Conventional and microwave-assisted pyrolysis biochars: comparative mechanistic insights, structural evolution, and environmental remediation applications

Atta Rasool , Kateřina Brožová , Jitka Chromíková , Eva Pertile , Jan Halfar , Petra Malíková , Oldřich Motyka , Silvie Drabinová , Kristina Čabanová , Silvie Heviánková

Biochar ›› 2026, Vol. 8 ›› Issue (1) : 98

PDF
Biochar ›› 2026, Vol. 8 ›› Issue (1) :98 DOI: 10.1007/s42773-026-00601-3
Review
review-article
Conventional and microwave-assisted pyrolysis biochars: comparative mechanistic insights, structural evolution, and environmental remediation applications
Author information +
History +
PDF

Abstract

The dual challenges of waste biomass disposal and escalating contamination by inorganic, organic, and emerging microplastic pollutants demand sustainable, circular remediation strategies. Biochar, a carbon-rich, porous material produced through the thermal decomposition of biomass, has emerged as a multifunctional sorbent capable of adsorbing pollutants, enhancing soil quality, and sequestering carbon. This review critically compares biochars synthesized via conventional pyrolysis (CP) and microwave-assisted pyrolysis (MAP), highlighting their physicochemical differences, sorption mechanisms, and contaminant removal efficiencies. As a key novelty, this review presents the first mechanistically integrated comparison of CP and MAP biochars in relation to their structural characteristics and performance relationships. Factors such as temperature, reactor design, and pyrolysis method significantly influence the properties of biochar, including surface area, porosity, pH, carbon content, and adsorption capacity. Comparative analysis indicates that MAP offers advantages over CP, including faster volumetric heating, higher product yield, enhanced specific surface area, greater selectivity for targeted contaminants, and potentially improved energy efficiency under optimized conditions. The review discusses biochar functionalization, adsorption-reduction methods, and optimization for contaminants such as heavy metals, dyes, medicines, and microplastics. Beyond remediation, biochar is used for soil improvement, composting, catalysis, and electrode materials. Key information gaps persist, including a mechanistic understanding of contaminant interactions, long-term stability, and MAP scalability. Addressing these gaps is critical for optimizing biochar for targeted remediation, incorporating MAP-derived biochar into circular bioeconomy and carbon-neutral methods, and directing the development of next-generation biochars for sustainable pollution management and resource recovery.

Keywords

Adsorption / Emerging pollutants / Sustainability / Activation / Surface area / Sorbent / Remediation

Cite this article

Download citation ▾
Atta Rasool, Kateřina Brožová, Jitka Chromíková, Eva Pertile, Jan Halfar, Petra Malíková, Oldřich Motyka, Silvie Drabinová, Kristina Čabanová, Silvie Heviánková. Conventional and microwave-assisted pyrolysis biochars: comparative mechanistic insights, structural evolution, and environmental remediation applications. Biochar, 2026, 8(1): 98 DOI:10.1007/s42773-026-00601-3

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Ahmed SF, Mehejabin F, Chowdhury AA, Almomani F, Khan NA, Badruddin IA, Kamangar S. Biochar produced from waste-based feedstocks: mechanisms, affecting factors, economy, utilization, challenges, and prospects. GCB Bioenergy, 2024, 16 Article ID: e13175

[2]

Ajien A, Idris J, Md Sofwan N, Husen R, Seli H. Coconut shell and husk biochar: a review of production and activation technology, economic, financial aspect and application. Waste Manag Res, 2023, 41: 37-51

[3]

Akdeniz N. A systematic review of biochar use in animal waste composting. Waste Manag, 2019, 88: 291-300

[4]

Aktar S, Hossain MA, Rathnayake N, Patel S, Gasco G, Mendez A, De Figueiredo C, Surapaneni A, Shah K, Paz-Ferreiro J. Effects of temperature and carrier gas on physico-chemical properties of biochar derived from biosolids. J Anal Appl Pyrolysis, 2022, 164 Article ID: 105542

[5]

Al-Bassam AZM, Rabeea MA, Sarhan AA, AL-Sayd Toohi HTS, Yingnakorn T. Rapid sonochemical synthesis of Fe3O4@AC from waste rubber tires to use for azo dye removal. Inorg Chem Commun, 2025, 174 Article ID: 113968

[6]

Altıkat A, Alma MH, Altıkat A, Bilgili ME, Altıkat S. A comprehensive study of biochar yield and quality concerning pyrolysis conditions: a multifaceted approach. Sustainability, 2024, 16: 937

[7]

Amalina F, Razak ASA, Krishnan S, Sulaiman H, Zularisam AW, Nasrullah M. Biochar production techniques utilizing biomass waste-derived materials and environmental applications – a review. J Hazard Mater Adv, 2022, 7 Article ID: 100134

[8]

Anekwe IMS, Akpasi SO, Tetteh EK, Joel AS, Mustapha SI, Isa YM. Progress in heterogeneous catalysis for renewable energy and petrochemical production from biomass. Fuel Process Technol, 2025, 276 Article ID: 108267

