BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (6): 2075-2091.DOI: 10.16552/j.cnki.issn1001-1625.2025.1088
• Ceramics • Previous Articles Next Articles
LI Chuxing(
), WANG Honglei(
), ZHOU Xingui, YU Jinshan
Received:2025-11-07
Revised:2026-02-21
Online:2026-06-15
Published:2026-07-14
Contact:
WANG Honglei
CLC Number:
LI Chuxing, WANG Honglei, ZHOU Xingui, YU Jinshan. Research Progress on Biomass-Based High-Performance Structural Carbon Materials: Carbon Fibers, Carbon (Carbide) Matrices, and Carbon Coatings[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(6): 2075-2091.
| Source | Structure | Application field | Performance |
|---|---|---|---|
| Glucose and glucosamine | Carbon nanospheres | Supercapacitors | Specific capacitance of 266 F/g at a current density of 0.2 A/g, with 96.8% capacitance retention after 3 000 cycles[ |
| Cotton | Carbon nanotubes | Adsorbents | Adsorption capacities for Pb2+ and Cd2+ are approximately 5.8 and 6.4 times those of activated carbon[ |
| Spruce bark | Graphene nanosheets | Supercapacitors | Specific surface area up to 2 385 m2/g, specific capacitance of 398 F/g at a current density of 0.5 A/g[ |
| Pomelo peel | Hierarchical porous carbon | Microwave absorption/CO2 capture | Maximum reflection loss of -60.72 dB at a thickness of 1.74 mm[ |
| Glucose | Graphite film | Precision rlectronic devices | In-plane thermal conductivity of 439.9 W/(m·K), electromagnetic interference shielding effectiveness (SE) of 21.72 dB in X-band (8.2~12.4 GHz) at a thickness of 480 nm[ |
| Oak leaves | Hierarchical porous carbon | Battery anodes | Reversible capacity of 378 mAh/g at a current density of 0.1 C, with 97% capacity retention after 100 cycles[ |
| Cellulose | Carbon nanofiber-carbon nanotube | Oxygen evolution reaction electrocatalysts | Tafel slope of 65.0 mV/dec[ |
Table 1 Structural characteristics and application performance of biomass high-specific-surface-area carbon materials
| Source | Structure | Application field | Performance |
|---|---|---|---|
| Glucose and glucosamine | Carbon nanospheres | Supercapacitors | Specific capacitance of 266 F/g at a current density of 0.2 A/g, with 96.8% capacitance retention after 3 000 cycles[ |
| Cotton | Carbon nanotubes | Adsorbents | Adsorption capacities for Pb2+ and Cd2+ are approximately 5.8 and 6.4 times those of activated carbon[ |
| Spruce bark | Graphene nanosheets | Supercapacitors | Specific surface area up to 2 385 m2/g, specific capacitance of 398 F/g at a current density of 0.5 A/g[ |
| Pomelo peel | Hierarchical porous carbon | Microwave absorption/CO2 capture | Maximum reflection loss of -60.72 dB at a thickness of 1.74 mm[ |
| Glucose | Graphite film | Precision rlectronic devices | In-plane thermal conductivity of 439.9 W/(m·K), electromagnetic interference shielding effectiveness (SE) of 21.72 dB in X-band (8.2~12.4 GHz) at a thickness of 480 nm[ |
| Oak leaves | Hierarchical porous carbon | Battery anodes | Reversible capacity of 378 mAh/g at a current density of 0.1 C, with 97% capacity retention after 100 cycles[ |
| Cellulose | Carbon nanofiber-carbon nanotube | Oxygen evolution reaction electrocatalysts | Tafel slope of 65.0 mV/dec[ |
| Lignin type | Spinning method | Fiberdiameter/μm | Molecular weight/(g·mol-1) | Tensile strength/GPa | Tensile modulus/GPa |
|---|---|---|---|---|---|
| Softwood kraft lignin | Cinnamoylation melt spinning | 11.7 | Mn: 3 000 Mw: 21 000 | 0.95[ | 66.5[ |
| Softwood kraft lignin | Solution spinning | 5.6 | Mn: 5 553 Mw: 28 600 | 1.39[ | 98[ |
