Coal-based activated carbon prepared by H2O activation process for supercapacitors using response surface optimization method

Shanxin Xiong, Fengyan Lv, Chenxu Wang, Nana Yang, Yukun Zhang, Qingyong Duan, Shuaishuai Bai, Xiaoqin Wang, Zhen Li, Jianwei Xu

PDF(1223 KB)
PDF(1223 KB)
Front. Chem. Sci. Eng. ›› 2024, Vol. 18 ›› Issue (6) : 63. DOI: 10.1007/s11705-024-2422-4
RESEARCH ARTICLE

Coal-based activated carbon prepared by H2O activation process for supercapacitors using response surface optimization method

Author information +
History +

Abstract

The scalable production of high grade activated carbon from abundant coal for supercapacitors application is an efficient way to achieve high value-added utilization of coal sources. However, this technology is challenging due to lack of comprehensive understanding on the mechanism of activation process and effect of external factors. In this paper, the effect of activating temperature and time on the specific capacitance of coal-based activated carbon prepared by H2O steam activation was studied using the response surface method. Under optimal conditions, coal-based activated carbon exhibits the largest specific capacitance of 194.35 F·g–1, thanks to the appropriate pore/surface structure and defect degree. Density functional theory calculations explain in detail the mechanism of contraction of aromatic rings and overflow of H2 and CO during the activation. Meanwhile, oxygen-containing functional groups are introduced, contributing to the pseudocapacitance property of coal-based activated carbon. This mechanism of reactions between aromatic carbon and H2O vapor provides understanding on the role of water during coal processing at the molecular level, offering great potential to regulate product distribution and predict rate of pore generation. This insight would contribute to the advancement of other coal processing technology such as gasification.

Graphical abstract

Keywords

response surface optimization / coal-based activated carbon / supercapacitor / activating mechanism

Cite this article

Download citation ▾
Shanxin Xiong, Fengyan Lv, Chenxu Wang, Nana Yang, Yukun Zhang, Qingyong Duan, Shuaishuai Bai, Xiaoqin Wang, Zhen Li, Jianwei Xu. Coal-based activated carbon prepared by H2O activation process for supercapacitors using response surface optimization method. Front. Chem. Sci. Eng., 2024, 18(6): 63 https://doi.org/10.1007/s11705-024-2422-4

