Cover Image

Synthesis of highly-porous nitrogen-doped carbon materials by pyrolysis of melamine-formaldehyde resin using a hard template

Yuliya Sinelnikova, Alexander Nizovskii , Nikolai Uvarov

Abstract


The use of nitrogen-doped carbon materials as electrodes in supercapacitors is a promising area of research. In this study highly-porous nitrogen-containing carbon materials were obtained by pyrolysis of melamine formaldehyde resin in the presence of nanocrystalline MgO as a hard template that was washed off after the pyrolysis. Magnesium citrate was used as a precursor for the synthesis of the template agent in situ during the pyrolysis of the resin. The obtained materials were characterized by X-ray diffraction, BET nitrogen adsorption method and Raman spectroscopy. The presence of nitrogen in the amount of 4 atomic percent was proved by XPS spectroscopy. The specific surface area was found to increase monotonically from 10 to 1300 m2/g with an increase in the content of magnesium citrate in the initial mixture. The samples showed high capacitance of 120 F/g in 1 M H2SO4 electrolyte and can be used in supercapacitors. 


Keywords


nitrogen-doped carbon materials; template synthesis; hard template; highly-porous carbon electrode materials; supercapacitors

Full Text:

PDF

References


Lang JW, Kong LB, Liu M, Luo YC, Kang L. Asymmetric su-percapacitors based on stabilized α-Ni(OH)2 and activated carbon. J Solid State Electrochem. 2010;14:1533–1539. doi:10.1007/s10008-009-0984-1

Gao D, Liu R, Yu W, Luo Z, Liu C, Fan S. Gravity-induced self-charging in carbon nanotube/polymer supercapacitors. J Phys Chem C. 2019;123(9):5249–5254. doi:10.1021/acs.jpcc.8b11644

Wu Q, Xu YX, Yao ZY, Liu AR, Shi GQ. Supercapacitors based on flexible graphene/polyaniline nanofiber composite films. ACS Nano. 2010;4(4):1963–1970. doi:10.1021/nn1000035

Qu Y, Zhang X, Lü W. et al. All-solid-state flexible superca-pacitor using graphene/g-C3N4 composite capacitor elec-trodes. J Mater Sci. 2020;55:16334–16346. doi:10.1007/s10853-020-05156-7

Wei H, Wang H, Li A, Li H, Cui D, Dong M, Lin J, Fan J, Zhang J, Hou H, Shi Y, Zhou D, Guo Z. Advanced porous hierarchical activated carbon derived from agricultural wastes toward high performance supercapacitors. J Alloys Compd. 2019. doi:10.1016/j.jallcom.2019.153111

Du J, Zhang Y, Wu H, Hou S, Chen A. N-doped hollow meso-porous carbon spheres by improved dissolution-capture for supercapacitors. Carbon. 2020;156:523–528. doi:10.1016/j.carbon.2019.09.091

Vijayakumar M, Santhosh R, Adduru J, Rao TN, Karthik M. Activated carbon fibres as high performance supercapacitor electrodes with commercial level mass loading. Carbon. 2018;140:465–476. doi:10.1016/j.carbon.2018.08.052

Yu J, Wang M, Xu P, Cho S-H, Suhr J, Gong K, Meng L, Huang L, Byun J-H, Oh Y, Yan Y, Chou T-W. Ultrahigh-rate wire-shaped supercapacitor based on graphene fiber. Carbon. 2017;119:332–338. doi:10.1016/j.carbon.2017.04.052

Ni G, Qin F, Guo Z, Wang J. Nitrogen-doped asphaltene-based porous carbon fibers as supercapacitor electrode ma-terial with high specific capacitance. Electrochimica Acta. 2019;33:135270. doi:10.1016/j.electacta.2019.135270

Wen Z, Wang X, Mao S, Bo Z, Kim H, Cui S, Lu G, Feng X, Chen J. Crumpled nitrogen-doped graphene nanosheets with ultrahigh pore volume for high-performance supercapaci-tor. Adv Mater. 2012;24(41):5610–5616. doi:10.1002/adma.201201920

