POLYMERS AND POLYMER MATRIX COMPOSITES |
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Research Progress on Noble Metals (Pt/Pd/Ru)/Molecular Sieve in the Preparation of High-quality Hydrocarbon Liquid Fuels Through Hydrodeoxygenation of Fats and Oils |
NIE Yichen1,2,3, LI Shuaizhe1,2,3, Keomeesay Phidsavard1, GU Wen1,2,3, ZHANG Wei1,2,3,4, LIU Na1,2,3,4, XU Gaoxiang1,2,3,4, LIU Ying1,2,3,4, LI Xingyong1,2,3,4,*, CHEN Yubao1,2,3,4,*
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1 School of Energy and Environmental Sciences, Yunnan Normal University, Kunming 650500, China 2 Key Laboratory of Biomass Green Energy and Platform Compounds, Yunnan Provincial Department of Education, Kunming 650500, China 3 International R&D Centre for Low Carbon Agriculture and Green Development Technology of Yunnan Province, Kunming 650500, China 4 Key Laboratory of Rural Energy Engineering of Yunnan Province, Kunming 650500, China |
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Abstract The development of sustainable and environmentally friendly bio-hydrocarbon liquid fuels has become particularly significant since the establishment of the carbon peak and carbon neutrality targets. Thermal catalytic hydrodeoxygenation of fats and oils, one of the most prevalent methods for producing bio-hydrocarbon fuels, is critically dependent on catalyst selection, and noble metal catalysts have received a lot of attention due to their high catalytic efficiency and selectivity. This review summarizes recent applications and research advancement of noble metal catalysts in the hydrodeoxygenation of fats and oils, including the processes of fats and oils hydrogenation and the mechanism of various noble metal catalysts. The fundamental parameters influencing the effectiveness of noble metal catalysts are examined from three perspectives:molecular sieve selection, active component selection and preparation approach, particularly an emphasis on the effect of various types of molecular sieves on catalytic reactions and catalyst preparation. Furthermore, discusses the issues associated with noble metal catalyzed oil and grease hydroge-nation, as well as potential future research directions.
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Published:
Online: 2025-05-29
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1 Long F, Liu W, Jiang X, et al. Renewable and Sustainable Energy Reviews, 2021, 148, 111269. 2 Liu M L, Wei H, Gai Y L, et al. Coal Chemical Industry, 2022, 50(2), 1(in Chinese). 刘明亮, 卫浩, 盖玉龙. 煤化工, 2022, 50(2), 1. 3 Xu J, Jiang J, Zhao J. Renewable and Sustainable Energy Reviews, 2016, 58, 331. 4 Olkuski T, Suwała W, Wyrwa A, et al. Open Chemistry, 2021, 19(1), 503. 5 Patchimpet J, Simpson B K, Sangkharak K, et al. Renewable Energy, 2020, 153, 861. 6 Ameen M, Azizan M T, Yusup S, et al. Renewable and Sustainable Energy Reviews, 2017, 80, 1072. 7 Wang F, Jiang J, Wang K, et al. Applied Catalysis B:Environmental, 2019, 242, 150. 8 Wang J, Azam W. Geoscience Frontiers, 2024, 15(2), 101757. 9 Pattanaik B P, Misra R D. Renewable and Sustainable Energy Reviews, 2017, 73, 545. 10 Dey S, Reang N M, Das P K, et al. Journal of Cleaner Production, 2021, 286, 124981. 11 Veriansyah B, Han J Y, Kim S K, et al. Fuel, 2012, 94, 578. 12 Liu Z T, Mei J L, Wang C H, et al. Advances in Chemical Engineering, 2023(5), 1 (in Chinese). 刘振涛, 梅金林, 王春雅, 等. 化工进展, 2023(5), 1. 13 Gong S F, Gong J Y, Lei W Q, et al. China Oils and Fats, 2022, 47(8), 82 (in Chinese). 龚绍峰, 龚建议, 雷稳强, 等. 中国油脂, 2022, 47(8), 82. 14 Hongloi N, Prapainainar P, Prapainainar C. Molecular Catalysis, 2022, 523, 397. 15 Long F, Zhai Q, Liu P, et al. Renewable Energy, 2020, 157, 1072. 16 Wagenhofer M F, Baráth E, Gutiérrez O Y, et al. ACS Catalysis, 2017, 7(2), 1068, 4955. 17 Xing S, Liu Y, Liu X, et al. Applied Catalysis B:Environmental, 2020, 269, 4955. 18 Li T, Cheng J, Huang R, et al. International Journal of Hydrogen Energy, 2016, 41(47), 21883. 19 Li T, Cheng J, Huang R, et al. Bioresour Technology, 2015, 197, 289. 20 Kim M Y, Kim J-K, Lee M-E, et al. ACS Catalysis, 2017, 7(9), 6256. 21 Rabaev M, Landau M V, Vidruk-Nehemya R, et al. Fuel, 2015, 161, 287. 22 Lim J H K, Gan Y Y, Ong H C, et al. Renewable and Sustainable Energy Reviews, 2021, 149, 111396. 