[9]

Anfar Z, Zbair M, Ait Ahsiane H, Jada A, El Alem N. Microwave assisted green synthesis of Fe2O3/biochar for ultrasonic removal of nonsteroidal anti-inflammatory pharmaceuticals. RSC Adv, 2020, 10: 11371-11380

[10]

Bai J, Li Y, Pei K, Cao Q, Yuan X, Jiang M, Ma Z, Che R, Cao S. Dielectric gene tailoring and interfacial polarization relaxation in Mo–Fe bimetallic carbide for low-frequency electromagnetic response. Adv Funct Mater, 2025

[11]

Bari GAKMR, Jeong J-H. Porous carbon for CO2 capture technology: unveiling fundamentals and innovations. Surfaces, 2023, 6: 316-340

[12]

Bedia J, Peñas-Garzón M, Gómez-Avilés A, Rodriguez JJ, Belver C. A review on the synthesis and characterization of biomass-derived carbons for adsorption of emerging contaminants from water. C, 2018, 4 Article ID: 63

[13]

Beljin J, Đukanović N, Anojčić J, Simetić T, Apostolović T, Mutić S, Maletić S. Biochar in the remediation of organic pollutants in water: a review of polycyclic aromatic hydrocarbon and pesticide removal. Nanomaterials, 2025, 15 Article ID: 26

[14]

Bolan S, Hou D, Wang L, Hale L, Egamberdieva D, Tammeorg P, Li R, Wang B, Xu J, Wang T, Sun H, Padhye LP, Wang H, Siddique KHM, Rinklebe J, Kirkham MB, Bolan N. The potential of biochar as a microbial carrier for agricultural and environmental applications. Sci Total Environ, 2023, 886 Article ID: 163968

[15]

Bongosia JG, Al-Gailani A, Kolosz BW, Loy Chun Minh A, Lock SSM, Cheah KW, Taylor MJ. Scalable mesoporous biochars from bagasse waste for Cu(II) removal: process optimisation, kinetics and techno-economic analysis. J Environ Manage, 2024, 370 Article ID: 122558

[16]

Brown AE, Adams JMM, Grasham OR, Camargo-Valero MA, Ross AB. An assessment of different integration strategies of hydrothermal carbonisation and anaerobic digestion of water hyacinth. Energies, 2020, 13: 5983

[17]

Cancelliere R, Cianciaruso M, Carbone K, Micheli L. Biochar: a sustainable alternative in the development of electrochemical printed platforms. Chemosensors, 2022, 10: 344

[18]

Cao H, Saroglu O, Karadag A, Diaconeasa Z, Zoccatelli G, Conte-Junior CA, Gonzalez-Aguilar GA, Ou J, Bai W, Zamarioli CM, de Freitas LAP, Shpigelman A, Campelo PH, Capanoglu E, Hii CL, Jafari SM, Qi Y, Liao P, Wang M, Zou L, Bourke P, Simal-Gandara J, Xiao J. Available technologies on improving the stability of polyphenols in food processing. Food Front, 2021, 2: 109-139

[19]

Cao H, Saroglu O, Karadag A, Diaconeasa Z, Zoccatelli G, Conte-Junior CA, Gonzalez-Aguilar GA, Ou J, Bai W, Zamarioli CM, de Freitas LAP, Shpigelman A, Campelo PH, Capanoglu E, Hii CL, Jafari SM, Qi Y, Liao P, Wang M, Zou L, Bourke P, Simal-Gandara J, Xiao J. Available technologies on improving the stability of polyphenols in food processing. Food Front, 2021, 2: 109-139

[20]

Chai WS, Awais A, Li X, Wu T, Pang CH. Surface-engineered biochar: recent advances in modification strategies for environmental remediation and energy applications. J Environ Chem Eng, 2025

[21]

Chakraborty P, Banerjee S, Kumar S, Sadhukhan S, Halder G. Elucidation of ibuprofen uptake capability of raw and steam activated biochar of Aegle marmelos shell: isotherm, kinetics, thermodynamics and cost estimation. Process Saf Environ Prot, 2018, 118: 10-23

[22]

Chaubey AK, Pratap T, Preetiva B, Patel M, Singsit JS, Pittman CUJr, Mohan D. Definitive review of nanobiochar. ACS Omega, 2024, 9: 12331-12379

[23]

Chen Y, Zhang X, Chen W, Yang H, Chen H. The structure evolution of biochar from biomass pyrolysis and its correlation with gas pollutant adsorption performance. Bioresource Technol, 2017, 246: 101-109

[24]

Chen H, Yang X, Liu Y, Lin X, Wang J, Zhang Z, Li N, Li Y, Zhang Y. KOH modification effectively enhances the Cd and Pb adsorption performance of N-enriched biochar derived from waste chicken feathers. Waste Manag, 2021, 130: 82-92

[25]

Chen H, Chen H, Kardos L, Szabó V. Application of biochar for ion-adsorption of rare earth contaminated soil remediation: a review. Sustainability, 2023, 15: 7934

