavlov TR. Graphite: Properties and character- istics. In: Konings RJ, Stoller RE, editors. Comprehensive nuclear materials. 2nd ed. Oxford: Elsevier; 2020. p. 355–81 Roy I, Sarkar G, Mondal S, Rana D, Bhattacharyya A, Saha NR, et al. Synthesis and characterization of graphene from waste dry cell battery for electronic applications. RSC Adv. 2016;6(13):10557–64. Tiwari SK, Huczko A, Oraon R, De Adhikari A, Nayak GC. Facile electrochemical synthesis of few layered graphene from discharged battery electrode and its application for energy storage. Arab J Chem. 2017;10(4):556–65.

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