References

[1]
Liu W , Li Z K , Sang R R , Li J S , Song X P , Hou Q X . Fabricating sustainable lignin-derived porous carbon as electrode for high-performance supercapacitors. Frontiers of Chemical Science and Engineering, 2023, 17(8): 1065–1074
CrossRef Google scholar
[2]
Poonam S K , Arora A , Tripathi S K . Review of supercapacitors: materials and devices. Journal of Energy Storage, 2019, 21: 801–825
CrossRef Google scholar
[3]
Oyedotun K O , Ighalo J O , Amaku J F , Olisah C , Adeola A O , Iwuozor K O , Akpomie K G , Conradie J , Adegoke K A . Advances in supercapacitor development: materials, processes, and applications. Journal of Electronic Materials, 2022, 52(1): 96–129
CrossRef Google scholar
[4]
Afir A , Rahman S M H , Azad A T , Zaini J , Islan M A , Azad A . Advanced materials and technologies for hybrid supercapacitors for energy storage: a review. Journal of Energy Storage, 2019, 25: 100852
CrossRef Google scholar
[5]
Yaseen M , Khattak M A K , Humayun M , Usman M , Shah S S , Bibi S , Ul Hasnain B S , Ahmad S M , Khan A , Shah N . . A review of supercapacitors: materials design, modification, and applications. Energies, 2021, 14(22): 77–79
CrossRef Google scholar
[6]
Dubey R , Guruviah V . Review of carbon-based electrode materials for supercapacitor energy storage. Ionics, 2019, 25(4): 1419–1445
CrossRef Google scholar
[7]
Qie Z P , Wang L J , Fan X L . Tuning porosity of coal-derived activated carbons for CO2 adsorption. Frontiers of Chemical Science and Engineering, 2022, 16(9): 1345–1354
CrossRef Google scholar
[8]
Zhu X , Wang Q , Kang S G , Li J L , Jia X L . Coal-based ultrathin-wall graphitic porous carbon for high-performance form-stable phase change materials with enhanced thermal conductivity. Chemical Engineering Journal, 2020, 395: 125112
CrossRef Google scholar
[9]
Yang N N , Ji L , Fu H C , Shen Y F , Wang M J , Liu J H , Chang L P , Lv Y K . Hierarchical porous carbon derived from coal-based carbon foam for high-performance supercapacitors. Chinese Chemical Letters, 2022, 33(8): 3961–3967
CrossRef Google scholar
[10]
Bora M , Benoy S M , Tamuly J , Saikia B K . Ultrasonic-assisted chemical synthesis of activated carbon from low-quality subbituminous coal and its preliminary evaluation towards supercapacitor applications. Journal of Environmental Chemical Engineering, 2020, 9(1): 104986
CrossRef Google scholar
[11]
Boujibar O , Ghamouss F , Ghosh A , Achak O , Chafik T . Excellent CO2 capture by ultra-high microporous activated carbon made out from natural coal. Chemical Engineering & Technology, 2020, 44(1): 148–155
CrossRef Google scholar
[12]
Son Y R , Park S J . Preparation and characterization of mesoporous activated carbons from nonporous hard carbon via enhanced steam activation strategy. Materials Chemistry and Physics, 2020, 242: 122454
CrossRef Google scholar
[13]
Wang L J , Sun F , Gao J H , Pi X X , Qu Z B , Zhao G B . Adjusting the porosity of coal-based activated carbons based on a catalytic physical activation process for gas and liquid adsorption. Energy & Fuels, 2018, 32(2): 1255–1264
CrossRef Google scholar
[14]
Bora M , Bhattacharjya D , Saikia B K . Coal-derived activated carbon for electrochemical energy storage: status on supercapacitor, Li-ion battery, and Li-S battery applications. Energy & Fuels, 2021, 35(22): 18285–18307
CrossRef Google scholar
[15]
Wang L W , Li M H , Hao M M , Liu G K , Xu S F , Chen J , Ren X H , Levendis Y A . Effects of activation conditions on the properties of sludge-based activated coke. ACS Omega, 2021, 6(34): 22020–22032
CrossRef Google scholar
[16]
Hao C L , Chu M , Wang L S , Zhou L M . The effect of preparation conditions on microbubble flotation process of ultra clean coal using box Behnken design model. ChemistrySelect, 2020, 5(5): 1767–1775
CrossRef Google scholar
[17]
Zhang Y H , Song Z Y , Miao L , Lv Y K , Gan L H , Liu M X . All-round enhancement in Zn-ion storage enabled by solvent-guided lewis acid-base self-assembly of heterodiatomic carbon nanotubes. ACS Applied Materials & Interfaces, 2023, 15(29): 35380–35390
CrossRef Google scholar
[18]
Zhang Z R , Luo S H , Wang J C , Sun M Y , Yan S X , Wang Q , Zhang Y H , Liu X , Lei X F . Optimization of preparation of lignite-based activated carbon for high-performance supercapacitors with response surface methodology. Journal of Energy Storage, 2022, 56: 105913
CrossRef Google scholar
[19]
Oh G , Ra H W , Yoon S M , Mun T Y , Seo M W , Lee J G , Yoon S J . Syngas production through gasification of coal water mixture and power generation on dual-fuel diesel engine. Journal of the Energy Institute, 2018, 92(2): 265–274
CrossRef Google scholar
[20]
Ge Z W , Guo L J , Jin H . Catalytic supercritical water gasification mechanism of coal. International Journal of Hydrogen Energy, 2020, 45(16): 9504–9511
CrossRef Google scholar
[21]
Wang X , Qin Z H , Yang X Q , Chen Q , Lin Z . Synthesis of tremella-like porous carbon with oxygen-containing functional groups for high-performance supercapacitor. Diamond and Related Materials, 2020, 108: 107995
CrossRef Google scholar