| Hardwood organosolv lignin | Hydroxypropyl modification, blending (TPU) melt spinning | 25 | Mn: 4 000 | 1.1[ | 80[ |
| Softwood kraft lignin | Blending (PAN) solution spinning | 7.0 | Mn: 6 500 | 1.20[ | 130[ |
| Lignosulfonate | Copolymerization (AN, IA) solution spinning | 11.2 | Mn: 43 000Mw: 214 000 | 1.74[ | 211[ |
| Hardwood pyrolysis lignin | Blending (PET) melt spinning | 12.6 | Mn: 566 | 1.22[ | 98[ |
| Hardwood pyrolysis lignin bio-oil | Depolymerization-rearrangement melt spinning | 5.1 | Mn: 3 266Mw: 11 710 | 2.21[ | 301[ |
Table 2 Relevant parameters of high-performance lignin-based carbon fibers
| Lignin type | Spinning method | Fiberdiameter/μm | Molecular weight/(g·mol-1) | Tensile strength/GPa | Tensile modulus/GPa |
|---|---|---|---|---|---|
| Softwood kraft lignin | Cinnamoylation melt spinning | 11.7 | Mn: 3 000 Mw: 21 000 | 0.95[ | 66.5[ |
| Softwood kraft lignin | Solution spinning | 5.6 | Mn: 5 553 Mw: 28 600 | 1.39[ | 98[ |
| Hardwood organosolv lignin | Hydroxypropyl modification, blending (TPU) melt spinning | 25 | Mn: 4 000 | 1.1[ | 80[ |
| Softwood kraft lignin | Blending (PAN) solution spinning | 7.0 | Mn: 6 500 | 1.20[ | 130[ |
| Lignosulfonate | Copolymerization (AN, IA) solution spinning | 11.2 | Mn: 43 000Mw: 214 000 | 1.74[ | 211[ |
| Hardwood pyrolysis lignin | Blending (PET) melt spinning | 12.6 | Mn: 566 | 1.22[ | 98[ |
| Hardwood pyrolysis lignin bio-oil | Depolymerization-rearrangement melt spinning | 5.1 | Mn: 3 266Mw: 11 710 | 2.21[ | 301[ |
| [1] | 夏婷, 李升可, 王瑞兵. 生命的基础元素: 碳的认知、生理功能和医学应用[J]. 化学教育(中英文), 2019, 40(19): 1-5. |
| XIA T, LI S K, WANG R B. Basic element of life: carbon and its history, physiological function and biomedical application[J]. Chinese Journal of Chemical Education, 2019, 40(19): 1-5 (in Chinese). | |
| [2] |
OMORIYEKOMWAN J E, TAHMASEBI A, DOU J X, et al. A review on the recent advances in the production of carbon nanotubes and carbon nanofibers via microwave-assisted pyrolysis of biomass[J]. Fuel Processing Technology, 2021, 214: 106686.
DOI URL |
| [3] | YAN L, LIU H, YANG Y F, et al. Lignin-derived carbon fibers: a green path from biomass to advanced materials[J]. Carbon Energy, 2025, 7(3): e662. |
| [4] |
ZENG S H, LI T F, WU S M, et al. Does green technology progress have a significant impact on carbon dioxide emissions[J]. Energy Economics, 2024, 133: 107524.
DOI URL |
| [5] |
ZHANG Z R, SONG J L, HAN B X. Catalytic transformation of lignocellulose into chemicals and fuel products in ionic liquids[J]. Chemical Reviews, 2017, 117(10): 6834-6880.
DOI PMID |
| [6] | KHANDAKER T, ISLAM T, NANDI A, et al. Biomass-derived carbon materials for sustainable energy applications: a comprehensive review[J]. Sustainable Energy & Fuels, 2025, 9(3): 693-723. |
| [7] | 李峰, 张舒涵, 邵天铭, 等. 碳中和导向下中国生物质能消费分析[J]. 全球能源互联网, 2025, 8(2): 192-200. |
| LI F, ZHANG S H, SHAO T M, et al. Analysis of China’s bioenergy consumption under carbon neutrality orientation[J]. Journal of Global Energy Interconnection, 2025, 8(2): 192-200 (in Chinese). | |
| [8] | 李涛, 何松, 林晓莹, 等. 农林废弃生物质资源精深加工技术进展[J]. 材料导报, 2021, 35(19): 19001-19014. |
| LI T, HE S, LIN X Y, et al. Recent advances on deep processing technologies for resourcing utilization of agricultural and forestry biomass wastes[J]. Materials Review, 2021, 35(19): 19001-19014 (in Chinese). | |
| [9] |
WANG F, QI X T, ZHANG H, et al. Innovative molten salt techniques for biomass valorization: transforming biomass into advanced carbon materials[J]. Carbon, 2025, 234: 119999.
