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Volume 44 Issue 3
Mar.  2026
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CAO Runzi, WANG Jian, ZHANG Yuanhao, LI Yang. Recent progress in photothermal catalytic upcycling of waste plastics[J]. ENVIRONMENTAL ENGINEERING , 2026, 44(3): 136-145. doi: 10.13205/j.hjgc.202603012
Citation: CAO Runzi, WANG Jian, ZHANG Yuanhao, LI Yang. Recent progress in photothermal catalytic upcycling of waste plastics[J]. ENVIRONMENTAL ENGINEERING , 2026, 44(3): 136-145. doi: 10.13205/j.hjgc.202603012

Recent progress in photothermal catalytic upcycling of waste plastics

doi: 10.13205/j.hjgc.202603012
  • Received Date: 2026-01-31
    Available Online: 2026-04-11
  • Publish Date: 2026-03-01
  • As global plastic production continues to rise, the quantity of plastic waste has also increased dramatically. Effectively addressing plastic pollution while achieving the resource recovery and recycling of plastic waste has become a global challenge. Compared with conventional recycling methods, the photothermal catalysis process, which integrates photocatalysis and thermocatalysis, offers significant advantages such as high conversion efficiency and mild reaction conditions. Herein, this review outlines the research progress of photothermal catalysis technology in the treatment and resource recovery of plastic waste. It first elaborates on the mechanism of photothermal conversion, including plasmonic localized heating, non-radiative relaxation of semiconductors, and molecular thermal vibration. Based on the roles of light and heat in photothermal catalytic reactions, photothermal catalysis is classified into three categories: thermal-assisted photocatalysis, photo-driven thermocatalysis, and photo-thermal co-catalysis. The type of catalytic material plays a crucial role in regulating catalytic performance during the photothermal catalytic conversion of plastics. This review summarizes the catalytic properties of three typical photothermal catalytic materials: plasmonic metal nanoparticles, metal oxide semiconductors, and carbon-based materials, providing material design directions for efficient plastic upcycling. Furthermore, starting with the upcycling mechanisms of two representative plastics, polyethylene and polyester, the review summarizes the reaction pathways for plastic upcycling to produce liquid fuels and organic acids. Finally, based on the current research status, this review also highlights the technical challenges of using photothermal catalysis for plastic upcycling. This review aims to provide technical support for the chemical recycling of plastic waste and offer new perspectives for its upcycling.
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  • [1]
    GEYER R,JAMBECK J R,LAW K L. Production,use,and fate of all plastics ever made[J]. Science Advance,2017,3:e1700782.
    [2]
    LUO Y Y,LIN X,LICHTFOUSE E,et al. Conversion of waste plastics into value-added carbon materials[J]. Environmental Chemistry Letters,2023,21(6):3127-3158.
    [3]
    SARDON H,DOVE A P. Plastics recycling with a difference[J]. Science,2018,360(6387):380-381.
    [4]
    PlasticsEurope. Plastics-the fast facts 2024[R]. Brussels:Plastics Europe,2024.
    [5]
    DE SOUZA MACHADO A A,LAU C W,KLOAS W,et al. Microplastics can change soil properties and affect plant performance[J]. Environmental Science& Technology,2019,53(10):6044-6052.
    [6]
    MA H,PU S Y,LIU S B,et al. Microplastics in aquatic environments:toxicity to trigger ecological consequences[J]. Environmental Pollution,2020,261:114089.
    [7]
    GUO J J,HUANG X P,XIANG L,et al. Source,migration and toxicology of microplastics in soil[J]. Environment International,2020,137:105263.
    [8]
    BURSIAN S J,KERN J,REMINGTON R E,et al. Use of polychlorinated biphenyl and toxic equivalent concentrations in scat from mink(Neovison vison)fed fish from the upper Hudson River to predict dietary and hepatic concentrations and health effects[J]. Environmental Toxicology and Chemistry,2018,37(2):563-575.
    [9]
    SUBRAMANIAN S,SCHNOOR J L,VAN AKEN B. Effects of polychlorinated biphenyls(PCBs)and their hydroxylated metabolites(OH-PCBs)on Arabidopsis thaliana[J]. Environmental Science& Technology,2017,51(12):7263-7270.
    [10]
    YAO M Y,HU T T,WANG Y F,et al. Polychlorinated biphenyls and its potential role in endometriosis[J]. Environmental Pollution,2017,229:837-845.
    [11]
    SALL M L,DIAW A K D,GNINGUE-SALL D,et al. Toxic heavy metals:impact on the environment and human health,and treatment with conducting organic polymers,a review[J]. Environmental Science and Pollution Research,2020,27:29927-29942.
    [12]
    GARCIA J M,Catalyst:design challenges for the future of plastics recycling[J]. Chem,2016,1(6):813-815.
    [13]
    CHU M Y,TU W L,ZHANG Q,et al. Co-recycling of plastics and other waste materials[J]. Nature Reviews Clean Technology,2025,1(1):15-27.
