[1]

Zhang Z, Chen Y, Ma T, Tian H, Liu J, et al. 2025. Multi-type energy storage expansion planning: a review for high-penetration renewable energy integration. Renewable and Sustainable Energy Reviews 219:115853

doi: 10.1016/j.rser.2025.115853
[2]

Zhang Y, Fan L, Liu S, Zhou N, Ding K, et al. 2018. Microwave-assisted co-pyrolysis of brown coal and corn stover for oil production. Bioresource Technology 259:461−464

doi: 10.1016/j.biortech.2018.03.078
[3]

Shen B, Hove A, Hu J, Dupuy M, Bregnbæk L, et al. 2024. Coping with power crises under decarbonization: the case of China. Renewable and Sustainable Energy Reviews 193:114294

doi: 10.1016/j.rser.2024.114294
[4]

Mirkin CA, Sargent EH, Schrag DP. 2024. Energy transition needs new materials. Science 384:713

doi: 10.1126/science.adq3799
[5]

Zhang X, Cao T, Zhang G, Liu Q, Kong G, et al. 2024. Sustainable hydrothermal carbon for advanced electrochemical energy storage. Journal of Materials Chemistry A 12:4996−5039

doi: 10.1039/D3TA07372F
[6]

Liao Q, Wan S, Liu Y, Niu X, Zhang D, et al. 2025. Hemp-derived hierarchically porous carbon cathode enabling high energy storage for advanced zinc-ion hybrid capacitor. Journal of Energy Storage 115:115975

doi: 10.1016/j.est.2025.115975
[7]

Wei F, Zeng Y, Guo Y, Li J, Zhu S, et al. 2023. Recent progress on the heteroatom-doped carbon cathode for zinc ion hybrid capacitors. Chemical Engineering Journal 468:143576

doi: 10.1016/j.cej.2023.143576
[8]

Liang Y, Yao Y. 2023. Designing modern aqueous batteries. Nature Reviews Materials 8:109−122

doi: 10.1038/s41578-022-00511-3
[9]

Li J, Ge K, Grammenos AO, Taberna PL, Simon P, et al. 2025. Understanding multi-stage charge storage on nanoporous carbons in Zn-ion hybrid capacitors. Advanced Materials 37:2502422

doi: 10.1002/adma.202502422
[10]

Yang G, Zhang Q, He C, Gong Z, Liu Z, et al. 2025. Bionic hollow porous carbon nanofibers for energy-dense and rapid zinc ion storage. Angewandte Chemie International Edition 64:e202421230

doi: 10.1002/anie.202421230
[11]

Hou Y, Li X, Zhang X, Sun M, Li M, et al. 2024. Pyrrolic-N-B bonds mediated local charge distribution for boosting the capacitance of aqueous zinc-ion hybrid supercapacitors. Materials Today Sustainability 26:100785

doi: 10.1016/j.mtsust.2024.100785
[12]

Sun R, Xia P, Guo X, Dong S, Xu F, et al. 2024. Ternary Zn3V3O8 superstructure and synergistic modification of separator promote high performance and stable zinc ion battery. Chemical Engineering Journal 486:150377

doi: 10.1016/j.cej.2024.150377
[13]

Hao J, Zhang S, Wu H, Yuan L, Davey K, et al. 2024. Advanced cathodes for aqueous Zn batteries beyond Zn2+ intercalation. Chemical Society Reviews 53:4312−4332

doi: 10.1039/D3CS00771E
[14]

Jin J, Geng X, Chen Q, Ren TL. 2022. A better Zn-ion storage device: recent progress for Zn-ion hybrid supercapacitors. Nano-Micro Letters 14:64

doi: 10.1007/s40820-022-00793-w
[15]

Lu Y, Li Z, Bai Z, Mi H, Ji C, et al. 2019. High energy-power Zn-ion hybrid supercapacitors enabled by layered B/N co-doped carbon cathode. Nano Energy 66:104132

doi: 10.1016/j.nanoen.2019.104132
[16]

Xu Z, Sun Z, Shan J, Jin S, Cui J, et al. 2024. O, N-codoped, self-activated, holey carbon sheets for low-cost and high-loading zinc-ion supercapacitors. Advanced Functional Materials 34:2302818

doi: 10.1002/adfm.202302818
[17]