DOI URL |
| [10] |
KE L Y, ZHOU N, WU Q H, et al. Microwave catalytic pyrolysis of biomass: a review focusing on absorbents and catalysts[J]. npj Materials Sustainability, 2024, 2: 24.
DOI |
| [11] |
CHYAN Y, YE R Q, LI Y L, et al. Laser-induced graphene by multiple lasing: toward electronics on cloth, paper, and food[J]. ACS Nano, 2018, 12(3): 2176-2183.
DOI URL |
| [12] |
ABDULHAFEZ M, TOMARAEI G N, BEDEWY M. Fluence-dependent morphological transitions in laser-induced graphene electrodes on polyimide substrates for flexible devices[J]. ACS Applied Nano Materials, 2021, 4(3): 2973-2986.
DOI URL |
| [13] |
BERHANU S, HERVY M, WEISS-HORTALA E, et al. Advanced characterization unravels the structure and reactivity of wood-based chars[J]. Journal of Analytical and Applied Pyrolysis, 2018, 130: 79-89.
DOI URL |
| [14] | LIBRA J A, RO K S, KAMMANN C, et al. Hydrothermal carbonization of biomass residuals: a comparative review of the chemistry, processes and applications of wet and dry pyrolysis[J]. Biofuels, 2011, 2(1): 71-106. |
| [15] | LOC N X, PHUONG D T M. Optimizing biochar production: a review of recent progress in lignocellulosic biomass pyrolysis[J]. Frontiers of Agricultural Science and Engineering, 2025, 12(1): 148-172. |
| [16] |
GONG Y T, XIE L, CHEN C H, et al. Bottom-up hydrothermal carbonization for the precise engineering of carbon materials[J]. Progress in Materials Science, 2023, 132: 101048.
DOI URL |
| [17] | 宋俊涛. 碳纤维表面碳涂层的水热制备及机理研究[D]. 哈尔滨: 哈尔滨工业大学, 2018. |
| SONG J T. Hydrothermal preparation and mechanism study of carbon coating on carbon fiber surface[D]. Harbin: Harbin Institute of Technology, 2018 (in Chinese). | |
| [18] | YU S J, HE J K, ZHANG Z E, et al. Towards negative emissions: hydrothermal carbonization of biomass for sustainable carbon materials[J]. Advanced Materials, 2024, 36(18): e2307412. |
| [19] |
GONZÁLEZ-ARIAS J, GÓMEZ X, GONZÁLEZ-CASTAÑO M, et al. Insights into the product quality and energy requirements for solid biofuel production: a comparison of hydrothermal carbonization, pyrolysis and torrefaction of olive tree pruning[J]. Energy, 2022, 238: 122022.
DOI URL |
| [20] |
ZHANG C Y, CHEN W H, SARAVANAKUMAR A, et al. Comparison of torrefaction and hydrothermal carbonization of high-moisture microalgal feedstock[J]. Renewable Energy, 2024, 225: 120265.
DOI URL |
| [21] |
GUO Q Q, QIAO S X, ZHANG D M, et al. A comparison of hydrothermal carbonization versus pyrolysis-activation for sludge-derived carbon materials on physiochemical properties and electrochemical performance[J]. Biomass and Bioenergy, 2024, 182: 107079.
DOI URL |
| [22] |
DA T X, CHEN T, HE W K, et al. Comprehensive comparisons of iodate adsorption onto corn stalk hydrothermal and pyrolytic biochar[J]. Journal of Radioanalytical and Nuclear Chemistry, 2021, 329(3): 1277-1290.
DOI |
| [23] |
WANG G Y, DAI Y J, YANG H P, et al. A review of recent advances in biomass pyrolysis[J]. Energy & Fuels, 2020, 34(12): 15557-15578.