[26]

Chen J, Zhang M, Siddique KHM, Leng L, Li H. Sustainable manufacture and application of biochar to improve soil properties and remediate soil contaminated with organic impurities: a systematic review. Front Environ Sci, 2023

[27]

Chen W, Zhou Y, Wang Y, Zhong Y, Yu Y, Huang K. Microwave-assisted pyrolysis of plastic waste with magnetic catalysts in a multi-ridge field compressed reactor. J Anal Appl Pyrolysis, 2024, 179 Article ID: 106440

[28]

Daoutidis P, Megan L, Tang W. The future of control of process systems. Comput Chem Eng, 2023, 178 Article ID: 108365

[29]

Das SK, Ghosh GK, Avasthe R. Applications of biomass derived biochar in modern science and technology. Environ Technol Innov, 2021, 21 Article ID: 101306

[30]

Dennison MS, Paramasivam SK, Wanazusi T, Sundarrajan KJ, Erheyovwe BP, Williams MAM. Addressing plastic waste challenges in Africa: the potential of pyrolysis for waste-to-energy conversion. Clean Technol, 2025, 7 Article ID: 20

[31]

Dong X, Chu Y, Tong Z, Sun M, Meng D, Yi X, Gao T, Wang M, Duan J. Mechanisms of adsorption and functionalization of biochar for pesticides: a review. Ecotoxicol Environ Saf, 2024, 272 Article ID: 116019

[32]

Du L, Ahmad S, Liu L, Wang L, Tang J. A review of antibiotics and antibiotic resistance genes (ARGs) adsorption by biochar and modified biochar in water. Sci Total Environ, 2023, 858 Article ID: 159815

[33]

Ellison C, McKeown MS, Trabelsi S, Boldor D. Dielectric properties of biomass/biochar mixtures at microwave frequencies. Energies, 2017, 10: 502

[34]

Fakhar A, Canatoy RC, Galgo SJC, Rafique M, Sarfraz R. Advancements in modified biochar production techniques and soil application: a critical review. Fuel, 2025, 400 Article ID: 135745

[35]

Foong SY, Chin BLF, Lock SSM, Yiin CL, Tan YH, Zheng G, Ge S, Liew RK, Lam SS. Enhancing wastewater treatment with engineered biochar from microwave-assisted approach: a comprehensive review. Environ Technol Innov, 2024, 36 Article ID: 103835

[36]

Gaurav GK, Mehmood T, Cheng L, Klemeš JJ, Shrivastava DK. Water hyacinth as a biomass: a review. J Clean Prod, 2020, 277 Article ID: 122214

[37]

Ghodake GS, Shinde SK, Kadam AA, Saratale RG, Saratale GD, Kumar M, et al.. Review on biomass feedstocks, pyrolysis mechanism and physicochemical properties of biochar: state-of-the-art framework to speed up vision of circular bioeconomy. J Clean Prod, 2021, 297 Article ID: 126645

[38]

Godwin PM, Pan Y, Xiao H, Afzal MT. Progress in preparation and application of modified biochar for improving heavy metal ion removal from wastewater. J Bioresour Bioprod, 2019, 4: 31-42

[39]

Gotore O, Masere TP, Muronda MT. The immobilization and adsorption mechanisms of agro-waste-based biochar: a review on the effectiveness of pyrolytic temperatures on heavy metal removal. Environ Chem Ecotoxicol, 2024, 6: 92-103

[40]

Hagner M, Salmela MJ, Ahmadi S, Yaah VK, Ojala S, Laitinen T, Hiltunen LH. Biochar and hydrochar from organic side-streams induce species-specific responses in plants. J Soil Sci Plant Nutr, 2025

[41]

Haider FU, Wang X, Zulfiqar U, Farooq M, Hussain S, Mehmood T, et al.. Biochar application for remediation of organic toxic pollutants in contaminated soils: an update. Ecotoxicol Environ Saf, 2022, 248 Article ID: 114322

[42]

Hamid NA, You JJ. Mangosteen peel-derived hydrochar prepared via hydrothermal carbonization for methylene blue removal. IOP Conf Ser Earth Environ Sci, 2021, 765 Article ID: 012114

[43]

Han P, Tana T, Sarina S, Waclawik ER, Chen C, Jia J, Li K, Fang Y, Huang Y, Doherty W, Bottle SE, Zhao J, Zhu H-Y. Plasmonic silver nanoparticles promoted sugar conversion to 5-hydroxymethylfurfural over catalysts of immobilised metal ions. Appl Catal B Environ, 2021, 296 Article ID: 120340

[44]

Hao J, Cui Z, Liang J, Ma J, Ren N, Zhou H, Xing D. Sustainable efficient utilization of magnetic porous biochar for adsorption of orange G and tetracycline: inherent roles of adsorption and mechanisms. Environ Res, 2024, 252 Article ID: 118834

[45]

Hasan M, Chakma S, Liang X, Sutradhar S, Kozinski J, Kang K. Engineered biochar for metal recycling and repurposed applications. Energies (Basel), 2024, 17 Article ID: 4674

