| [1] |
Yang H, Hu Z, Wu F, Guo K, Gu F, et al. 2023. The use and recycling of agricultural plastic mulch in China: a review. |
| [2] |
Duquennoi C, Martinez J. 2022. European Union's policymaking on sustainable waste management and circularity in agroecosystems: the potential for innovative interactions between science and decision-making. |
| [3] |
Nazarloo NH, Zabihi O, Shirvanimoghaddam K, Ahmadi M, Zamani P, et al. 2024. Innovative ex-situ catalyst bed integration for LDPE plastic pyrolysis: a thermodynamically closed system approach. |
| [4] |
Fresneda-Cruz A, Murillo-Ciordia G, Figueirêdo MB, Tovar-Lasheras F, AL Farra A, et al. 2025. Microwave-assisted pyrolysis of waste LDPE: unveiling the role of induced gas-solid thermal gradients on pyrolysis oil product distribution. |
| [5] |
Horikoshi S, Catalá-Civera JM, Schiffmann RF, Fukushima J, Mitani T, et al. 2024. Microwave Chemical and Materials Processing. Singapore: Springer Nature Singapore. pp. 53−93 doi: 10.1007/978-981-97-5795-4_4 |
| [6] |
Alam SS, Khan AH. 2024. Microwave-assisted pyrolysis for waste plastic recycling: a review on critical parameters, benefits, challenges, and scalability perspectives. |
| [7] |
Putra PHM, Rozali S, Patah MFA, Idris A. 2022. A review of microwave pyrolysis as a sustainable plastic waste management technique. |
| [8] |
Li C, Zhang C, Gholizadeh M, Hu X. 2020. Different reaction behaviours of light or heavy density polyethylene during the pyrolysis with biochar as the catalyst. |
| [9] |
Jiang M, Su Y, Yang L, Qi P, Wang J, et al. 2024. Study on H3PO4-activated carbon catalytic co-pyrolysis of bamboo and LDPE to poly-generation syngas and aromatics at low temperature. |
| [10] |
Walid MS, Hossain GA, Mustafi NN. 2025. Enhanced production of aromatics-rich fuel oil from low-density polyethylene waste via pyrolysis with N-doped activated carbon catalyst. |
| [11] |
Feng D, Zhang Y, Zhao Y, Sun S, Wu J, et al. 2020. Mechanism of in-situ dynamic catalysis and selective deactivation of H2O-activated biochar for biomass tar reforming. |
| [12] |
Li B, Ng JH, Woon KS, Chong WWF, Ng KLA, et al. 2024. Comparative analysis of kinetic model-fitting methods and selection priority for horse manure pyrolysis. |
| [13] |
Mortezaeikia V, Tavakoli O, Khodaparasti MS. 2021. A review on kinetic study approach for pyrolysis of plastic wastes using thermogravimetric analysis. |
| [14] |
Li J, Xu K, Yao X, Liu J. 2024. Slow pyrolysis experimental investigation on the tar formation and its pyrolysis behavior characteristics. |
| [15] |
Xie W, Su J, Zhang X, Li T, Wang C, et al. 2023. Investigating kinetic behavior and reaction mechanism on autothermal pyrolysis of polyethylene plastic. |
| [16] |
Negi P, Dubey PK, Palodkar AV, Kumar S, Kumar A. 2023. Thermo-kinetics of chemical recycling of real-world waste plastics. |
| [17] |
Zhang Y, Fu Z, Wang W, Ji G, Zhao M, et al. 2022. Kinetics, product evolution, and mechanism for the pyrolysis of typical plastic waste. |
| [18] |
Flynn JH, Wall LA. 1966. A quick, direct method for the determination of activation energy from thermogravimetric data. |
| [19] |
Starink MJ. 1996. A new method for the derivation of activation energies from experiments performed at constant heating rate. |
| [20] |
Nasfi M, Carrier M, Salvador S. 2023. Kinetic modelling of biomass fast devolatilization using Py-MS: model-free and model-based approaches. |
| [21] |
Xu F, Wang B, Yang D, Hao J, Qiao Y, et al. 2018. Thermal degradation of typical plastics under high heating rate conditions by TG-FTIR: pyrolysis behaviors and kinetic analysis. |
| [22] |
Açıkalın K. 2021. Determination of kinetic triplet, thermal degradation behaviour and thermodynamic properties for pyrolysis of a lignocellulosic biomass. |
