Frontiers of Chemical Science and Engineering >
Facile strategy for carbon foam fabrication with lignin as sole feedstock and its applications
Received date: 22 Jun 2022
Accepted date: 30 Aug 2022
Published date: 15 Aug 2023
Copyright
This research is a follow-up to our recent discovery of a facile strategy for directly converting lignin powder into carbon foam. In this work, we report that the thermal pretreatment parameters in air can remarkably influence the formation and properties of the derived carbon foam. Thermal pretreatment parameters (heating rate, temperature, and residence time) were systematically investigated and a conversion mechanism into carbon foam was proposed. During the thermal pretreatment, relatively low temperatures, low heating rates, and short residence time hindered the formation of smooth and well-connected structures in the carbon foam. The overall product yields were similar regardless of the thermal pretreatment conditions. The densities of the different carbon foams ranged 0.27–0.83 g∙cm−3. The carbon foams with the highest compressive strengths (> 10 MPa) were KLPC280-2-5, KLPC300-0-5, and KLPC300-2-2.5. KLPC280-2-5 exhibited a high iodine sorption value (182 mg∙g−1). KLPC300-2-5 exhibited a specific capacitance of 158 F∙g−1 at a current density of 0.05 A∙g−1. The maximum evaporation rates in the solar vapor generation experiments were 1.05 and 1.38 kg∙m−2∙h−1 under 100 and 150 mW∙cm−2 irradiation, respectively. The good performances are attributed to the robust, porous, and continuous structure.
Key words: lignin; carbon foam; thermal pretreatment; solar vapor generation
Linghong Yin , Zizhu Zhao , Meng Han , Wangda Qu . Facile strategy for carbon foam fabrication with lignin as sole feedstock and its applications[J]. Frontiers of Chemical Science and Engineering, 2023 , 17(8) : 1051 -1064 . DOI: 10.1007/s11705-022-2248-x
1 |
Li W, Feng L, Shi X, Wang Y. Mechanical and electromagnetic shielding properties of carbon foam. Advanced Engineering Materials, 2021, 23(12): 2100452
|
2 |
Zimmermann M V G, Perondi D, Lazzari L K, Godinho M, Zattera A J. Carbon foam production by biomass pyrolysis. Journal of Porous Materials, 2020, 27(4): 1119–1125
|
3 |
Chen C, Kennel E B, Stiller A H, Stansberry P G, Zondlo J W. Carbon foam derived from various precursors. Carbon, 2006, 44(8): 1535–1543
|
4 |
Zhou P, Chen Q L. Preparation and characterization of carbon foam derived from coal pitch. Journal of Analytical and Applied Pyrolysis, 2016, 122: 370–376
|
5 |
Gupta S, Dey M, Matzke C, Ellis G, Javaid S, Hall K, Ji Y, Payne S. Synthesis and characterization of novel foams by pyrolysis of lignin. Tappi Journal, 2019, 18(01): 45–56
|
6 |
Ragauskas A J, Beckham G T, Biddy M J, Chandra R, Chen F, Davis M F, Davison B H, Dixon R A, Gilna P, Keller M, Langan P, Naskar A K, Saddler J N, Tschaplinski T J, Tuskan G A, Wyman C E. Lignin valorization: improving lignin processing in the biorefinery. Science, 2014, 344(6185): 1246843
|
7 |
Liu W J, Jiang H, Yu H Q. Thermochemical conversion of lignin to functional materials: a review and future directions. Green Chemistry, 2015, 17(11): 4888–4907
|
8 |
Zhang W, Yin J, Wang C, Zhao L, Jian W, Lu K, Lin H, Qiu X, Alshareef H N. Lignin derived porous carbons: synthesis methods and supercapacitor applications. Small Methods, 2021, 5(11): 2100896
|
9 |