[22]
Zhong M , Wang X P , Huang Y , Li L , Gao S H , Tian Y F , Shen W Z , Zhang J L , Guo S W . Anthracite-derived carbon-based electrode materials for high performance lithium ion capacitors. Fuel Processing Technology, 2022, 228: 107–146
CrossRef Google scholar
[23]
Song Z Y , Miao L , Lv Y K , Gan L H , Liu M X . NH4+ charge carrier coordinated H-bonded organic small molecule for fast and superstable rechargeable zinc batteries. Angewandte Chemie International Edition, 2023, 62(38): e202309446
CrossRef Google scholar
[24]
Islam T , Hasan M M , Shah S S , Karim M R , Al-Mubaddel F S , Zahir M H , Dar M A , Hossain M D , Aziz M A , Ahammad A J S . High yield activated porous coal carbon nanosheets from Boropukuria coal mine as supercapacitor material: investigation of the charge storing mechanism at the interfacial region. Journal of Energy Storage, 2020, 32: 101908
CrossRef Google scholar
[25]
Wang W , Lv H J , Du J , Chen A B . Fabrication of N-doped carbon nanobelts from a polypyrrole tube by confined pyrolysis for supercapacitors. Frontiers of Chemical Science and Engineering, 2021, 15(5): 1312–1321
CrossRef Google scholar
[26]
Li Z , Fu Y H , Zhou A N , Zhu C Y , Yang C , Zhang Q . Air impact pulverization-precise classification process to support ultraclean coal production. Powder Technology, 2017, 318: 231–241
CrossRef Google scholar
[27]
Cheng F , Yang X P , Dai S Y , Song D , Zhang S P , Lu W . Interweaving activated carbon with multi-dimensional carbon nanomaterials for high-performance supercapacitors. Journal of the Electrochemical Society, 2020, 167(4): 040507
CrossRef Google scholar
[28]
Song G R , Romero C , Lowe T , Driscoll G , Kreglow B , Schobert H , Baltrusaitis J , Yao Z . Multistage activation of anthracite coal-based activated carbon for high-performance supercapacitor applications. Energy & Fuels, 2023, 37(2): 1327–1343
CrossRef Google scholar
[29]
Qin Y , Song Z Y , Miao L , Hu C M , Chen Y M , Liu P X , Lv Y K , Gan L H , Liu M X . Hydrogen-bond-mediated micelle aggregating self-assembly towards carbon nanofiber networks for high-energy and long-life zinc ion capacitors. Chemical Engineering Journal, 2023, 470: 144256
CrossRef Google scholar
[30]
Mou P W , Pan J N , Niu Q H , Wang Z Z , Li Y B , Song D Y . Coal pores: methods, types, and characteristics. Energy & Fuels, 2021, 35(9): 7467–7484
CrossRef Google scholar
[31]
Zhuang Z H , Cui Y L , Zhu H G , Shi Y L , Zhuang Q C . Coal-based amorphous carbon as economical anode material for sodium-ion battery. Journal of the Electrochemical Society, 2018, 165(10): A2225–A2232
CrossRef Google scholar
[32]
Xiong S X , Yang N N , Wang X Q , Gong M , Chu J , Zhang R L , Wu B H , Li Z , Xu J W . Preparation of hierarchical porous activated carbons for high performance supercapacitors from coal gasification fine slag. Journal of Materials Science Materials in Electronics, 2022, 33(18): 14722–14734
CrossRef Google scholar
[33]
Chen S , Zhou W , Ding Y N , Zhao G B , Gao J H . Fe3+-mediated coal-assisted water electrolysis for hydrogen production: roles of mineral matter and oxygen-containing functional groups in coal. Energy, 2020, 220: 119677
CrossRef Google scholar
[34]
Qiu T , Yang J G , Bai X J . Insight into the change in carbon structure and thermodynamics during anthracite transformation into graphite. International Journal of Minerals Metallurgy and Materials, 2020, 27(2): 162–172
CrossRef Google scholar
[35]
Jing D J , Meng X X , Ge S C , Zhang T , Ma M X , Wang G . Structural model construction and optimal characterization of high-volatile bituminous coal molecules. ACS Omega, 2022, 7(22): 18350–18360
CrossRef Google scholar
[36]
Zhao H Q , Zhao D , Ye J Q , Wang P F , Chai M S , Li Z . Directional oxygen functionalization by defect in different metamorphic-grade coal-derived carbon materials for sodium storage. Energy & Environmental Materials, 2022, 5(1): 313–320
CrossRef Google scholar
[37]
Li Y D , Chen X Q , Zeng Z H , Dong Y , Yuan S H , Zhao W Q , Jiang F , Yang Y , Sun W , Ge P . Coal-based electrodes for energy storage systems: development, challenges, and prospects. ACS Applied Energy Materials, 2022, 5(6): 7874–7888
CrossRef Google scholar
[38]
Lu T , Li G Y , Wu W Z , Li K J , Li W C , Yang F , Liang Y H . Alkali-oxygen oxidation mechanism for producing benzene carboxylic acids from lignite: experimental and molecular modelling studies. Fuel, 2020, 280: 118652
CrossRef Google scholar
[39]
Qiu C J , Jiang L L , Gao Y G , Sheng L Z . Effects of oxygen-containing functional groups on carbon materials in supercapacitors: a review. Materials & Design, 2023, 230: 111952
CrossRef Google scholar

Competing interests

The authors declare that they have no competing interests.

Acknowledgements

Authors thank for financial support by Shaanxi Province Technological Innovation Guidance Special (Grant No. 2021QFY04-01) and technical support by Analytical Instrumentation Center of XUST.

RIGHTS & PERMISSIONS

2024 Higher Education Press
AI Summary AI Mindmap
PDF(1223 KB)

Accesses

Citations

Detail

Sections
Recommended

/