    [14]
    LIU J M,OUYANG X E,ZHANG Y T,et al. Research progress on chemical depolymerization and upcycling of waste PET plastics[J]. Chinese Science Bulletin,2025,70(18):2878-2891. 刘佳铭,欧阳雪儿,张译天,等. 废PET塑料化学解聚和升级再造的研究进展[J]. 科学通报,2025,70(18):2878-2891.
    [15]
    YANG S Q,LI Y J,NIE M,et al. Lifecycle management for sustainable plastics:recent progress from synthesis,processing to upcycling[J]. Advanced Materials,2024,36(33):2404115.
    [16]
    LI J Z,CHEN J L,ZHANG Y B,et al. Bridging green chemistry and circular economy:a pathway to sustainable polyester plastics through feedstock,synthesis,and waste upcycling[J]. Advanced Science,2025,12(15):e21680.
    [17]
    VLASOPOULOS A,MALINAUSKAITE J,ŻABNIEŃSKA-GóRA A,et al. Life cycle assessment of plastic waste and energy recovery[J]. Energy,2023,277:127576.
    [18]
    KWON S,KANG J,LEE B,et al. Nonviable carbon neutrality with plastic waste-to-energy[J]. Energy& Environmental Science,2023,16(7):3074-3087.
    [19]
    ZHENG K,WU Y,HU Z X,et al. Progress and perspective for conversion of plastic wastes into valuable chemicals[J]. Chemical Society Reviews,2023,52(1):8-29.
    [20]
    WRASMAN C J,WILSON A N,MANTE O D,et al. Catalytic pyrolysis as a platform technology for supporting the circular carbon economy[J]. Nature Catalysis,2023,6(7):563-573.
    [21]
    KUMAR S,SINGH E,MISHRA R,et al. Utilization of plastic wastes for sustainable environmental management:a review[J]. Chem Sus Chem,2021,14(19):3985-4006.
    [22]
    LI N,LIU H X,CHENG Z J,et al. Conversion of plastic waste into fuels:A critical review[J]. Journal of Hazardous Materials,2022,424:127460.
    [23]
    CHU S,ZHANG B W,ZHAO X,et al. Photocatalytic conversion of plastic waste:from photodegradation to photosynthesis[J]. Advanced Energy Materials,2022,12(22):2200435.
    [24]
    MENG K,CAO J P,ZHANG Y J,et al. Current technologies and challenges in waste plastic recycling[J]. China Plastics,2025,39(11):118-124. 孟坤,曹金鹏,张彦君,等. 废塑料回收当前技术和面临的挑战[J]. 中国塑料,2025,39(11):118-124.
    [25]
    MENG X G,LIU L Q,YANG S X OU,et al. Nanometals for solar-to-chemical energy conversion:from semiconductor-based photocatalysis to plasmon-mediated photocatalysis and photo-thermocatalysis[J]. Advanced Materials,2016,28(32):6781-6803.
    [26]
    ZHANG J Q,CHEN H J,DUAN X G,et al. Photothermal catalysis:From fundamentals to practical applications[J]. Materials Today,2023,68:234-253.
    [27]
    WANG J H,LI P H,LIU C,et al. Recent advances in photothermal catalysis:coupling hydrogen evolution and organic conversion[J]. International Journal of Hydrogen Energy,2024,67:658-680.
    [28]
    SONG C Q,WANG Z H,YIN Z,et al. Principles and applications of photothermal catalysis[J]. Chem Catalysis,2022,2(1):52-83.
    [29]
    LINIC S,ASLAM U,BOERIGTER C,et al. Photochemical transformations on plasmonic metal nanoparticles[J]. Nature materials,2015,14(6):567-576.
    [30]
    BISOYI H K,URBAS A M,LI Q,Soft materials driven by photothermal effect and their applications[J]. Photoactive functional soft materials:preparation,properties,and applications,2019:1-44.
    [31]
    XING C W,CAI H T,KANG D X,et al. Photothermal catalysis:an emerging green approach to upcycling plastic waste[J]. Advanced Energy and Sustainability Research,2023,4(10):2300015.
    [32]
    XU M,HU X T,WANG S L,et al. Photothermal effect promoting CO2 conversion over composite photocatalyst with high graphene content[J]. Journal of Catalysis,2019,377:652-661.
    [33]
    HOCH L B,WOOD T E,O'BRIEN P G,et al. The rational design of a single-component photocatalyst for gas-phase CO2 reduction using both UV and visible light[J]. Advanced Science,2014,1(1):1400013.
    [34]
    CAO R C,ZHANG M Q,HU C Q,et al. Catalytic oxidation of polystyrene to aromatic oxygenates over a graphitic carbon nitride catalyst[J]. Nature Communications,2022,13(1):4809.
    [35]
    WANG K L,HAO Y,CHENG C,et al.,Photothermal oxidative upcycling of polyethylene to aliphatic dicarboxylic acids over a Pt/TiO2 catalyst[J]. ACS Catalysis,2026,16(3):1929-1935.