Wang H, Chen X, Zhang J, Yuan Z, Ye P, et al. 2022. Unveiling the cooperative roles of pyrrolic-N and carboxyl groups in biomass-derived hierarchical porous carbon nanosheets for high energy-power Zn-ion hybrid supercapacitors. Applied Surface Science 598:153819

doi: 10.1016/j.apsusc.2022.153819
[18]

Liu X, Tong Y, Wu Y, Zheng J, Sun Y, et al. 2022. Synergistically enhanced electrochemical performance using nitrogen, phosphorus and sulfur tri-doped hollow carbon for advanced potassium ion storage device. Chemical Engineering Journal 431:133986

doi: 10.1016/j.cej.2021.133986
[19]

Tong Y, Wu Y, Liu Z, Yin Y, Sun Y, et al. 2023. Fabricating multi-porous carbon anode with remarkable initial coulombic efficiency and enhanced rate capability for sodium-ion batteries. Chinese Chemical Letters 34:107443

doi: 10.1016/j.cclet.2022.04.041
[20]

Liu X, Yu X, Tong Y, Sun Y, Mai W, et al. 2022. Potassium storage in bismuth nanoparticles embedded in N-doped porous carbon facilitated by ether-based electrolyte. Chemical Engineering Journal 446:137329

doi: 10.1016/j.cej.2022.137329
[21]

Qiu T, Xie K, Liu C, Ahmad F, Zhao W, et al. 2025. Microwave-assisted pyrolysis for advanced sustainable carbon materials. Sustainable Carbon Materials 1:e011

doi: 10.48130/scm-0025-0011
[22]

Cai S, Zhou X, Wang Y, Lu X. 2025. Advanced carbonaceous materials for Zn-ion hybrid supercapacitors: status and perspectives. Energy Materials 5:500085

doi: 10.20517/energymater.2024.266
[23]

Dong L, Ma X, Li Y, Zhao L, Liu W, et al. 2018. Extremely safe, high-rate and ultralong-life zinc-ion hybrid supercapacitors. Energy Storage Materials 13:96−102

doi: 10.1016/j.ensm.2018.01.003
[24]

Wang C, Zeng C, Wei C, Chen G, Liang Y, et al. 2026. Lignin valorization towards porous carbon cathodes in zinc ion hybrid capacitors. Chinese Chemical Letters 37:111850

doi: 10.1016/j.cclet.2025.111850
[25]

Sun H, Liu C, Guo D, Liang S, Xie W, et al. 2022. P-doped porous carbon derived from walnut shell for zinc ion hybrid capacitors. RSC Advances 12:24724−24733

doi: 10.1039/D2RA04277K
[26]

Zhang H, Chen Z, Zhang Y, Ma Z, Zhang Y, et al. 2021. Boosting Zn-ion adsorption in cross-linked N/P co-incorporated porous carbon nanosheets for the zinc-ion hybrid capacitor. Journal of Materials Chemistry A 9:16565−16574

doi: 10.1039/D1TA03501K
[27]

Sun Z, Liao Y, Zhang Y, Sun S, Kan Q, et al. 2025. Sustainable carbon materials in environmental and energy applications. Sustainable Carbon Materials 1:e007

doi: 10.48130/scm-0025-0002
[28]

Li Z, Wang C, Zeng C, Luo Y, Chen B, et al. 2026. In-situ synergistic activation engineering of nitrogen/oxygen co-doped gradient microporous carbons for high-rate zinc ion storage. Chemical Engineering Science 321:122969

doi: 10.1016/j.ces.2025.122969
[29]

Zhang Y, Yu Z, Yue W, Zhang X, He T, et al. 2025. Formulation of N-doped carbon with meso/microporous structure for supercapacitors through biotemplates. Journal of Industrial and Engineering Chemistry 142:368−379

doi: 10.1016/j.jiec.2024.07.043
[30]

Lai L, Zhao Y, Ying S, Li L, Ma Z, et al. 2018. Hierarchically porous N-doped carbon derived from supramolecular assembled polypyrrole as a high performance supercapacitor electrode material. RSC Advances 8:18714−18722

doi: 10.1039/C8RA02110D
[31]

Wang S, Qin J, Zhao Y, Duan L, Wang J, et al. 2019. Ultrahigh surface area N-doped hierarchically porous carbon for enhanced CO2 capture and electrochemical energy storage. ChemSusChem 12:3541−3549

doi: 10.1002/cssc.201901137
[32]

