A critical review on biochar production from pine wastes, upgradation techniques, environmental sustainability, and challenges.
暂无分享,去创建一个
E. Kwon | A. Sharma | K. Lin | Nishu Goyal | P. Ghodke | P. Bobde | Wei-Hsin Chen
[1] R. Sharma,et al. Chemical activation of pine needle and coconut shell biochar: production, characterization and process optimization , 2023, International Journal of Environmental Science and Technology.
[2] M. Zappi,et al. Torrefaction of Pine Using a Pilot-Scale Rotary Reactor: Experimentation, Kinetics, and Process Simulation Using Aspen Plus™ , 2023, Clean Technologies.
[3] J. Maroušek,et al. Techno-economic considerations on cement substitute obtained from waste refining , 2023, Journal of Cleaner Production.
[4] M. Roy,et al. Production of biochar briquettes from torrefaction of pine needles and its quality analysis , 2023, Bioresource Technology Reports.
[5] Seongmin Ha,et al. Unique CO2 adsorption of pine needle biochar-based activated carbons by induction of functionality transition , 2023, Journal of Industrial and Engineering Chemistry.
[6] Yu Zhang,et al. Efficient removal of Congo red and methylene blue using biochar from Medulla Tetrapanacis modified by potassium carbonate. , 2023, Bioresource technology.
[7] T. Bhaskar,et al. Pyrolysis of pine needles: Parameter optimization using response surface methodology , 2023, Bioresource Technology Reports.
[8] J. Maroušek,et al. Environmental and economic advantages of production and application of digestate biochar , 2023, Environmental Technology & Innovation.
[9] Jiaming Bai,et al. A comprehensive study on the pyrolysis behavior of pine sawdust catalyzed by different metal ions under conventional and microwave heating conditions , 2023, Energy.
[10] G. Lopez,et al. Assessment of pine wood biomass wastes valorization by pyrolysis with focus on fast pyrolysis biochar production , 2023, Journal of the Energy Institute.
[11] S. Akpotu,et al. Pine bark crosslinked to cyclodextrin for the adsorption of 2-nitrophenol from an aqueous solution , 2023, Physical Sciences Reviews.
[12] Balaraman Ravindran,et al. Effect of Biochar Amendments on the Co-Composting of Food Waste and Livestock Manure , 2022, Agronomy.
[13] A. Raheem,et al. Effect of hydrothermal carbonization on woody biomass: From structure to reactivity , 2022, Fuel.
[14] Jai Hyun Koh,et al. Toward economical application of carbon capture and utilization technology with near-zero carbon emission , 2022, Nature Communications.
[15] Siming You,et al. Review of Biochar Production via Crop Residue Pyrolysis: Development and Perspectives. , 2022, Bioresource technology.
[16] Vijai Kumar Gupta,et al. Cellulosic Pine Needles-Based Biorefinery for a Circular Bioeconomy. , 2022, Bioresource technology.
[17] S. Bhatia,et al. Lignocellulosic biomass conversion via greener pretreatment methods towards biorefinery applications. , 2022, Bioresource technology.
[18] Omar Y. Abdelaziz,et al. Techno-economic optimization of a process superstructure for lignin valorization. , 2022, Bioresource technology.
[19] Hung‐Suck Park,et al. Optimization of tetracycline removal from water by iron-coated pine-bark biochar , 2022, Environmental Science and Pollution Research.
[20] J. Ran,et al. Experimental study on the key factors affecting the gasification performance between different biomass: Compare citrus peel with pine sawdust , 2022, International Journal of Hydrogen Energy.
[21] S. Lo,et al. A green approach towards sorption of CO2 on waste derived biochar. , 2022, Environmental research.
[22] M. Arias-Estévez,et al. Potential of low-cost bio-adsorbents to retain amoxicillin in contaminated water. , 2022, Environmental research.
[23] J. Mahlknecht,et al. Current Trends in Production, Morphology, and Real-World Environmental Applications of Biochar for the Promotion of Sustainability. , 2022, Bioresource technology.
[24] L. Fryda,et al. A comprehensive review of biochar in removal of organic pollutants from wastewater: Characterization, toxicity, activation/functionalization and influencing treatment factors , 2022, Journal of Water Process Engineering.
[25] Panyue Zhang,et al. Pyrolysis temperature regulates sludge-derived biochar production, phosphate adsorption and phosphate retention in soil , 2022, Journal of Environmental Chemical Engineering.
[26] Chitsan Lin,et al. Evaluate the role of biochar during the organic waste composting process: A critical review. , 2022, Chemosphere.