Zeng Z, Ma X Y D, Zhang Y, Wang Z, Ng B F, Wan M P, Lu X. Robust lignin-based aerogel filters: high-efficiency capture of ultrafine airborne particulates and the mechanism. ACS Sustainable Chemistry & Engineering, 2019, 7(7): 6959–6968
|
10 |
Seo J, Park H, Shin K, Baeck S H, Rhym Y, Shim S E. Lignin-derived macroporous carbon foams prepared by using poly(methyl methacrylate) particles as the template. Carbon, 2014, 76: 357–367
|
11 |
Vannarath A, Thalla A K. Synthesis and characterisation of an ultra-light, hydrophobic and flame-retardant robust lignin-carbon foam for oil-water separation. Journal of Cleaner Production, 2021, 325: 129263
|
12 |
Xu F, Gui Y, Zuo S, Li J, Wang S. Preparation of lignin-based carbon foam monoliths with high strength and developed micrometer-sized cell/nano-sized porous structures using a self-bubbling method. Journal of Analytical and Applied Pyrolysis, 2022, 163: 105490
|
13 |
Qu W, Zhao Z, Liang C, Hu P, Ma Z. Simple, additive-free, extra pressure-free process to direct convert lignin into carbon foams. International Journal of Biological Macromolecules, 2022, 209: 692–702
|
14 |
Hessler L E, Power R E. The use of iodine adsorption as a measure of cellulose fiber crystallinity. Textile Research Journal, 1954, 24(9): 822–827
|
15 |
Liu Y, Liu H, Xiong J, Li A, Wang R, Wang L, Qin X, Yu J. Bioinspired design of electrospun nanofiber based aerogel for efficient and cost-effective solar vapor generation. Chemical Engineering Journal, 2022, 427: 131539
|
16 |
Zhang C, Shao Y, Zhang L, Zhang S, Westerhof R J M, Liu Q, Jia P, Li Q, Wang Y, Hu X. Impacts of temperature on evolution of char structure during pyrolysis of lignin. Science of the Total Environment, 2020, 699: 134381
|
17 |
Zhang X, Yan Q, Leng W, Li J, Zhang J, Cai Z, Hassan E B. Carbon nanostructure of kraft lignin thermally treated at 500 to 1000 °C. Materials, 2017, 10(8): 975
|
18 |
Zhou S, Xue Y, Sharma A, Bai X. Lignin valorization through thermochemical conversion: comparison of hardwood, softwood and herbaceous lignin. ACS Sustainable Chemistry & Engineering, 2016, 4(12): 6608–6617
|
19 |
Kishimoto T, Ueki A, Sano Y. Delignification mechanism during high-boiling solvent pulping. Part 3. Structural changes in lignin analyzed by 13C-NMR spectroscopy. Holzforschung, 2003, 57(6): 602–610
|
20 |
Braun J L, Holtman K M, Kadla J F. Lignin-based carbon fibers: oxidative thermostabilization of kraft lignin. Carbon, 2005, 43(2): 385–394
|
21 |
Sharma R K, Wooten J B, Baliga V L, Lin X, Chan W G, Hajaligol M R. Characterization of chars from pyrolysis of lignin. Fuel, 2004, 83(11-12): 1469–1482
|
22 |
Yang H P, Yan R, Chen H P, Lee D H, Zheng C G. Characteristics of hemicellulose, cellulose and lignin pyrolysis. Fuel, 2007, 86(12-13): 1781–1788
|
23 |
Ragauskas A J, Williams C K, Davison B H, Britovsek G, Cairney J, Eckert C A, Frederick W J Jr, Hallett J P, Leak D J, Liotta C L, Mielenz J R, Murphy R, Templer R, Tschaplinski T. The path forward for biofuels and biomaterials. Science, 2006, 311(5760): 484–489
|
24 |
Hosseinaei O, Harper D P, Bozell J J, Rials T G. Role of physicochemical structure of organosolv hardwood and herbaceous lignins on carbon fiber performance. ACS Sustainable Chemistry & Engineering, 2016, 4(10): 5785–5798
|
25 |
Li Z, Chen W, Hao H. Mechanical properties of carbon foams under quasi-static and dynamic loading. International Journal of Mechanical Sciences, 2019, 161: 105039
