1 |
WALKER Tony R, XANTHOS Dirk. A call for Canada to move toward zero plastic waste by reducing and recycling single-use plastics[J]. Resources, Conservation and Recycling, 2018, 133: 99-100.
|
2 |
HARUSSANI M M, SAPUAN S M, RASHID Umer, et al. Pyrolysis of polypropylene plastic waste into carbonaceous char: Priority of plastic waste management amidst COVID-19 pandemic[J]. Science of the Total Environment, 2022, 803: 149911.
|
3 |
CANOPOLI Luisa, COULON Frédéric, WAGLAND Stuart T. Degradation of excavated polyethylene and polypropylene waste from landfill[J]. The Science of the Total Environment, 2020, 698: 134125.
|
4 |
GENG Xiaomeng, SONG Nan, ZHAO Youcai, et al. Waste plastic resource recovery from landfilled refuse: A novel waterless cleaning method and its cost-benefit analysis[J]. Journal of Environmental Management, 2022, 306: 114462.
|
5 |
HAHLADAKIS John N, IACOVIDOU Eleni. Closing the loop on plastic packaging materials: What is quality and how does it affect their circularity? [J]. The Science of the Total Environment, 2018, 630: 1394-1400.
|
6 |
KLAIMY S, LAMONIER J F, CASETTA M, et al. Recycling of plastic waste using flash pyrolysis—Effect of mixture composition[J]. Polymer Degradation and Stability, 2021, 187: 109540.
|
7 |
ZHAO Xianhui, KOREY Matthew, LI Kai, et al. Plastic waste upcycling toward a circular economy[J]. Chemical Engineering Journal, 2022, 428: 131928.
|
8 |
AHMAD Nauman, AHMAD Nabeel, MAAFA Ibrahim M, et al. Thermal conversion of polystyrene plastic waste to liquid fuel via ethanolysis[J]. Fuel, 2020, 279: 118498.
|
9 |
MEYS Raoul, FRICK Felicitas, WESTHUES Stefan, et al. Towards a circular economy for plastic packaging wastes-the environmental potential of chemical recycling[J]. Resources, Conservation and Recycling, 2020, 162: 105010.
|
10 |
ZHOU Nan, DAI Leilei, LV Yuancai, et al. Catalytic pyrolysis of plastic wastes in a continuous microwave assisted pyrolysis system for fuel production[J]. Chemical Engineering Journal, 2021, 418: 129412.
|
11 |
LÓPEZ A, DE MARCO I, CABALLERO B M, et al. Influence of time and temperature on pyrolysis of plastic wastes in a semi-batch reactor[J]. Chemical Engineering Journal, 2011, 173(1): 62-71.
|
12 |
CELIK Gokhan, KENNEDY Robert M, HACKLER Ryan A, et al. Upcycling single-use polyethylene into high-quality liquid products[J]. ACS Central Science, 2019, 5(11): 1795-1803.
|
13 |
TENNAKOON Akalanka, WU Xun, PATERSON Alexander L, et al. Catalytic upcycling of high-density polyethylene via a processive mechanism[J]. Nature Catalysis, 2020, 3(11): 893-901.
|
14 |
JACOBY Mitch. Converting polyethylene to valuable alkanes[J]. C&EN Global Enterprise, 2020, 98(40): 9.
|
15 |
JIN Kai, VOZKA Petr, KILAZ Gozdem, et al. Conversion of polyethylene waste into clean fuels and waxes via hydrothermal processing (HTP)[J]. Fuel, 2020, 273: 117726.
|
16 |
GUIRONNET Damien, PETERS Baron. Tandem catalysts for polyethylene upcycling: A simple kinetic model[J]. The Journal of Physical Chemistry A, 2020, 124(19): 3935-3942.
|
17 |
JEON Wonjin, KIM Young-Doo, LEE Kyong-Hwan. A comparative study on pyrolysis of bundle and fluffy shapes of waste packaging plastics[J]. Fuel, 2021, 283: 119260.
|
18 |
WANG Chenxi, LEI Hanwu, KONG Xiao, et al. Catalytic upcycling of waste plastics over nanocellulose derived biochar catalyst for the coupling harvest of hydrogen and liquid fuels[J]. Science of the Total Environment, 2021, 779: 146463.