[27] V. K. Yata,et al. Valorization of waste pine needle biomass into biosorbents for the removal of methylene blue dye from water: Kinetics, equilibrium and thermodynamics study , 2021, Environmental Technology & Innovation.
[28] J. Maroušek,et al. Techno-economic analysis reveals the untapped potential of wood biochar. , 2021, Chemosphere.
[29] Soumya Pandit,et al. Recent advances in the application of biochar in microbial electrochemical cells , 2021, Fuel.
[30] J. Maroušek,et al. Recovering phosphorous from biogas fermentation residues indicates promising economic results. , 2021, Chemosphere.
[31] Tao Qin,et al. Catalytic pyrolysis of pine needle biomass over Fe–Co–K catalyst for H2-rich syngas production: Influence of catalyst preparation , 2021, Energy.
[32] S. Basu,et al. Engineered biochar: A way forward to environmental remediation , 2021, Fuel.
[33] Liangcai Wang,et al. Investigation of element migration characteristics and product properties during biomass pyrolysis: a case study of pine cones rich in nitrogen , 2021, RSC advances.
[34] Wei-hsin Chen,et al. Pyrolysis of sewage sludge for sustainable biofuels and value-added biochar production. , 2021, Journal of environmental management.
[35] J. Long,et al. Porous materials for carbon dioxide separations , 2021, Nature Materials.
[36] Amit Kumar,et al. Trends in renewable energy production employing biomass-based biochar. , 2021, Bioresource technology.
[37] B. Ravindran,et al. Production and beneficial impact of biochar for environmental application: A comprehensive review. , 2021, Bioresource technology.
[38] V. Salvadó,et al. Valorisation of Pine Cone as an Efficient Biosorbent for the Removal of Pb(II), Cd(II), Cu(II), and Cr(VI) , 2021, Adsorption Science & Technology.
[39] I. Ali,et al. Surface decoration and characterization of solar driven biochar for the removal of toxic aromatic pollutant , 2021 .
[40] Asheesh K. Singh,et al. Biochar-Swine Manure Impact on Soil Nutrients and Carbon Under Controlled Leaching Experiment Using a Midwestern Mollisols , 2021, Frontiers in Environmental Science.
[41] P. Mondal,et al. Catalytic pyrolysis of pine needles with nickel doped gamma-alumina: Reaction kinetics, mechanism, thermodynamics and products analysis , 2021, Journal of Cleaner Production.
[42] Shribalaji Shenbagaraj,et al. Gasification of food waste in supercritical water: An innovative synthesis gas composition prediction model based on Artificial Neural Networks , 2021 .
[43] Qibin Li,et al. Preparation of biochar and biochar composites and their application in a Fenton-like process for wastewater decontamination: A review. , 2021, The Science of the total environment.
[44] Hua-jun Huang,et al. An overview on engineering the surface area and porosity of biochar. , 2020, The Science of the total environment.
[45] Sarthak Gupta,et al. Latest trends in heavy metal removal from wastewater by biochar based sorbents , 2020 .
[46] R. Agrawal,et al. Prioritization of barriers to energy generation using pine needles to mitigate climate change: Evidence from India , 2020 .
[47] Nada S Al-Kadhi. Removal of Fluorescein Dye from Aqueous Solutions Using Natural and Chemically Treated Pine Sawdust , 2020, International journal of analytical chemistry.
[48] Babu Cadiam Mohan,et al. Biochar industry to circular economy. , 2020, The Science of the total environment.
[49] A. Khelfa,et al. Microwave-Assisted Pyrolysis of Pine Wood Sawdust Mixed with Activated Carbon for Bio-Oil and Bio-Char Production , 2020, Processes.
[50] Juan F. Pérez,et al. Effect of main solid biomass commodities of patula pine on biochar properties produced under gasification conditions , 2020 .
[51] N. Kaya,et al. Investigation of effectiveness of pine cone biochar activated with KOH for methyl orange adsorption and CO2 capture , 2020 .
[52] A. Sharma,et al. Characterization, thermal and kinetic analysis of Pinusroxburghii , 2020, Environment, Development and Sustainability.
[53] J. D. Houck,et al. Catalytic HTL‐derived biochar and sol‐gel synthesized (Mn, Ti)‐oxides for asymmetric supercapacitors , 2020, International Journal of Energy Research.
[54] T. Kuppens,et al. A comparative techno-economic assessment of biochar production from different residue streams using conventional and microwave pyrolysis. , 2020, Bioresource technology.
[55] A. Sharma,et al. Performance analysis of a medium-scale downdraft gasifier using Lantana camera biomass as feeding material , 2020 .