[46]

Hassan M, Liu Y, Naidu R, Parikh SJ, Du J, Qi F, Willett IR. Influences of feedstock sources and pyrolysis temperature on the properties of biochar and functionality as adsorbents: a meta-analysis. Sci Total Environ, 2020, 744 Article ID: 140714

[47]

Hu Q, He Y, Wang F, Wu J, Ci Z, Chen L, Xu R, Yang M, Lin J, Han L, Zhang D. Microwave technology: a novel approach to the transformation of natural metabolites. Chin Med, 2021, 16 Article ID: 87

[48]

Hu S, Liu C, Bu H, Chen M, Fei Y. Efficient reduction and adsorption of Cr(VI) using FeCl3-modified biochar: synergistic roles of persistent free radicals and Fe(II). J Environ Sci, 2024, 137: 626-638

[49]

Ighalo JO, Ohoro CR, Ojukwu VE, Oniye M, Shaikh WA, Biswas JK, Seth CS, Mohan GBM, Chandran SA, Rangabhashiyam S. Biochar for ameliorating soil fertility and microbial diversity: from production to action of the black gold. iScience, 2025, 28 Article ID: 111524

[50]

Igwebuike CM, Awad S, Andrès Y. Renewable energy potential: second-generation biomass as feedstock for bioethanol production. Molecules, 2024, 29: 1619

[51]

Inyang MI, Gao B, Yao Y, Xue YW, Zimmerman A, Mosa A, Pullammanappallil P, Yong SO, Cao XD. A review of biochar as a low-cost adsorbent for aqueous heavy metal removal. Crit Rev Environ Sci Technol, 2016, 46: 406-433

[52]

Jagadeesh N, Sundaram B. Adsorption of pollutants from wastewater by biochar: a review. J Hazard Mater Adv, 2023, 9 Article ID: 100226

[53]

Jerzak W, Acha E, Li B. Comprehensive review of biomass pyrolysis: conventional and advanced technologies, reactor designs, product compositions and yields, and techno-economic analysis. Energies, 2024, 17: 5082

[54]

Kane S, Miller SA. Predicting biochar properties and pyrolysis life-cycle inventories with compositional modeling. Bioresour Technol, 2024, 399 Article ID: 130551

[55]

Khater E-S, Bahnasawy A, Hamouda R, Sabahy A, Abbas W, Morsy OM. Biochar production under different pyrolysis temperatures with different types of agricultural wastes. Sci Rep, 2024, 14: 2625

[56]

Kolur AN, Sharifi anS, Jordan C, Aghaei Dinani R, Wellscheid BJ, Föttinger K, Harasek M. Streamlined physical activation of Pistacia terebinthus shells: carbonization and activation kinetic studies. Biomass Bioenergy, 2025, 200 Article ID: 108010

[57]

Kong D, He L, Li H, Zhang F, Song Z. Preparation and characterization of graphene oxide/chitosan composite aerogel with high adsorption performance for Cr(VI) by a new crosslinking route. Colloids Surf A Physicochem Eng Asp, 2021, 625 Article ID: 126832

[58]

Kumar A, Bhattacharya T. Biochar: a sustainable solution. Environ Dev Sustain, 2021, 23: 6642-6680

[59]

Kumar A, Bhattacharya T, Shaikh WA, Chakraborty S, Sarkar D, Biswas JK. Biochar modification methods for augmenting sorption of contaminants. Curr Pollut Rep, 2022, 8: 519-555

[60]

Kumar P, Singhania RR, Sumathi Y, Kurrey NK, Chen C-W, Patel AK, Dong C-D. Investigating innovative techniques for biochar modification to enhance the removal of heavy metals from aqueous environments: a comprehensive review. Clean Technol Environ Policy, 2024

[61]

Laishram D, Kim S-B, Lee S-Y, Park S-J. Advancements in biochar as a sustainable adsorbent for water pollution mitigation. Adv Sci, 2025, 12: 2410383

[62]

Lei X, Lian Q, Zhang X, Karsili TK, Holmes W, Chen Y, et al.. A review of PFAS adsorption from aqueous solutions: current approaches, engineering applications, challenges, and opportunities. Environ Pollut, 2023, 321 Article ID: 121138

[63]

Li J. Municipal solid waste incineration ash-incorporated concrete: one step towards environmental justice. Buildings, 2021, 11 Article ID: 495

[64]

Li C, Zhang C, Zhong S, Duan J, Li M, Shi Y. The removal of pollutants from wastewater using magnetic biochar: a scientometric and visualization analysis. Molecules, 2023, 28: 5840

[65]

Li X, Li L, Huang Z, Chang Z, Tu Z, Tian L, Du W, Li H, Zhang P, Pan B. Enhancing the stability and heavy metal immobilization of co-pyrolysis biochar through biomass and red mud co-pyrolysis: a synergistic mechanism. J Environ Manage, 2025, 376 Article ID: 124422

[66]