Zhang L, Li G, Dong C, Jing L, Li Z, et al. 2020. Synthesis of rich N-doped hierarchically porous carbon flowers for electrochemical energy storage. Diamond and Related Materials 102:107691

doi: 10.1016/j.diamond.2019.107691
[33]

Daniel G, Kosmala T, Dalconi MC, Nodari L, Badocco D, et al. 2020. Upcycling of polyurethane into iron-nitrogen-carbon electrocatalysts active for oxygen reduction reaction. Electrochimica Acta 362:137200

doi: 10.1016/j.electacta.2020.137200
[34]

Song Y, Qu W, He Y, Yang H, Du M, et al. 2020. Synthesis and processing optimization of N-doped hierarchical porous carbon derived from corncob for high performance supercapacitors. Journal of Energy Storage 32:101877

doi: 10.1016/j.est.2020.101877
[35]

Ubaidullah M, Al-Enizi AM, Ahamad T, Shaikh SF, Al-Abdrabalnabi MA, et al. 2021. Fabrication of highly porous N-doped mesoporous carbon using waste polyethylene terephthalate bottle-based MOF-5 for high performance supercapacitor. Journal of Energy Storage 33:102125

doi: 10.1016/j.est.2020.102125
[36]

Calvo-Correas T, Ugarte L, Trzebiatowska PJ, Sanzberro R, Datta J, et al. 2017. Thermoplastic polyurethanes with glycolysate intermediates from polyurethane waste recycling. Polymer Degradation and Stability 144:411−419

doi: 10.1016/j.polymdegradstab.2017.09.001
[37]

Cregut M, Bedas M, Durand MJ, Thouand G. 2013. New insights into polyurethane biodegradation and realistic prospects for the development of a sustainable waste recycling process. Biotechnology Advances 31:1634−1647

doi: 10.1016/j.biotechadv.2013.08.011
[38]

Ahmad F, Cao W, Zhang Y, Pan R, Zhao W, et al. 2024. Oil recovery from microwave co-pyrolysis of polystyrene and polypropylene plastic particles for pollution mitigation. Environmental Pollution 356:124240

doi: 10.1016/j.envpol.2024.124240
[39]

Li Z, An Y, Dong S, Chen C, Wu L, et al. 2020. Progress on zinc ion hybrid supercapacitors: insights and challenges. Energy Storage Materials 31:252−266

doi: 10.1016/j.ensm.2020.06.014
[40]

Ahmad F, Zhang Y, Liu Z, Zhao W, Liu W, et al. 2025. Aromatic enriched oil production via microwave-assisted catalytic co-pyrolysis of baked semen abutilon seeds and waste expanded polystyrene. Journal of Cleaner Production 528:146660

doi: 10.1016/j.jclepro.2025.146660
[41]

Cao T, Li W, Zhu J, Zhang G, Liu H, et al. 2025. Transforming lignin into functionalized B/N co-doped porous carbon for high-performance zinc-ion hybrid capacitors. Energy Conversion and Management 326:119498

doi: 10.1016/j.enconman.2025.119498
[42]

Li H, Su P, Liao Q, Liu Y, Li Y, et al. 2023. Olive leaves-derived hierarchical porous carbon as cathode material for anti-self-discharge zinc-ion hybrid capacitor. Small 19:2304172

doi: 10.1002/smll.202304172
[43]

Dang H, Xu R, Zhang J, Wang M, Xu K. 2023. Hydrothermal carbonization of waste furniture for clean blast furnace fuel production: physicochemical, gasification characteristics and conversion mechanism investigation. Chemical Engineering Journal 469:143980

doi: 10.1016/j.cej.2023.143980
[44]

Liu Q, Xu R, Yan C, Han L, Lei H, et al. 2021. Fast hydrothermal co-liquefaction of corn stover and cow manure for biocrude and hydrochar production. Bioresource Technology 340:125630

doi: 10.1016/j.biortech.2021.125630
[45]

Liu Q, Ji G, Li X, Zhang G, Zhang X, et al. 2024. Insights into PVC-promoted hydrothermal carbonization of manure: dechlorination, inorganic metals removal, and combustion behaviors. Chemical Engineering Journal 491:152167

doi: 10.1016/j.cej.2024.152167
[46]

Feng W, Feng N, Liu W, Cui Y, Chen C, et al. 2021. Liquid-state templates for constructing B, N, co-doping porous carbons with a boosting of potassium-ion storage performance. Advanced Energy Materials 11:2003215

doi: 10.1002/aenm.202003215
[47]