DOI URL |
| [24] |
IPPOLITO J A, CUI L Q, KAMMANN C, et al. Feedstock choice, pyrolysis temperature and type influence biochar characteristics: a comprehensive meta-data analysis review[J]. Biochar, 2020, 2(4): 421-438.
DOI |
| [25] |
YUAN Z L, WANG Y, ZHU L F, et al. Machine-learning-aided biochar production from aquatic biomass[J]. Carbon Research, 2024, 3(1): 77.
DOI |
| [26] |
DING Y M, EZEKOYE O A, LU S X, et al. Comparative pyrolysis behaviors and reaction mechanisms of hardwood and softwood[J]. Energy Conversion and Management, 2017, 132: 102-109.
DOI URL |
| [27] |
DAI G X, WANG G Y, WANG K G, et al. Mechanism study of hemicellulose pyrolysis by combining in-situ DRIFT, TGA-PIMS and theoretical calculation[J]. Proceedings of the Combustion Institute, 2021, 38(3): 4241-4249.
DOI URL |
| [28] |
ZHANG T T, LI X X, QIAO X J, et al. Initial mechanisms for an overall behavior of lignin pyrolysis through large-scale ReaxFF molecular dynamics simulations[J]. Energy & Fuels, 2016, 30(4): 3140-3150.
DOI URL |
| [29] | QU H X, ZHANG X J, ZHAN J J, et al. Biomass-based nitrogen-doped hollow carbon nanospheres derived directly from glucose and glucosamine: structural evolution and supercapacitor properties[J]. ACS Sustainable Chemistry & Engineering, 2018, 6(6): 7380-7389. |
| [30] |
ONISHCHENKO D V, REVA V P, KURYAVYI V G, et al. Sorptional properties of carbon nanotubes produced from corn wastes[J]. Coke and Chemistry, 2013, 56(3): 107-109.
DOI URL |
| [31] |
SUN Z X, ZHENG M T, HU H, et al. From biomass wastes to vertically aligned graphene nanosheet arrays: a catalyst-free synthetic strategy towards high-quality graphene for electrochemical energy storage[J]. Chemical Engineering Journal, 2018, 336: 550-561.
DOI URL |
| [32] |
ZHANG G Y, LIU H, WEN Y D, et al. Improvement of the wave-absorbing properties of biomass-derived porous carbon through in-situ growth of SiC nanowires[J]. Materials Research Bulletin, 2024, 169: 112499.
DOI URL |
| [33] |
XU Q, LU J Y, ZHENG F. Comparative study of PEI- and TEPA-functionalized biochar for enhanced CO2 adsorption: multi-factorial effects, amine structure and pore characteristics optimization[J]. Journal of Environmental Chemical Engineering, 2025, 13(5): 118756.
DOI URL |
| [34] |
TAN M Y, CHEN D M, CHENG Y, et al. Anisotropically oriented carbon films with dual-function of efficient heat dissipation and excellent electromagnetic interference shielding performances[J]. Advanced Functional Materials, 2022, 32(31): 2202057.
DOI URL |
| [35] |
ISHAQ M, JABEEN M, HE Y S, et al. Unveiling the critical role of pre-hydrothermal effect in plant biowaste-derived hard carbon for superior rate capability and cycle life in sodium-ion batteries[J]. Advanced Energy Materials, 2025, 15(16): 2403142.
DOI URL |
| [36] | TAO X, LUO S, TIAN C H, et al. Ni@Ni2P encapsulation in interconnected N-doped carbonized cellulose nanofibril network for efficient oxygen evolution reaction[J]. ACS Sustainable Chemistry & Engineering, 2020, 8(4): 1859-1867. |
| [37] |
PARIYAR P, KUMARI K, JAIN M K, et al. Evaluation of change in biochar properties derived from different feedstock and pyrolysis temperature for environmental and agricultural application[J]. Science of the Total Environment, 2020, 713: 136433.
DOI URL |
| [38] |
HE H Z, ZHANG R Q, ZHANG P C, et al. Functional carbon from nature: biomass-derived carbon materials and the recent progress of their applications[J]. Advanced Science, 2023, 10(16): 2205557.