Li L, Bai J, Ma Z, Jiang M, Cao Q, Cao M. Mixing-entropy driven dipole relaxation in high-entropy carbon spheres for ultra-wideband EM attenuation. Carbon, 2025, 244 Article ID: 120722

[67]

Li Y, Bai J, Zhang H, Li L, Wang X, Gao L, Ma Z, Cao Q, Jiang M. Lightweight carbonyl iron powder-based yolk–shell architectures for integrated electromagnetic wave absorption and thermal protection. Carbon, 2025, 246 Article ID: 120959

[68]

Li Y, Bai X, Ma Z, Jiang M, Cao Q, Cao S. Multiphase high-entropy carbon sphere: defect engineering and multispectral electromagnetic response. Adv Funct Mater, 2025

[69]

Liu L, Huang Y, Zhang S, Gong Y, Su Y, Cao J, Hu H. Adsorption characteristics and mechanism of Pb(II) by agricultural waste-derived biochars produced from a pilot-scale pyrolysis system. Waste Manag, 2019, 100: 287-295

[70]

Liu P, Ptacek CJ, Blowes DW, Finfrock YZ, Liu Y. Characterization of chromium species and distribution during Cr(VI) removal by biochar using confocal micro-X-ray fluorescence redox mapping and X-ray absorption spectroscopy. Environ Int, 2020, 134 Article ID: 105216

[71]

Lyu H, Zhang Q, Shen B. Application of biochar and its composites in catalysis. Chemosphere, 2020, 240 Article ID: 124842

[72]

Mafat IH, Surya DV, Rao CS, Kandya A, Basak T. A review on the role of various machine learning algorithms in microwave-assisted pyrolysis of lignocellulosic biomass waste. J Environ Manage, 2024, 371 Article ID: 123277

[73]

Megherbi H, Runtti H, Tuomikoski S, Heponiemi A, Hu T, Lassi U, Reffas A. The effect of phosphoric acid on the properties of activated carbons made from Myrtus communis leaves: textural characteristics, surface chemistry, and capacity to adsorb methyl orange. J Mol Struct, 2025, 1321 Article ID: 140038

[74]

Mei Y, Zhuang S, Wang J. Adsorption of heavy metals by biochar in aqueous solution: a review. Sci Total Environ, 2025, 968 Article ID: 178898

[75]

Moghaddam LA, Hejazi S, Fattahi M, Golam Kibria M, Thomson MJ, AlEisa R, Khan MA. Methane pyrolysis for hydrogen production: navigating the path to a net zero future. Energy Environ Sci, 2025, 18: 2747-2790

[76]

Mohona TM, Ye Z, Dai N, Nalam PC. Adsorption behavior of long-chain perfluoroalkyl substances on hydrophobic surface: a combined molecular characterization and simulation study. Water Res, 2023, 239 Article ID: 120074

[77]

Murtaza G, Ahmed Z, Valipour M, Ali I, Usman M, Iqbal R, Zulfiqar U, Rizwan M, Mahmood S, Ullah A, Arslan M, Rehman MH, Ditta A, Tariq A. Recent trends and economic significance of modified/functionalized biochars for remediation of environmental pollutants. Sci Rep, 2024, 14 Article ID: 217

[78]

Mutsengerere S, Chihobo CH, Musademba D, Nhapi I. A review of operating parameters affecting bio-oil yield in microwave pyrolysis of lignocellulosic biomass. Renew Sustain Energy Rev, 2019, 104: 328-336

[79]

Nan H (2024) How does ball-milling elevate biochar as a value-added peroxydisulfate activator for antibiotics removal?

[80]

Nasrollahpour S, Pulicharla R, Brar SK. Functionalized biochar for the removal of poly- and perfluoroalkyl substances in aqueous media. iScience, 2025, 28 Article ID: 112113

[81]

Neri A, Bernardi B, Zimbalatti G, Benalia S. An overview of anaerobic digestion of agricultural by-products and food waste for biomethane production. Energies, 2023, 16: 6851

[82]

Nizamuddin S, Qureshi SS, Baloch HA, Siddiqui MTH, Takkalkar P, Mubarak NM, et al.. Microwave hydrothermal carbonization of rice straw: optimization of process parameters and upgrading of chemical, fuel, structural and thermal properties. Materials Basel, 2019, 12: 403

[83]

Pahnila M, Koskela A, Sulasalmi P, Fabritius T. A review of pyrolysis technologies and the effect of process parameters on biocarbon properties. Energies, 2023, 16: 6936

[84]

Pavesi R, Orsi L, Zanderighi L. Enhancing circularity in urban waste management: a case study on biochar from urban pruning. Environments, 2025, 12 Article ID: 5

[85]

Phiri Z, Moja NT, Nkambule TT, de Kock L-A. Utilization of biochar for remediation of heavy metals in aqueous environments: a review and bibliometric analysis. Heliyon, 2024, 10 Article ID: e25785

[86]

Phuong DTM, Loc NX. Rice straw biochar and magnetic rice straw biochar for safranin O adsorption from aqueous solution. Water, 2022, 14: 186