|
19 |
FAN Liangliang, ZHANG Yaning, LIU Shiyu, et al. Ex-situ catalytic upgrading of vapors from microwave-assisted pyrolysis of low-density polyethylene with MgO[J]. Energy Conversion and Management, 2017, 149: 432-441.
|
20 |
PAN Zeyou, XUE Xiangfei, ZHANG Changsen, et al. Evaluation of process parameters on high-density polyethylene hydro-liquefaction products[J]. Journal of Analytical and Applied Pyrolysis, 2018, 136: 146-152.
|
21 |
ALSALEM Smith, LETTIERI Peter, BAEYENS Jane. The thermal pyrolysis of high density polyethylene (HDPE)[J]. Process Safety and Environmental Protection, 2019, 127: 171-179.
|
22 |
PALOS Roberto, Alazne GUTIÉRREZ, VELA Francisco J, et al. Assessing the potential of the recycled plastic slow pyrolysis for the production of streams attractive for refineries[J]. Journal of Analytical and Applied Pyrolysis, 2019, 142: 104668.
|
23 |
Pallab DAS, TIWARI Pankaj. Valorization of packaging plastic waste by slow pyrolysis[J]. Resources, Conservation and Recycling, 2018, 128: 69-77.
|
24 |
PARKU George Kofi, COLLARD François-Xavier, GÖRGENS Johann F. Pyrolysis of waste polypropylene plastics for energy recovery: Influence of heating rate and vacuum conditions on composition of fuel product[J]. Fuel Processing Technology, 2020, 209: 106522.
|
25 |
WU Yunfei, WANG Kechao, WEI Baoyong, et al. Pyrolysis behavior of low-density polyethylene over HZSM-5 via rapid infrared heating[J]. Science of the Total Environment, 2022, 806: 151287.
|
26 |
SURIAPPARAO Dadi V, VINU R, SHUKLA Arun, et al. Effective deoxygenation for the production of liquid biofuels via microwave assisted co-pyrolysis of agro residues and waste plastics combined with catalytic upgradation[J]. Bioresource Technology, 2020, 302: 122775.
|
27 |
MANGESH V L, TAMIZHDURAI P, Santhana KRISHNAN P, et al. Green energy: Hydroprocessing waste polypropylene to produce transport fuel[J]. Journal of Cleaner Production, 2020, 276: 124200.
|
28 |
MUNIR Dureem, ABDULLAH, PIEPENBREIER Frank, et al. Hydrocracking of a plastic mixture over various micro-mesoporous composite zeolites[J]. Powder Technology, 2017, 316: 542-550.
|
29 |
ZHANG Fan, ZENG Manhao, YAPPERT Ryan D, et al. Polyethylene upcycling to long-chain alkylaromatics by tandem hydrogenolysis/aromatization[J]. Science, 2020, 370(6515): 437-441.
|
30 |
VOLLMER Ina, JENKS Michael J F, MAYORGA GONZÁLEZ Rafael, et al. Plastic waste conversion over a refinery waste catalyst[J]. Angewandte Chemie International Edition, 2021, 60(29): 16101-16108.
|
31 |
AKUBO Kaltume, NAHIL Mohamad Anas, WILLIAMS Paul T. Aromatic fuel oils produced from the pyrolysis-catalysis of polyethylene plastic with metal-impregnated zeolite catalysts[J]. Journal of the Energy Institute, 2019, 92(1): 195-202.
|
32 |
KIM Young-Min, Jungho JAE, KIM Beom-Sik, et al. Catalytic co-pyrolysis of torrefied yellow poplar and high-density polyethylene using microporous HZSM-5 and mesoporous Al-MCM-41 catalysts[J]. Energy Conversion and Management, 2017, 149: 966-973.
|
33 |
KIM Hee Taek, KIM Jae Kyun, Hyun Gil CHA, et al. Biological valorization of poly(ethylene terephthalate) monomers for upcycling waste PET[J]. ACS Sustainable Chemistry & Engineering, 2019, 7(24): 19396-19406.
|
34 |
ZENG Manhao, LEE Yu Hsuan, STRONG Garrett, et al. Chemical upcycling of polyethylene to value-added α, ω-divinyl-functionalized oligomers[J]. ACS Sustainable Chemistry & Engineering, 2021, 9(41): 13926-13936.