DOI URL |
| [39] | BENGTSSON A, BENGTSSON J, SEDIN M, et al. Carbon fibers from lignin-cellulose precursors: effect of stabilization conditions[J]. ACS Sustainable Chemistry & Engineering, 2019, 7(9): 8440-8448. |
| [40] |
SHARMA A, AMIN M M, BARI M AAL, et al. Carbon fiber from petroleum pitch: current advances and potential applications[J]. Energy Nexus, 2025, 17: 100355.
DOI URL |
| [41] |
SUN S C, XU Y, WEN J L, et al. Recent advances in lignin-based carbon fibers (LCFs): precursors, fabrications, properties, and applications[J]. Green Chemistry, 2022, 24(15): 5709-5738.
DOI URL |
| [42] |
BARI M AAL, NABIL S K, SAAD S, et al. Economic and environmental assessment of asphaltene-derived carbon fiber production[J]. Green Chemistry, 2023, 25(16): 6446-6458.
DOI URL |
| [43] |
LIU D P, OUYANG Q, JIANG X F, et al. Thermal properties and thermal stabilization of lignosulfonate-acrylonitrile-itaconic acid terpolymer for preparation of carbon fiber[J]. Polymer Degradation and Stability, 2018, 150: 57-66.
DOI URL |
| [44] |
LUO Y X, QU W D, COCHRAN E, et al. Enabling high-quality carbon fiber through transforming lignin into an orientable and melt-spinnable polymer[J]. Journal of Cleaner Production, 2021, 307: 127252.
DOI URL |
| [45] | SHARMA A, AMIN M M, AZIZ M A, et al. Production of high tensile strength bio-based carbon fibers: advances, challenges, and emerging applications[J]. Chemistry, an Asian Journal, 2025, 20(16): e00144. |
| [46] |
YAN L, HUERTAS-ALONSO A J, LIU H, et al. Lignin polymerization: towards high-performance materials[J]. Chemical Society Reviews, 2025, 54(14): 6634-6651.
DOI URL |
| [47] | HAMZA M, AYOUB M, SHAMSUDDIN RBIN, et al. A review on the waste biomass derived catalysts for biodiesel production[J]. Environmental Technology & Innovation, 2021, 21: 101200. |
| [48] |
ZHAO J G, HAO S, ZHAO P P, et al. On-demand catalytic platform for glycerol upgrade and utilization[J]. Journal of the American Chemical Society, 2025, 147(11): 9210-9219.
DOI PMID |
| [49] |
MELCHER F, VOGELGSANG F, HAACK M, et al. Lipase-mediated plant oil hydrolysis: toward a quantitative glycerol recovery for the synthesis of pure allyl alcohol and acrylonitrile[J]. European Journal of Lipid Science and Technology, 2023, 125(9): 2200196.
DOI URL |
| [50] | 沈聪浩, 章沈翀, 李靖, 等. 木质素改性方法及其制备碳纤维的应用研究进展[J]. 复合材料学报, 2024, 41(4): 1764-1775. |
| SHEN C H, ZHANG S C, LI J, et al. Research progress of lignin modification method and its application in preparation of carbon fiber[J]. Acta Materiae Compositae Sinica, 2024, 41(4): 1764-1775 (in Chinese). | |
| [51] | WANG S C, BAI J X, INNOCENT M T, et al. Lignin-based carbon fibers: formation, modification and potential applications[J]. Green Energy & Environment, 2022, 7(4): 578-605. |
| [52] | LIU H, DAI Z, CAO Q P, et al. Lignin/polyacrylonitrile carbon fibers: the effect of fractionation and purification on properties of derived carbon fibers[J]. ACS Sustainable Chemistry & Engineering, 2018, 6(7): 8554-8562. |
| [53] |
BAI J X, WANG S C, LI Y J, et al. Effect of chemical structure and molecular weight on the properties of lignin-based ultrafine carbon fibers[J]. International Journal of Biological Macromolecules, 2021, 187: 594-602.