[87]

Pimsawat A, Tangtrakarn A, Pimsawat N, Khamkongkaeo A, Daengsakul S. Microwave assisted activation of silkworm excrement for fast adsorption of methylene blue and high performance supercapacitor. Sci Rep, 2024, 14 Article ID: 26868

[88]

Polesek-Karczewska S, Hercel P, Adibimanesh B, Wardach-Święcicka I. Towards sustainable biomass conversion technologies: a review of mathematical modeling approaches. Sustainability, 2024, 16: 8719

[89]

Portillo F, Alcayde A, Garcia RM, Fernandez-Ros M, Gazquez JA, Novas N. Life cycle assessment in renewable energy: solar and wind perspectives. Environments, 2024, 11 Article ID: 147

[90]

Priyanka WIE, Al-Gailani A, Kolosz BW, Cheah KW, Vashisht D, et al.. Cleaning up metal contamination after decades of energy production and manufacturing: reviewing the value in use of biochars for a sustainable future. Sustainability, 2024, 16: 8838

[91]

Puteri MN, Gew LT, Ong HC, Ming LC. Technologies to eliminate microplastic from water: current approaches and future prospects. Environ Int, 2025, 199 Article ID: 109397

[92]

Qin Y, Wu X, Huang Q, Beiyuan J, Wang J, Liu J, Yuan W, Nie C, Wang H. Phosphate removal mechanisms in aqueous solutions by three different Fe-modified biochars. Int J Environ Res Public Health, 2023, 20: 326

[93]

Qiu T, Li C, Zhao W, Naz MY, Zhang Y. Microwave-assisted pyrolysis of biomass: influence of feedstock and pyrolysis parameters on porous biochar properties. Biomass Bioenergy, 2025, 193 Article ID: 107583

[94]

Rafie SF, Abu-Zahra N, Sillanpää M. A comprehensive review of spinel ferrites and their magnetic composites as highly efficient adsorbents of rare earth elements. Emerg Contam, 2025, 11 Article ID: 100429

[95]

Rasaq WA, Golonka M, Scholz M, Białowiec A. Opportunities and challenges of high-pressure fast pyrolysis of biomass: a review. Energies (Basel), 2021, 14: 5426

[96]

Rashid MS, Liu G, Yousaf B, Hamid Y, Rehman A, Arif M, Ahmed R, Ashraf A, Song Y. A critical review on biochar-assisted free radicals mediated redox reactions influencing transformation of potentially toxic metals: occurrence, formation, and environmental applications. Environ Pollut, 2022, 315 Article ID: 120335

[97]

Ravindiran G, Rajamanickam S, Janardhan G, Hayder G, Alagumalai A, Mahian O, Lam SS, Sonne C. Production and modifications of biochar to engineered materials and its application for environmental sustainability: a review. Biochar, 2024, 6 Article ID: 62

[98]

Rey JRC, Longo A, Rijo B, Pedrero CM, Tarelho LAC, Brito PSD, Nobre C. A review of cleaning technologies for biomass-derived syngas. Fuel, 2024, 377 Article ID: 132776

[99]

Rius-Ayra O, Biserova-Tahchieva A, Llorca-Isern N. Removal of dyes, oils, alcohols, heavy metals and microplastics from water with superhydrophobic materials. Chemosphere, 2023, 311 Article ID: 137148

[100]

Santhosh C, Daneshvar E, Tripathi KM, Baltrėnas P, Kim T, Baltrėnaitė E, Bhatnagar A. Synthesis and characterization of magnetic biochar adsorbents for the removal of Cr(VI) and Acid orange 7 dye from aqueous solution. Environ Sci Pollut Res Int, 2020, 27: 32874-32887

[101]

Santos DCBD, Evaristo RBW, Dutra RC, Suarez PAZ, Silveira EA, Ghesti GF. Advancing biochar applications: a review of production processes, analytical methods, decision criteria, and pathways for scalability and certification. Sustainability (Basel), 2025, 17: 2685

[102]

Saraugi SS, Routray W. Advances in sustainable production and applications of nano-biochar. Sci Total Environ, 2024, 955 Article ID: 176883

[103]

Sarkar D, Panicker TF, Kumar Mishra R, Srinivas Kini M. A comprehensive review of production and characterization of biochar for removal of organic pollutants from water and wastewater. Water-Energy Nexus, 2024, 7: 243-265

[104]

Shadi A, Samea P, Rabiei M, Ghoreishi-Madiseh SA. Energy efficiency of microwave-induced heating of crushed rocks/ores. Minerals, 2023, 13: 924

[105]

Shah AM, Zhang H, Shahid M, Ghazal H, Shah AR, Niaz M, Naz T, Ghimire K, Goswami N, Shi W, Xia D, Zhao H. The vital roles of agricultural crop residues and agro-industrial by-products to support sustainable livestock productivity in subtropical regions. Animals, 2025, 15: 1184

[106]