|
35 |
ZHOU Hua, REN Yue, LI Zhenhua, et al. Electrocatalytic upcycling of polyethylene terephthalate to commodity chemicals and H2 fuel[J]. Nature Communications, 2021, 12(1): 4679.
|
36 |
VIEIRA Octávia, RIBEIRO Rui S, DIAZ DE TUESTA Jose L, et al. A systematic literature review on the conversion of plastic wastes into valuable 2D graphene-based materials[J]. Chemical Engineering Journal, 2022, 428: 131399.
|
37 |
YUAN Xiangzhou, LEE Jong Gyu, YUN Heesun, et al. Solving two environmental issues simultaneously: Waste polyethylene terephthalate plastic bottle-derived microporous carbons for capturing CO2 [J]. Chemical Engineering Journal, 2020, 397: 125350.
|
38 |
BAZARGAN Alireza, MCKAY Gordon. A review—Synthesis of carbon nanotubes from plastic wastes[J]. Chemical Engineering Journal, 2012, 195/196: 377-391.
|
39 |
GONG Jiang, LIU Jie, WEN Xin, et al. Upcycling waste polypropylene into graphene flakes on organically modified montmorillonite[J]. Industrial & Engineering Chemistry Research, 2014, 53(11): 4173-4181.
|
40 |
PANAHI Aidin, SUN Xiao, SONG Guangchao, et al. On the influences of carrier gas type and flow rate on CVD synthesis of CNTs from postconsumer polyethylene[J]. Industrial & Engineering Chemistry Research, 2020, 59(31): 14004-14014.
|
41 |
YUAN Xiangzhou, CHO Moon-Kyung, LEE Jong Gyu, et al. Upcycling of waste polyethylene terephthalate plastic bottles into porous carbon for CF4 adsorption[J]. Environmental Pollution, 2020, 265: 114868.
|
42 |
SOGANCIOGLU Merve, Esra YEL, AHMETLI Gulnare. Pyrolysis of waste high density polyethylene (HDPE) and low density polyethylene (LDPE) plastics and production of epoxy composites with their pyrolysis chars[J]. Journal of Cleaner Production, 2017, 165: 369-381.
|
43 |
SOGANCIOGLU Merve, Esra YEL, AHMETLI Gulnare. Behaviour of waste polypropylene pyrolysis char-based epoxy composite materials[J]. Environmental Science and Pollution Research, 2020, 27(4): 3871-3884.
|
44 |
CHAUDHARY Savita, KUMARI Manisha, CHAUHAN Pooja, et al. Upcycling of plastic waste into fluorescent carbon dots: An environmentally viable transformation to biocompatible C-dots with potential prospective in analytical applications[J]. Waste Management, 2021, 120: 675-686.
|
45 |
ELESSAWY Noha A, EL-SAYED Eman M, Safaa ALI, et al. One-pot green synthesis of magnetic fullerene nanocomposite for adsorption characteristics[J]. Journal of Water Process Engineering, 2020, 34: 101047.
|
46 |
CHAO Yuwen, LIU Bingguo, RONG Qian, et al. Porous carbon materials derived from discarded COVID-19 masks via microwave solvothermal method for lithium‑sulfur batteries[J]. Science of the Total Environment, 2022, 817: 152995.
|
47 |
KANBUR Uddhav, ZANG Guiyan, PATERSON Alexander L, et al. Catalytic carbon-carbon bond cleavage and carbon-element bond formation give new life for polyolefins as biodegradable surfactants[J]. Chem, 2021, 7(5): 1347-1362.
|
48 |
CAI Weizi, LIU Peipei, CHEN Bin, et al. Plastic waste fuelled solid oxide fuel cell system for power and carbon nanotube cogeneration[J]. International Journal of Hydrogen Energy, 2019, 44(3): 1867-1876.
|
49 |
ZHANG Fan, WANG Fang, WEI Xiangyue, et al. From trash to treasure: Chemical recycling and upcycling of commodity plastic waste to fuels, high-valued chemicals and advanced materials[J]. Journal of Energy Chemistry, 2022, 69: 369-388.
|