DOI PMID |
| [54] | JIN J, DING J H, KLETT A, et al. Carbon fibers derived from fractionated-solvated lignin precursors for enhanced mechanical performance[J]. ACS Sustainable Chemistry & Engineering, 2018, 6(11): 14135-14142. |
| [55] |
HOSSEINAEI O, HARPER D P, BOZELL J J, et al. Improving processing and performance of pure lignin carbon fibers through hardwood and herbaceous lignin blends[J]. International Journal of Molecular Sciences, 2017, 18(7): 1410.
DOI URL |
| [56] |
LI Q, HU C, LI M J, et al. Enhancing the multi-functional properties of renewable lignin carbon fibers via defining the structure-property relationship using different biomass feedstocks[J]. Green Chemistry, 2021, 23(10): 3725-3739.
DOI URL |
| [57] |
SANDERS J H, TILLER P, CHO S M, et al. The influence of solvent properties and biomass feedstock characteristics on deep eutectic solvent mediated lignin and hemicellulose fractionation[J]. International Journal of Biological Macromolecules, 2025, 320(3): 146086.
DOI URL |
| [58] |
JIANG C, YAO M Z, WANG Z H, et al. A novel flower-like architecture comprised of 3D interconnected Co-Al-O x /S y decorated lignosulfonate-derived carbon nanosheets for flexible supercapacitors and electrocatalytic water splitting[J]. Carbon, 2021, 184: 386-399.
DOI URL |
| [59] |
STEUDLE L M, FRANK E, OTA A, et al. Carbon fibers prepared from melt spun peracylated softwood lignin: an integrated approach[J]. Macromolecular Materials and Engineering, 2017, 302(4): 1600441.
DOI URL |
| [60] |
QU W D, LIU J, XUE Y, et al. Potential of producing carbon fiber from biorefinery corn stover lignin with high ash content[J]. Journal of Applied Polymer Science, 2018, 135(4): 45736.
DOI URL |
| [61] |
THUNGA M, CHEN K K, GREWELL D, et al. Bio-renewable precursor fibers from lignin/polylactide blends for conversion to carbon fibers[J]. Carbon, 2014, 68: 159-166.
DOI URL |
| [62] |
JIN J, OGALE A A. Carbon fibers derived from wet-spinning of equi-component lignin/polyacrylonitrile blends[J]. Journal of Applied Polymer Science, 2018, 135(8): 45903.
DOI URL |
| [63] |
STOJANOVSKA E, KURTULUS M, ABDELGAWAD A, et al. Developing lignin-based bio-nanofibers by centrifugal spinning technique[J]. International Journal of Biological Macromolecules, 2018, 113: 98-105.
DOI PMID |
| [64] |
BENGTSSON A, LANDMÉR A, NORBERG L, et al. Carbon fibers from wet-spun cellulose-lignin precursors using the cold alkali process[J]. Fibers, 2022, 10(12): 108.
DOI URL |
| [65] | QU W D, BAI X L. Thermal treatment of pyrolytic lignin and polyethylene terephthalate toward carbon fiber production[J]. Journal of Applied Polymer Science, 2020, 137(26): 48843. |
| [66] | CULEBRAS M, BEAUCAMP A, WANG Y, et al. Biobased structurally compatible polymer blends based on lignin and thermoplastic elastomer polyurethane as carbon fiber precursors[J]. ACS Sustainable Chemistry & Engineering, 2018, 6(7): 8816-8825. |
| [67] |
AGUSTIN M B, DE CARVALHO D M, LAHTINEN M H, et al. Laccase as a tool in building advanced lignin-based materials[J]. ChemSusChem, 2021, 14(21): 4615-4635.
DOI PMID |
| [68] | WANG L Y, TAN L P, HU L Q, et al. On laccase-catalyzed polymerization of biorefinery lignin fractions and alignment of lignin nanoparticles on the nanocellulose surface via one-pot water-phase synthesis[J]. ACS Sustainable Chemistry & Engineering, 2021, 9(26): 8770-8782. |
| [69] | MADADI M, KARGARAN E, HASHEMI S S, et al. Scalable lignin monomer production via machine learning-guided reductive catalytic fractionation of lignocellulose[J]. Advanced Science, 2025, 12(42): e10496. |
| [70] | WENG Y Q, LI J, YANG X, et al. Effects of carbon source on ablation property of C/C-ZrC-SiC composites and SiC coating under plasma flame[J]. Journal of Materials Engineering and Performance, 2021, 30(10): 7152-7162. |
| [71] | YANG M M, WANG T, WU M. Ablation behavior of SiC whisker and ZrB2 particle-filled ZrO2 sol-gel composite coating under high-intensity continuous laser irradiation[J]. Ceramics International, 2021, 47(18): 26327-26334. |
| [72] |
ZHANG S M, WANG S, LI W, et al. Preparation of ZrB2 based composites by reactive melt infiltration at relative low temperature[J]. Materials Letters, 2011, 65(19/20): 2910-2912.