23 Lahijani P, Mohammadi M, Mohamed A R, et al. Energy Conversion and Management, 2022, 268, 615. 24 Cao S, Yang R, Shi L, et al. KSCE Journal of Civil Engineering, 2018, 23(2), 576. 25 Li R, Yan H, Dang Y, et al. Molecular Catalysis, 2019, 479, 110588. 26 Li F, Jiang J, Liu P, et al. Sustainable Energy & Fuels, 2018, 2(6), 1206. 27 Bosnar S, Rac V, Stošić D, et al. Microporous and Mesoporous Materials, 2022, 329, 461. 28 Jin S, Xiao Z, Li C, et al. Journal of Energy Chemistry, 2014, 23(2), 185. 29 Shen Z, Zhang G, Shi C, et al. Fuel, 2023, 334, 126317. 30 Restrepo-Garcia J R, Gomora-Herrera D, Torres-Mancera P, et al. Fuel, 2023, 351, 128890. 31 Li L, Quan K, Xu J, et al. Green Chemistry, 2013, 15(9), 790. 32 Yu S, Cao X, Li L, et al. Catalysis Letters, 2018, 148(12), 3787. 33 Zheng Z, Wang J, Wei Y, et al. Journal of Analytical and Applied Pyrolysis, 2019, 143, 104693. 34 Zeng Y, Wang Z, Lin W, et al. Chemical Engineering Journal, 2017, 320, 55. 35 Serrano D P, Escola J M, Briones L, et al. Microporous and Mesoporous Materials, 2019, 280, 88. 36 Lee S P, Ramli A. Chemistry Central Journal, 2013, 7(1), 149. 37 Zhang M, Chen Y, Wang L, et al. Industrial & Engineering Chemistry Research, 2016, 55(21), 6069. 38 Jiménez-Cruz F, Laredo G C. Fuel, 2004, 83(16), 2183. 39 Chen N, Gong S, Shirai H, et al. Applied Catalysis A:General, 2013, 466, 105. 40 Wang C, Tian Z, Wang L, et al. ChemSusChem, 2012, 5(10), 1974. 41 Chen Y, Li X, Liu S, et al. Industrial Crops and Products, 2020, 146. 42 Chen N, Ren Y, Qian E W. Journal of Catalysis, 2016, 334, 79. 43 Zhao X, Wei L, Cheng S, et al. Catalysts, 2017, 7(12), 377. 44 Kon K, Toyao T, Onodera W, et al. ChemCatChem, 2017, 9(14), 2822. 45 Ouyang Q, Yao J, Yang N, et al. Catalysis Communications, 2019, 120, 46. 46 Lian C X, Li N, Jiang Wu, et al. Advances in Chemical Engineering, 2020, 39(S1), 153(in Chinese). 练彩霞, 李凝, 蒋武, 等. 化工进展, 2020, 39(S1), 153. 47 Zhang C, Zhang Z, Hao C, et al. Catalysis Communications, 2021, 155, 106288. 48 Santos J L, Alda-Onggar M, Fedorov V, et al. Applied Catalysis A:Ge-neral, 2018, 561, 137. 49 Deng Q, Peng H, Yang Z, et al. Applied Catalysis B:Environmental, 2023, 337, 122982. 50 Xu X, Yang H, Tu R, et al. Applied Catalysis B:Environmental, 2024, 342, 123358. 51 Srifa A, Faungnawakij K, Itthibenchapong V, et al. Chemical Engineering Journal, 2015, 278, 249. 52 Hunsiri W, Chaihad N, Ngamcharussrivichai C, et al. Fuel Processing Technology, 2023, 248, 107825. 53 Suppino R S, Landers R, Cobo A J G. Applied Catalysis A:General, 2016, 525, 41. 54 Bokov D, Turki Jalil A, Chupradit S, et al. Advances in Materials Science and Engineering, 2021, 2021, 1. 55 Sakka S. Journal of Sol-Gel Science and Technology, 2021, 102(3), 478. 56 Li Y, Yang X, Zhu L, et al. RSC Advances, 2015, 5(98), 80388. 57 Megersa D D, Gudena G T, Kim Y, et al. Advanced Sustainable Systems, 2023, 7(11), 2300257. 58 Pant M, Singh R, Negi P, et al. Materials Today:Proceedings, 2021, 46, 11250. 59 Raimundo R A, Silva T R, Santos J R D, et al. MRS Communications, 2023, 13(2), 276. 60 Madsen A T, Ahmed E H, Christensen C H, et al. Fuel, 2011, 90(11), 3433. 61 Peng B, Yao Y, Zhao C, et al. Angew Chemie International Edition, 2012, 51(9), 2072. 62 Kubika D, Kaluža L. Applied Catalysis A:General, 2010, 372(2), 199. 63 Deliy I V, Vlasova E N, Nuzhdin A L, et al. RSC Advances, 2014, 4(5), 2242. 64 Coumans A E, Hensen E J M. Applied Catalysis B:Environmental, 2017, 201, 290. 65 Monnier J, Sulimma H, Dalai A, et al. Applied Catalysis A:General, 2010, 382(2), 176. 66 Xin H, Guo K, Li D, et al. Applied Catalysis B:Environmental, 2016, 187, 375. 67 Li S, Xia Y, Ou Y, et al. ACS Catalysis, 2024, 14(3), 1608. 68 Sharma S, Maurer F, Lott P, et al. ChemCatChem, 2024, 16(14), e202301655. 69 Batista R, Carrera A, Beretta A, et al. Catalysts, 2019, 9(6), 532. 70 Zhou J, Zhao J, Zhang J, et al. Chinese Journal of Catalysis, 2020, 41(7), 1048. 71 Zhou L, Lawal A. Catalysis Science & Technology, 2016, 6(5), 1442. 72 Jeong H, Shin M, Jeong B, et al. Journal of Industrial and Engineering Chemistry, 2020, 83, 189. 73 Gage S H, Engelhardt J, Menart M J, et al. ACS Omega, 2018, 3(7), 7681. |
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