Xie J-M, Zhuang R, Du Y-X, Pei Y-W, Tan D-M, Xu F. Advanc-es in sulfur-doped carbon materials for use as anodes in so-dium-ion batteries. New Carbon Mater. 2023;38(2):305–316. doi:10.1016/S1872-5805(22)60630-9

Wu Z-S, Tan Y-Z, Zheng S, Wang S, Parvez K, Qin J, et al. Bottom-up fabrication of sulfur-doped graphene films de-rived from sulfur-annulated nanographene for ultrahigh volumetric capacitance micro-supercapacitors. J Am Chem Soc. 2017;139(12):4506–4512. doi:10.1021/jacs.7b00805

Bondarde MP, Wadekar PH, Some S. Synthesis of sulfur doped carbon nanoparticle for the improvement of superca-pacitive performance. J Energy Storage. 2020;32:101783. doi:10.1016/j.est.2020.101783

Gunasekaran SS, Gopalakrishnan A, Subashchandrabose R, Badhulika S. Single Step, direct pyrolysis assisted synthesis of nitrogen-doped porous carbon nanosheets derived from bamboo wood for high energy density asymmetric superca-pacitor. J Energy Storage. 2021;42:103048. doi:10.1016/j.est.2021.103048

Wang L, Sun J, Zhang H, Xu L, Liu G. Preparation of benzoxa-zine-based N-doped mesoporous carbon material and its electrochemical behaviour as supercapacitor. J Electroanal Chem. 2020;868:114196. doi:10.1016/j.jelechem.2020.114196

Chae JE, Annaka K, Hong K, Lee S-I, Munakata H, Kim S-S, Kanamura K. Electrochemical characterization of phospho-rous-doped soft carbon using single particle for lithium bat-tery anode. Electrochimica Acta. 2014;130:60–65. doi:10.1016/j.electacta.2014.03.009

Patiño J, López-Salas N, Gutiérrez MC, Carriazo D, Ferrer ML, Monte F. Phosphorus-doped carbon–carbon nanotube hierarchical monoliths as true three-dimensional elec-trodes in supercapacitor cells. J Mater Chem. 2016;4:1251–1263. doi:10.1039/C7TA90286G

Wang D, Wang Z, Li Y, Dong K, Shao J, Luo S, et al. In situ double-template fabrication of boron-doped 3d hierarchical porous carbon network as anode materials for Li-and Na-ion batteries. Appl Surf Sci. 2019;464:422–428. doi:10.1016/j.apsusc.2018.09.035

Poornima BH, Vijayakumar T. Hydrothermal synthesis of Boron -doped porous carbon from Azadirachta Indica wood for supercapacitor application. Inorg Chem Comm. 2022;145:109953. doi:10.1016/j.inoche.2022.109953

Patiño J, López-Salas N, Gutiérrez MC, Carriazo D, Ferrer ML, del Monte F. Phosphorus-doped carbon–carbon nanotube hierarchical monoliths as true three-dimensional elec-trodes in supercapacitor cells. J Mater Chem. 2016;4:1251–1263. doi:10.1039/C5TA09210H

Zhang LL, Zhao XS. Carbon-based materials as supercapaci-tor electrodes. Chem Soc Rev. 2009;38:2520. doi:10.1039/B813846J

Candelaria SL,Garcia DD, Liua D, Cao G. Nitrogen modifica-tion of highly porous carbon for improved supercapacitor performance. J Mater Chem. 2012;22:9884–9889. doi:10.1039/C2JM30923H

Zou K, Deng Y, Chen J, Qian Y, Yang Y, Li Y, Chen G. Hierar-chically porous nitrogen-doped carbon derived from the ac-tivation of agriculture waste by potassium hydroxide and urea for high-performance supercapacitors. J Power Sources. 2018;378:579–588. doi:10.1016/j.jpowsour.2017.12.081

Li S, Fan Z. Nitrogen-doped carbon mesh from pyrolysis of cotton in ammonia as binder-free electrodes of supercapaci-tors. Microporous Mesoporous Mater. 2019;274:313–317. doi:10.1016/j.micromeso.2018.09.002

Cazetta AL, Zhang T, Silva TL, Almeida VC, Asefa T.Bone char-derived metal-free N- and S-co-doped nanoporous car-bon and its efficient electrocatalytic activity for hydrazine oxidation. Appl Catal B Environ. 2018;225:30–39. doi:10.1016/j.apcatb.2017.11.050