DOI URL |
| [73] |
LI Q G, ZHOU H J, DONG S M, et al. Fabrication of a ZrC-SiC matrix for ceramic matrix composites and its properties[J]. Ceramics International, 2012, 38(5): 4379-4384.
DOI URL |
| [74] |
LIU H L, LIU J X, LIU H T, et al. Changed oxidation behavior of ZrB2-SiC ceramics with the addition of ZrC[J]. Ceramics International, 2015, 41(6): 8247-8251.
DOI URL |
| [75] | 杨伟韬. 溶胶-凝胶法制备ZrB2-ZrC-SiC及C/C复合材料的改性[D]. 长沙: 中南大学, 2023. |
| YANG W T. Preparation of ZrB2-ZrC-SiC and modification of C/C composites by sol-gel method[D]. Changsha: Central South University, 2023 (in Chinese). | |
| [76] | 陈大明. 一种固定糖类物质中的碳并制取高纯碳(石墨)材料的方法: CN104176725B[P]. 2016-08-24. |
| CHEN D M. Method for fixing carbon in sugar substances and preparing high-purity carbon (graphite) materials: CN104176725B[P]. 2016-08-24 (in Chinese). | |
| [77] | 孙博谦. 各向同性多晶纳米石墨的糖碳高效制备及其在C/C复合材料中的应用[D]. 哈尔滨: 哈尔滨工业大学, 2023. |
| SUN B Q. Efficient preparation of isotropic polycrystalline nano-graphite from sugar carbon and its application in C/C composites[D]. Harbin: Harbin Institute of Technology, 2023 (in Chinese). | |
| [78] |
LI C Y, LI G B, OUYANG H B, et al. Microstructure and properties of C/C-ZrC composites prepared by hydrothermal deposition combined with carbothermal reduction[J]. Journal of Alloys and Compounds, 2018, 741: 323-330.
DOI URL |
| [79] | 李媛琪, 王博, 王龙, 等. 喷涂-烧结法制备SiC涂层及抗冲蚀性能的研究[J]. 中国陶瓷, 2024, 60(11): 37-45. |
| LI Y Q, WANG B, WANG L, et al. Research on the preparation of SiC coatings and their erosion resistance by the spray-sintering method[J]. China Ceramics, 2024, 60(11): 37-45 (in Chinese). | |
| [80] | 张泽. PIP工艺制备低成本C/C-SiC复合材料及其氧化和烧蚀性能研究[D]. 长沙: 中南大学, 2022. |
| ZHANG Z. Preparation of low-cost C/C-SiC composites by PIP process and their oxidation and ablation properties[D]. Changsha: Central South University, 2022 (in Chinese). | |
| [81] |
CHEN L T, FAN Z Q, MAO W G, et al. Analysis of formation mechanisms of sugar-derived dense carbons via hydrogel carbonization method[J]. Nanomaterials, 2022, 12(22): 4090.
DOI URL |
| [82] | 江健康. 基于不同碳源低成本高效制备C/C复合材料及性能研究[D]. 哈尔滨: 哈尔滨工业大学, 2022. |
| JIANG J K. Low-cost and efficient preparation of C/C composites based on different carbon sources and their properties[D]. Harbin: Harbin Institute of Technology, 2022 (in Chinese). | |
| [83] | 陈思彤. 基于糖-碳转化法构筑抗氧化C/C-ZrC-SiC复合材料及其性能研究[D]. 哈尔滨: 哈尔滨工业大学, 2019. |
| CHEN S T. Construction of anti-oxidation C/C-ZrC-SiC composites based on sugar-carbon conversion method and their properties[D]. Harbin: Harbin Institute of Technology, 2019 (in Chinese). | |
| [84] | 李筱暄, 付前刚, 文子豪, 等. 极端环境用超高温陶瓷结构材料研究进展[J]. 无机材料学报, 2025, 40(10): 1045-1078. |
|
LI X X, FU Q G, WEN Z H, et al. Research progress on ultra-high temperature ceramic structural materials for extreme environments[J]. Journal of Inorganic Materials, 2025, 40(10): 1045-1078 (in Chinese).