Wang H, Zhi L, Liu K, Dang L, Liu Z, et al. 2015. Thin-sheet carbon nanomesh with an excellent electrocapacitive performance. Advanced Functional Materials 25:5420−5427

doi: 10.1002/adfm.201502025
[48]

Zhang R, Jing X, Chu Y, Wang L, Kang W, et al. 2018. Nitrogen/oxygen co-doped monolithic carbon electrodes derived from melamine foam for high-performance supercapacitors. Journal of Materials Chemistry A 6:17730−17739

doi: 10.1039/C8TA06471G
[49]

Zhang Y, Wang X, Zou B, Xia B, Yang H, et al. 2025. Multidimensional soft-hard heterostructure porous carbon for high mass-loading zinc-ion hybrid supercapacitors. Chemical Engineering Journal 524:169366

doi: 10.1016/j.cej.2025.169366
[50]

Wang B, Wang Y, Peng Y, Wang X, Wang N, et al. 2018. Nitrogen-doped biomass-based hierarchical porous carbon with large mesoporous volume for application in energy storage. Chemical Engineering Journal 348:850−859

doi: 10.1016/j.cej.2018.05.061
[51]

Shi X, Zhang H, Zeng S, Wang J, Cao X, et al. 2021. Pyrrolic-dominated nitrogen redox enhances reaction kinetics of pitch-derived carbon materials in aqueous zinc ion hybrid supercapacitors. ACS Materials Letters 3:1291−1299

doi: 10.1021/acsmaterialslett.1c00325
[52]

Yang L, Wu D, Wang T, Jia D. 2020. B/N-codoped carbon nanosheets derived from the self-assembly of chitosan–amino acid gels for greatly improved supercapacitor performances. ACS Applied Materials & Interfaces 12:18692−18704

doi: 10.1021/acsami.0c01655
[53]

Chen W, Gong M, Li K, Xia M, Chen Z, et al. 2020. Insight into KOH activation mechanism during biomass pyrolysis: chemical reactions between O-containing groups and KOH. Applied Energy 278:115730

doi: 10.1016/j.apenergy.2020.115730
[54]

Liu Y, Wu L. 2023. Recent advances of cathode materials for zinc-ion hybrid capacitors. Nano Energy 109:108290

doi: 10.1016/j.nanoen.2023.108290
[55]

Fan Y, Fu F, Yang D, Liu W, Qiu X. 2024. Thiocyanogen-modulated N, S co-doped lignin hierarchical porous carbons for high-performance aqueous supercapacitors. Journal of Colloid and Interface Science 667:147−156

doi: 10.1016/j.jcis.2024.04.099
[56]

Jian W, Zhang W, Wei X, Wu B, Liang W, et al. 2022. Engineering pore nanostructure of carbon cathodes for zinc ion hybrid supercapacitors. Advanced Functional Materials 32:2209914

doi: 10.1002/adfm.202209914
[57]

Jian W, Zhang W, Wu B, Wei X, Liang W, et al. 2022. Enzymatic hydrolysis lignin-derived porous carbons through ammonia activation: activation mechanism and charge storage mechanism. ACS Applied Materials & Interfaces 14:5425−5438

doi: 10.1021/acsami.1c22576
[58]

Zhang W, Yin J, Jian W, Wu Y, Chen L, et al. 2022. Supermolecule-mediated defect engineering of porous carbons for zinc-ion hybrid capacitors. Nano Energy 103:107827

doi: 10.1016/j.nanoen.2022.107827
[59]

Song T, Zhao Y, Chen C, Gui X, Wu X, et al. 2024. Recyclable NaCl template assisted preparation of N/O co-doped porous carbon for zinc-ion hybrid capacitor. Journal of Energy Storage 98:113148

doi: 10.1016/j.est.2024.113148
[60]

Koolen CD, Oveisi E, Zhang J, Li M, Safonova OV, et al. 2024. Low-temperature non-equilibrium synthesis of anisotropic multimetallic nanosurface alloys for electrochemical CO2 reduction. Nature Synthesis 3:47−57

doi: 10.1038/s44160-023-00387-3
[61]

Tang Y, Chen J, Mao Z, Roth C, Wang D. 2023. Highly N-doped carbon with low graphitic-N content as anode material for enhanced initial Coulombic efficiency of lithium-ion batteries. Carbon Energy 5:e257

doi: 10.1002/cey2.257