|
26 |
Stahlfeld K W, Belmont E L. Carbon foam production from lignocellulosic biomass via high pressure pyrolysis. Journal of Analytical and Applied Pyrolysis, 2021, 156: 105115
|
27 |
Ye L, Zhang J, Zhao J, Luo Z, Tu S, Yin Y. Properties of biochar obtained from pyrolysis of bamboo shoot shell. Journal of Analytical and Applied Pyrolysis, 2015, 114: 172–178
|
28 |
Wu X, Zhou J, Xing W, Zhang Y, Bai P, Xu B, Zhuo S, Xue Q, Yan Z. Insight into high areal capacitances of low apparent surface area carbons derived from nitrogen-rich polymers. Carbon, 2015, 94: 560–567
|
29 |
LedeJDieboldJ PPeacockeG V CPiskorzJ. The nature and properties of intermediate and unvaporized biomass pyrolysis materials. In: Developments in Thermochemicol Biomass Conversion. Amsterdam: Springer, 1997
|
30 |
Brodin I, Ernstsson M, Gellerstedt G, Sjöholm E. Oxidative stabilisation of kraft lignin for carbon fibre production. Holzforschung, 2012, 66(2): 141–147
|
31 |
Rios R V R A, Martínez-Escandell M, Molina-Sabio M, Rodríguez-Reinoso F. Carbon foam prepared by pyrolysis of olive stones under steam. Carbon, 2006, 44(8): 1448–1454
|
32 |
BridgwaterA VCzernikSPiskorzJ. The status of biomass fast pyrolysis. In: Fast Pyrolysis of Biomass: A Handbook. CL Scientific Publiching Serviced Ltd.: Birmingham, 2002
|
33 |
Chen C, Kuang Y, Hu L. Challenges and opportunities for solar evaporation. Joule, 2019, 3(3): 683–718
|
34 |
Wang C, Wang Y, Guan W, Wang P, Feng J, Song N, Dong H, Yu L, Sui L, Gan Z, Dong L. A self-floating and integrated bionic mushroom for highly efficient solar steam generation. Journal of Colloid and Interface Science, 2022, 612: 88–96
|
35 |
Bai H, Liu N, Hao L, He P, Ma C, Niu R, Gong J, Tang T. Self-floating efficient solar steam generators constructed using super-hydrophilic N,O dual-doped carbon foams from waste polyester. Energy & Environmental Materials, 2021, 5(4): 1204–1213
|
36 |
Li Y, Liao Y, Zhang J, Huang E, Ji L, Zhang Z, Zhao R, Zhang Z, Yang B, Zhang Y, Xu B, Qin G, Zhang X. High-entropy-alloy nanoparticles with enhanced interband transitions for efficient photothermal conversion. Angewandte Chemie, 2021, 133(52): 27319–27324
|
37 |
Li H, Yuan D, Tang C, Wang S, Sun J, Li Z, Tang T, Wang F, Gong H, He C. Lignin-derived interconnected hierarchical porous carbon monolith with large areal/volumetric capacitances for supercapacitor. Carbon, 2016, 100: 151–157
|
38 |
Qian W, Sun F, Xu Y, Qiu L, Liu C, Wang S, Yan F. Human hair-derived carbon flakes for electrochemical supercapacitors. Energy & Environmental Science, 2014, 7(1): 379–386
|
39 |
Saha D, Li Y, Bi Z, Chen J, Keum J K, Hensley D K, Grappe H A, Meyer H M III, Dai S, Paranthaman M P, Naskar A K. Studies on supercapacitor electrode material from activated lignin-derived mesoporous carbon. Langmuir, 2014, 30(3): 900–910
|
40 |
Wu S, Chen D, Zhao G, Cheng Y, Sun B, Yan X, Han W, Chen G, Zhang X. Controllable synthesis of a robust sucrose-derived bio-carbon foam with 3D hierarchical porous structure for thermal insulation, flame retardancy and oil absorption. Chemical Engineering Journal, 2022, 434: 134514
|
41 |
Wang Y, He Z, Zhan L, Liu X. Coal tar pitch based carbon foam for thermal insulating material. Materials Letters, 2016, 169: 95–98
|
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