Guan ZRX, Liu H, Xu B, Hao X, Wang ZX, Chen LQ. Gelatin-pyrolyzed mesoporous carbon as a high-performance sodi-um-storage material. J Mater Chem A. 2015;3(15):7849–7854. doi:10.1039/c5ta01446h

Cui H, Chen H, Guo Z, Xu J, Shen J. Preparation of high sur-face area mesoporous melamine formaldehyde resins. Mi-croporous Mesoporous Mater. 2020;309:110591. doi:10.1016/j.mcromeso.2020.110591

Yuan Y. Preparation of nitrogen doped carbon materials and analysis of their electrochemical performance. Int J Electro-chem Sci. 2022;17(8):220825. doi:10.20964/2022.08.19

Liu H, Deng Y, Mao J, Chen M, Hu J, Ju Z, Xing Z, Cao X. Characteristics and electrochemical performances of nitro-gen-doped graphene prepared using different carbon and ni-trogen sources as anode for lithium ion batteries. Int J Elec-trochem Sci. 2021;16(4):210459. doi:10.20964/2021.04.03

Sinelnikova YE, Uvarov NF. Synthesis of nanocrystalline magnesium oxide by thermolysis of magnesium citrate. Mendeleev Comm. 2022;23(5):697–699. doi:10.1016/j.mencom.2022.09.044

Bokobza L, Bruneel J-L, Couzi M. Raman spectroscopy as a tool for the analysis of carbon-based materials (highly ori-ented pyrolitic graphite, multilayer graphene and multiwall carbon nanotubes) and of some of their elastomeric compo-sites. Vib Spectrosc. 2014;74:57–63. doi:10.1016/j.vibspec.2014.07.009

Tuinstra F, Coenig JL. Characterization of graphite fiber surface with Raman spectroscopy. J Compos Mater. 1970;4:492–499.

Jeon I-Y, Noh H-J, Baek J-B. Nitrogen-doped carbon nano-materials: synthesis, characteristics and applications. Chem Asian J. 2020;15:2282–2293. doi:10.1002/asia.201901318

Béguin F, Raymundo-Piñero E, Frackowiak E. Electrical dou-ble-layer capacitors and pseudocapacitors. in: carbons for electrochemical energy storage and conversion systems. Taylor and Fransis LLC., 2010. Chapter 8. P.329–375. doi:10.1201/9781420055405-c8

Ardizzone S, Fregonara G, Trasatti S. “Inner” and “outer” active surface of RuO2 electrodes. Electrochimica Acta. 1990;35(1):263–267. doi:10.1016/0013-4686(90)85068-X

Augustyn V, Simon P, Dunn B. Pseudocapacitive oxide mate-rials for high-rate electrochemical energy storage. Energy Environ Sci. 2014;7:1597–1614. doi:10.1039/c3ee44164d

Frackowiak E, Lota G, Machnikowski J, Kierzek K, Vix C, Be-guin F. Optimisation of supercapacitors using carbons with controlled nanotexture and nitrogen content. Electrochim Acta. 2006;51(11):2209–2214. doi:10.1016/j.electacta.2005.04.080

Centeno TA, Stoeckli F. The role of textural characteristics and oxygen-containing surface groups in the supercapacitor performances of activated carbons. Electrochimica Acta. 2006;52:560–566. doi:10.1016/j.electacta.2006.05.035

Li X, Zhang W, Wu M, Li S, Li XL, Li ZG. Multiple-heteroatom doped porous carbons from self-activation of lignosulfonate with melamine for high performance supercapacitors. Int J Biol Macromol. 2021;183:950–961. doi:10.1016/j.ijbiomac.2021.05.028




DOI: https://doi.org/10.15826/chimtech.2023.10.3.13

Copyright (c) 2023 Yuliya Sinelnikova, Alexander Nizovskii , Nikolai Uvarov

Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 International License.

Scopus logo WorldCat logo DOAJ logo CAS logo BASE logo eLibrary logo

© Website Chimica Techno Acta, 2014–2024
ISSN 2411-1414 (Online)
This journal is licensed under a Creative Commons Attribution 4.0 International