Shahbaz M, AlNouss A, Parthasarathy P, Abdelaal AH, Mackey H, McKay G, Al-Ansari T. Investigation of biomass components on the slow pyrolysis products yield using Aspen Plus for techno-economic analysis. Biomass Convers Biorefinery, 2022, 12: 669-681

[107]

Shao Y, Hu A, Jiang Y, Wang X, Li J, Liu G. Preparation of biochars from different sources and study on their phosphorus adsorption properties. Molecules, 2025, 30: 2633

[108]

Simamora E, Nurcholis M, Ardian A, Ernawati R, Winarno E. The potential of biochar for heavy metal adsorption in acid mine drainage based on literature review. J Earth Marine Technol JEMT, 2024, 5: 20-34

[109]

Suliman W, Harsh JB, Abu-Lail NI, Fortuna A-M, Dallmeyer I, Garcia-Pérez M. The role of biochar porosity and surface functionality in augmenting hydrologic properties of a sandy soil. Sci Total Environ, 2017, 574: 139-147

[110]

Thomas P, Lai CW, Bin Johan MR. Recent developments in biomass-derived carbon as a potential sustainable material for super-capacitor-based energy storage and environmental applications. J Anal Appl Pyrolysis, 2019, 140: 54-85

[111]

Tomczyk A, Sokołowska Z, Boguta P. Biochar physicochemical properties: pyrolysis temperature and feedstock kind effects. Rev Environ Sci Biotechnol, 2020, 19: 191-215

[112]

Trivedi Y, Sharma M, Mishra RK, Sharma A, Joshi J, Gupta AB, Achintya B, Shah K, Vuppaladadiyamd AK. Biochar potential for pollutant removal during wastewater treatment: a comprehensive review of separation mechanisms, technological integration, and process analysis. Desalination, 2025, 600 Article ID: 118509

[113]

Truong HB, Bae S, Cho J, Hur J. Advances in application of g–C3N4–based materials for treatment of polluted water and wastewater via activation of oxidants and photoelectrocatalysis: a comprehensive review. Chemosphere, 2022, 286 Article ID: 131737

[114]

Varkolu M, Gundekari S, Omvesh PVCS, Kumar P, Bhattacharjee S, Vinodkumar T. Recent advances in biochar production, characterization, and environmental applications. Catalysts, 2025, 15: 243

[115]

Venkatesh G, Gopinath KA, Reddy KS, Reddy BS, Prabhakar M, Srinivasarao C, Visha Kumari V, Singh VK. Characterization of biochar derived from crop residues for soil amendment, carbon sequestration and energy use. Sustainability (Basel), 2022, 14: 2295

[116]

Verma N, Devi NL. Removal of atmospheric pollutants using biochar: preparation, application, regeneration and its future research. Air Qual Atmosphere Health, 2025, 18: 1205-1224

[117]

Verma Y, Verma A, Bhaskaralingam A, Dhiman P, Wang T, Kumar A, Sharma G. Application of zero-valent iron and its derivatives in the removal of toxic metal ions from groundwater. Water, 2025, 17 Article ID: 1524

[118]

Vincenzo DA, Madonia E, Librici C, Bambina P, Chillura Martino D, Guernelli S, Lo Meo P, Conte P. A study on the oxidative functionalization of a poplar biochar. Molecules, 2025, 30: 1048

[119]

Wahyu ME, Damayanti D, Wu HS. Production, characterization, and application of KOH-activated biochar from rice straw for azo dye adsorption. Biomass, 2025, 5 Article ID: 40

[120]

Wang L, Ok YS, Tsang DCW, Alessi DS, Rinklebe J, Wang H, Mašek O, Hou R, O’Connor D, Hou D. New trends in biochar pyrolysis and modification strategies: feedstock, pyrolysis conditions, sustainability concerns and implications for soil amendment. Soil Use Manag, 2020, 36: 358-386

[121]

Wang W, Lemaire R, Bensakhria A, Luart D. Review on the catalytic effects of alkali and alkaline earth metals (AAEMs) including sodium, potassium, calcium and magnesium on the pyrolysis of lignocellulosic biomass and on the co-pyrolysis of coal with biomass. J Anal Appl Pyrolysis, 2022, 163 Article ID: 105479

[122]

Wang Y, Chen L, Zhu Y, Fang W, Tan Y, He Z, Liao H. Research status, trends, and mechanisms of biochar adsorption for wastewater treatment: a scientometric review. Environ Sci Eur, 2024, 36 Article ID: 25

[123]

Weng ZH, Cowie AL. Estimates vary but credible evidence points to gigaton-scale climate change mitigation potential of biochar. Commun Earth Environ, 2025, 6 Article ID: 259

[124]

Wijitkosum S, Jiwnok P. Elemental composition of biochar obtained from agricultural waste for soil amendment and carbon sequestration. Appl Sci, 2019, 9: 3980

[125]

Wong PS, Chong WW, Tan JP, Mohamed Ariffin NAA, Foo CY, Idris R, Woon KS, Wong KY, Tee WH, Mong GR. Microwave-assisted pyrolysis: a review of tailored carbon materials and scale-up challenges. J Anal Appl Pyrolysis, 2025, 192 Article ID: 107241