DOI URL |
|
| [85] |
MARTIN H P, MÜLLER E, KNOLL Y, et al. Silicon carbide derived from silica sol and sugar[J]. Journal of Materials Science Letters, 1995, 14(9): 620-622.
DOI URL |
| [86] | MALIHE Z, KAZEM T, AHMAD I. Formation of SiC nanocrystals prepared by sol-gel processing of green carbon sources and DFT calculations[J]. Journal of Nanostructures, 2020, 10(3): 660-670. |
| [87] | 杨会永, 徐彬, 陈典, 等. SiC/SiC复合材料抗氧化界面相的研究现状及展望[J]. 硅酸盐学报, 2021, 49(7): 1446-1456. |
| YANG H Y, XU B, CHEN D, et al. Development on oxidation resistant interphase of SiC/SiC composites[J]. Journal of the Chinese Ceramic Society, 2021, 49(7): 1446-1456 (in Chinese). | |
| [88] |
YE Z Y, WANG Y L, XIONG X, et al. Microstructure, interfacial and mechanical properties of SiC interphase modified C/C-SiC composites prepared by reactive melt infiltration[J]. Journal of the European Ceramic Society, 2024, 44(15): 116785.
DOI URL |
| [89] |
ROLDÁN L, SANTOS I, ARMENISE S, et al. The formation of a hydrothermal carbon coating on graphite microfiber felts for using as structured acid catalyst[J]. Carbon, 2012, 50(3): 1363-1372.
DOI URL |
| [90] |
LA MER V K. Nucleation in phase transitions[J]. Industrial & Engineering Chemistry, 1952, 44(6): 1270-1277.
DOI URL |
| [91] |
XI X F, CHEN Y S, WANG J, et al. A multiscale hydrothermal carbon layer modified carbon fiber for composite fabrication[J]. RSC Advances, 2018, 8(41): 23339-23347.
DOI URL |
| [92] |
TITIRICI M M, ANTONIETTI M, BACCILE N. Hydrothermal carbon from biomass: a comparison of the local structure from poly- to monosaccharides and pentoses/hexoses[J]. Green Chemistry, 2008, 10(11): 1204-1212.
DOI URL |
| [93] |
WANG Z H, XIA S P, WANG X B, et al. Catalytic production of 5-hydroxymethylfurfural from lignocellulosic biomass: recent advances, challenges and opportunities[J]. Renewable and Sustainable Energy Reviews, 2024, 196: 114332.
DOI URL |
| [94] |
FANG H Y, SHENG Z H, WANG W X, et al. Formation and mechanism of carbon coating on carbon fibers through glucose-to-carbon conversion and its effect on the mechanical properties of Cf/ZrB2-SiC composites[J]. Journal of the European Ceramic Society, 2025, 45(15): 117569.
DOI URL |
| [95] |
FANG C, HU P, DONG S, et al. An efficient hydrothermal transformation approach for construction of controllable carbon coating on carbon fiber from renewable carbohydrate[J]. Applied Surface Science, 2019, 491: 478-487.
DOI URL |
| [96] | 方成. 碳纤维表面碳层的水热法构筑及Cf/ZrB2复合材料的性能优化[D]. 哈尔滨: 哈尔滨工业大学, 2021. |
| FANG C. Hydrothermal construction of carbon layer on carbon fiber surface and performance optimization of Cf/ZrB2 composites[D]. Harbin: Harbin Institute of Technology, 2021 (in Chinese). | |
| [97] | 钱宏. 钇硅酸盐改性轻质防隔热复合材料的制备与性能研究[D]. 哈尔滨: 哈尔滨工业大学, 2020. |
| QIAN H. Preparation and properties of yttrium silicate modified lightweight anti-insulation composites[D]. Harbin: Harbin Institute of Technology, 2020 (in Chinese). |
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