    [36]
    ZHANG H B,WANG T,WANG J J,et al. Surface-plasmon-enhanced photodriven CO2 reduction catalyzed by metal-organic-framework-derived iron nanoparticles encapsulated by ultrathin carbon layers[J]. Advanced Materials,2016,28(19):3703-3710.
    [37]
    LIU Y,ZHONG Q X,XU P P,et al. Solar thermal catalysis for sustainable and efficient polyester upcycling[J]. Matter,2022,5(4):1305-1317.
    [38]
    LUO H,YAO D D,ZENG K,et al. Solar pyrolysis of waste plastics with photothermal catalysts for high-value products[J]. Fuel Processing Technology,2022,230:107205.
    [39]
    MIAO Y X,ZHAO Y X,WATERHOUSE G I,et al. Photothermal recycling of waste polyolefin plastics into liquid fuels with high selectivity under solvent-free conditions[J]. Nature Communications,2023,14(1):4242.
    [40]
    YANG H P,YAN S,YAO D D,et al. Photo-thermal catalytic pyrolysis of waste plastics:Investigation into light-induced metal-support interaction[J]. Fuel,2023,333:126496.
    [41]
    FIRESTONE G,HUANG H L,BOCHINSKI J R,et al. Photothermally-driven thermo-oxidative degradation of low density polyethylene:heterogeneous heating plus a complex reaction leads to homogeneous chemistry[J]. Nanotechnology,2019,30(47):475706.
    [42]
    CHU M Y,YAN P L,ZHOU Y X,et al. Plasmonic Copper-Ruthenium Superstructure for Efficient Photothermal Conversion and Plastic Recycling[J]. Advanced Functional Materials,2025,35(12):2417644.
    [43]
    JIANG D,YUAN H F,LIU Z,et al. Defect-anchored single-atom-layer Pt clusters on TiO2- x/Ti for efficient hydrogen evolution via photothermal reforming plastics[J]. Applied Catalysis B:Environmental,2023,339:v123081.
    [44]
    LIU Y,ZHANG C Y,FENG J,et al. Integrated photochromic-photothermal processes for catalytic plastic upcycling[J]. Angewandte Chemie,2023,135(38):e202308930.
    [45]
    KUGELMASS L H,TAGNON C,STACHE E E,Photothermal Mediated Chemical Recycling to Monomers via Carbon Quantum Dots[J]. Journal of the American Chemical Society,2023,145(29):16090-16097.
    [46]
    OH S,JIANG H N,KUGELMASS L H,et al. Recycling of post-consumer waste polystyrene using commercial plastic additives[J]. ACS Central Science,2024,11(1):57-65.
    [47]
    SUN J K,DONG J H,GAO L J,et al. Catalytic upcycling of polyolefins[J]. Chemical Reviews,2024,124(16):9457-9579.
    [48]
    ZHANG Y X,YANG D,LI X,et al. Advances in sustainable polyolefins:synthesis,chemical transformation and recycling[J]. National Science Review,2025,12(12):nwaf489.
    [49]
    DONG Z W,CHEN W J,XU K Q,et al. Understanding the structure-activity relationships in catalytic conversion of polyolefin plastics by zeolite-based catalysts:a critical review[J]. ACS Catalysis,2022,12(24):14882-14901.
    [50]
    CEN Z Y,HAN X,LIN L F,et al. Upcycling of polyethylene to gasoline through a self-supplied hydrogen strategy in a layered self-pillared zeolite[J]. Nature Chemistry,2024,16(6):871-880.
    [51]
    XING C W,MAO C L,WANG S H,et al. Ambient solar thermal catalysis for polyolefin upcycling using copper encapsulated in silicon nanosheets and chloroaluminate ionic liquid[J]. Nature Catalysis,2025,8(6):556-568.
    [52]
    DU J J,ZENG L,YAN T,et al. Efficient solvent-and hydrogen-free upcycling of high-density polyethylene into separable cyclic hydrocarbons[J]. Nature Nanotechnology,2023,18(7):772-779.
    [53]
    FANG T X,JIANG W P,ZHENG T F,et al. Catalyst-and solvent-free upcycling of poly(ethylene terephthalate)waste to biodegradable plastics[J]. Advanced Materials,2024,36(46):2403728.
    [54]
    HE C,GUO Z B,WANG Z J,et al. Reactant-modulated catalytic alcoholysis of polylactic acid from real-life biodegradable plastic waste[J]. Chinese Journal of Catalysis,2025,78:192-201.
    [55]
    CAO J J,LIANG H X,CHEN W,et al. Catalytic depolymerization of polyester waste via zinc oxide-decorated silica[J]. Advanced Science,2026,13(5):e14922.
    [56]
    LIU Y,WANG X C,LI Q Y,et al. Photothermal catalytic polyester upcycling over cobalt single-site catalyst[J]. Advanced Functional Materials,2023,33(2):2210283.
    [57]
    LIANG X X,TANG Y,CUI Y Q,et al. Photothermal reforming of polylactic acid plastics into pyruvic acid with 92.8% selectivity at S-scheme Ov-BiVO4/CdS heterostructures[J]. Chem Catalysis,2025,5(11):101490.
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