[126]

Xia M, Zhang S, Xu K, Zhang C, Wang X. Synergistic effects of adsorption and photocatalysis in MIL-88A(Fe) catalyst for remediation of phenanthrene-contaminated saline-alkaline soils. Appl Catal A Gen, 2025, 689 Article ID: 120010

[127]

Xiang W, Zhang X, Cao C, Quan G, Wang M, Zimmerman AR, Gao B. Microwave-assisted pyrolysis derived biochar for volatile organic compounds treatment: characteristics and adsorption performance. Bioresour Technol, 2022, 355 Article ID: 127274

[128]

Xu Z, Xu X, Yu Y, Yao C, Tsang DCW, Cao X. Evolution of redox activity of biochar during interaction with soil minerals: effect on the electron donating and mediating capacities for Cr(VI) reduction. J Hazard Mater, 2021, 414 Article ID: 125483

[129]

Yaashikaa PR, Senthil Kumar P, Varjani SJ, Saravanan A. Advances in production and application of biochar from lignocellulosic feedstocks for remediation of environmental pollutants. Bioresour Technol, 2019, 292 Article ID: 122030

[130]

Yaashikaa PR, Kumar PS, Varjani S, Saravanan A. A critical review on the biochar production techniques, characterization, stability and applications for circular bioeconomy. Biotechnol Rep, 2020, 28 Article ID: e00570

[131]

Yameen MZ, Naqvi SR, Juchelková D, Khan MNA. Harnessing the power of functionalized biochar: progress, challenges, and future perspectives in energy, water treatment, and environmental sustainability. Biochar, 2024, 6 Article ID: 25

[132]

Yang F, Jiang Y, Dai M, Hou X, Peng C. Active biochar-supported iron oxides for Cr(VI) removal from groundwater: kinetics, stability and the key role of FeO in electron-transfer mechanism. J Hazard Mater, 2022, 424 Article ID: 127542

[133]

Yu Y, He J, Sun J, Pei Z, Wu Q, Yu R. Capacity and mechanisms of Pb(II) and Cd(II) sorption on five plant-based biochars. Sustainability, 2023, 15 Article ID: 7627

[134]

Zaied BK, Rashid M, Nasrullah M, Zularisam AW, Pant D, Singh L. A comprehensive review on contaminants removal from pharmaceutical wastewater by electrocoagulation process. Sci Total Environ, 2020, 726 Article ID: 138095

[135]

Zaker A, Chen Z, Wang X, Zhang Q. Microwave-assisted pyrolysis of sewage sludge: a review. Fuel Process Technol, 2019, 187: 84-104

[136]

Zhang P, Liu S, Tan X, Liu Y, Zeng G, Yin Z, Ye S, Zeng Z. Microwave-assisted chemical modification method for surface regulation of biochar and its application for estrogen removal. Process Saf Environ Prot, 2019, 128: 329-341

[137]

Zhang H, Xiao R, Li R, Ali A, Chen A, Zhang Z. Enhanced aqueous Cr(VI) removal using chitosan-modified magnetic biochars derived from bamboo residues. Chemosphere, 2020, 261 Article ID: 127694

[138]

Zhang Y, Fan S, Liu T, Fu W, Li B. A review of biochar prepared by microwave-assisted pyrolysis of organic wastes. Sustain Energy Technol Assess, 2022, 50 Article ID: 101873

[139]

Zhang M, Peng F, Yu J, Liu Z. Feedstock-induced changes in the physicochemical characteristics of biochars produced from different types of pecan wastes. Forests, 2024, 15: 366

[140]

Zhao L, Sun ZF, Pan XW, Tan JY, Yang SS, Wu JT, Chen C, Yuan Y, Ren NQ. Sewage sludge derived biochar for environmental improvement: advances, challenges, and solutions. Water Res X, 2023, 18 Article ID: 100167

[141]

Zhou Q, Liao B, Lin L, Qiu W, Song Z. Adsorption of Cu(II) and Cd(II) from aqueous solutions by ferromanganese binary oxide–biochar composites. Sci Total Environ, 2018, 615: 115-122

[142]

Zhou Y, Lin F, Ling Z, Zhan M, Zhang G, Yuan D. Comparative study by microwave pyrolysis and conventional pyrolysis of pharmaceutical sludge: resourceful disposal and antibiotic adsorption. J Hazard Mater, 2024, 468 Article ID: 133867

[143]

Zuo J, Li W, Xia Z, Zhao T, Tan C, Wang Y, Li J. Preparation of modified biochar and its adsorption of Cr(VI) in aqueous solution. Coatings, 2023, 13 Article ID: 1884

Funding

Ministerstvo Životního Prostředí(CZ.10.03.01/ 00/22_003/0000048)

RIGHTS & PERMISSIONS

The Author(s)

PDF

12

Accesses

0

Citation

Detail

Sections
Recommended

/