| [23] |
Lin L, Yang E, Sun Q, Chen Y, Dai W, et al. 2025. Analysis of the pyrolysis kinetics, reaction mechanisms, and by-products of rice husk and rice straw via TG-FTIR and py-GC/MS. |
| [24] |
Li G, Wang S, Ren D, Pan Y, Zheng Y, et al. 2025. Uncovering strategies for quantifying thermo-kinetics, reaction heat, and synergistic rates of heat transfer-degradation in the chemical upcycling of polyolefins. |
| [25] |
Singh RK, Ruj B, Sadhukhan AK, Gupta P. 2019. Impact of fast and slow pyrolysis on the degradation of mixed plastic waste: product yield analysis and their characterization. |
| [26] |
Silva J, Teixeira S, Teixeira J. 2023. A review of biomass thermal analysis, kinetics and product distribution for combustion modeling: from the micro to macro perspective. |
| [27] |
Li D, Lei S, Wang P, Zhong L, Ma W, et al. 2021. Study on the pyrolysis behaviors of mixed waste plastics. |
| [28] |
Chen R, Zhang S, Yang X, Li G, Zhou H, et al. 2021. Thermal behaviour and kinetic study of co-pyrolysis of microalgae with different plastics. |
| [29] |
Rebrov E, Panjabi R, Mong GR, Foo CY, Lee CH, et al. 2025. Reaction kinetics and product distributions in thermal and catalytic pyrolysis of agricultural mulch films over HZSM-5 zeolite. |
| [30] |
Berčič G, Djinović P, Pintar A. 2019. Simplified approach to modelling the catalytic degradation of low-density polyethylene (LDPE) by applying catalyst-free LDPE-TG profiles and the Friedman method. |
| [31] |
Aboulkas A, El harfi K, El Bouadili A. 2010. Thermal degradation behaviors of polyethylene and polypropylene. Part I: Pyrolysis kinetics and mechanisms. |
| [32] |
Chen Q, Zhou Y, Zhang C, Dong Z, Wang N, et al. 2024. Pyrolysis kinetic analysis of molten bioplastics based on the combination of real-time characterization and Guassian deconvolution: case study of poly(lactic acid) materials. |
| [33] |
Yao D, Li H, Dai Y, Wang CH. 2021. Impact of temperature on the activity of Fe-Ni catalysts for pyrolysis and decomposition processing of plastic waste. |
| [34] |
Almeida D, de Fátima Marques M. 2016. Thermal and catalytic pyrolysis of plastic waste. |
| [35] |
Sun K, Huang Q, Ali M, Chi Y, Yan J. 2018. Producing aromatic-enriched oil from mixed plastics using activated biochar as catalyst. |
| [36] |
Jia X, Liu Z, Li J, Yan B, Wang Z, et al. 2025. Characteristics of tar formation during integrated process of biomass anaerobic digestion and gasification. |
| [37] |
Li M, Li Y, He B, Han L, Yan R, et al. 2025. Deactivation mechanisms of Nb2O5 catalyst for esterification of dimethyl adipate: crystal transformation and acid site coking. |
| [38] |
Barbarias I, Lopez G, Amutio M, Artetxe M, Alvarez J, et al. 2016. Steam reforming of plastic pyrolysis model hydrocarbons and catalyst deactivation. |
| [39] |
Xu T, Xu F, Hu Z, Chen Z, Xiao B. 2017. Non-isothermal kinetics of biomass-pyrolysis-derived-tar (BPDT) thermal decomposition via thermogravimetric analysis. |
| [40] |
Baquero MC, Giraldo L, Moreno JC, Suárez-Garcı́a F, Martı́nez-Alonso A, et al. 2003. Activated carbons by pyrolysis of coffee bean husks in presence of phosphoric acid. |
| [41] |
Sui H, Chen Y, Chen H, Zhao Y, Tian C, et al. 2025. Characterization and mechanistic insights into coke formation on biochar-based catalysts under microwave-assisted biomass pyrolysis. |
| [42] |
Kostyniuk A, Bajec D, Likozar B. 2021. Catalytic hydrogenation, hydrocracking and isomerization reactions of biomass tar model compound mixture over Ni-modified zeolite catalysts in packed bed reactor. |
| [43] |
Li X, Yan L, Men X, Wang M, Kong J, et al. 2024. Effect of metal-acid synergistic effect of modified HZSM-5 zeolites on the catalytic upgrading of gaseous tar to produce light aromatics. |