[56] Ankit Modi,et al. Assessment of pine cone derived activated carbon as an adsorbent in defluoridation , 2020, SN Applied Sciences.
[57] D. Mohan,et al. Batch and Continuous Fixed-Bed Lead Removal Using Himalayan Pine Needle Biochar: Isotherm and Kinetic Studies , 2020, ACS omega.
[58] Y. Yang,et al. Temperature and emissivity measurements from combustion of pine wood, rice husk and fir wood using flame emission spectrum , 2020 .
[59] J. Maroušek,et al. Advances in nutrient management make it possible to accelerate biogas production and thus improve the economy of food waste processing , 2020, Energy Sources, Part A: Recovery, Utilization, and Environmental Effects.
[60] S. Lam,et al. Valorization of biomass waste to engineered activated biochar by microwave pyrolysis: Progress, challenges, and future directions , 2020 .
[61] E. Eddings,et al. Carbon Nanofibers Prepared from Solar Pyrolysis of Pinewood as Binder-free Electrodes for Flexible Supercapacitors , 2020, Cell Reports Physical Science.
[62] İ. Şentürk,et al. Highly efficient removal from aqueous solution by adsorption of Maxilon Red GRL dye using activated pine sawdust , 2020, Korean Journal of Chemical Engineering.
[63] I. Anastopoulos,et al. Oxidized biochar obtained from pine needles as a novel adsorbent to remove caffeine from aqueous solutions , 2020 .
[64] Sherif Fakher,et al. High pressure-high temperature carbon dioxide adsorption to shale rocks using a volumetric method , 2020 .
[65] Dengyu Chen,et al. Upgrading of bio-oil via solar pyrolysis of the biomass pretreated with aqueous phase bio-oil washing, solar drying, and solar torrefaction. , 2020, Bioresource technology.
[66] H. Ozel,et al. Adsorption behaviors of crystal violet from aqueous solution using Anatolian black pine (Pinus nigra Arnold.): kinetic and equilibrium studies , 2020, Separation Science and Technology.
[67] Yongping Yang,et al. Selective production of monocyclic aromatic hydrocarbons from ex situ catalytic fast pyrolysis of pine over the HZSM-5 catalyst with calcium formate as a hydrogen source , 2020 .
[68] C. Marculescu,et al. Investigation of microwave-assisted pyrolysis of biomass with char in a rectangular waveguide applicator with built-in phase-shifting , 2020 .
[69] E. Kavci,et al. Malachite green adsorption onto modified pine cone: Isotherms, kinetics and thermodynamics mechanism , 2020 .
[70] I. Anastopoulos,et al. Synthesis and characterization of a novel Fe3O4-loaded oxidized biochar from pine needles and its application for uranium removal. Kinetic, thermodynamic, and mechanistic analysis. , 2019, Journal of environmental management.
[71] Jun Zhang,et al. The role of biochar in organic waste composting and soil improvement: A review. , 2019, Waste management.
[72] I. Anastopoulos,et al. Copper Adsorption by Magnetized Pine-Needle Biochar , 2019, Processes.
[73] M. Stitou,et al. Adsorption of an anionic dye (Congo red) from aqueous solutions by pine bark , 2019, Scientific Reports.
[74] M. Al-Hindi,et al. Equilibrium and kinetic studies on adsorption of chromium(VI) onto pine-needle-generated activated carbon , 2019, SN Applied Sciences.
[75] Stanislav O. Barskov,et al. Torrefaction of biomass: A review of production methods for biocoal from cultured and waste lignocellulosic feedstocks , 2019, Renewable Energy.
[76] V. Chintala,et al. Utilization of biomass-derived pyro-oils in compression ignition (CI) engines – Recent developments , 2019, Energy Sources, Part A: Recovery, Utilization, and Environmental Effects.
[77] Shizong Wang,et al. Preparation, modification and environmental application of biochar: A review , 2019, Journal of Cleaner Production.
[78] G. Flamant,et al. Influence of pellet size on product yields and syngas composition during solar-driven high temperature fast pyrolysis of biomass , 2019, Journal of Analytical and Applied Pyrolysis.
[79] R. Dong,et al. Role of Nutrient-Enriched Biochar as a Soil Amendment during Maize Growth: Exploring Practical Alternatives to Recycle Agricultural Residuals and to Reduce Chemical Fertilizer Demand , 2019, Sustainability.
[80] Yingjie Dai,et al. The adsorption, regeneration and engineering applications of biochar for removal organic pollutants: A review. , 2019, Chemosphere.
[81] Shiping Jin,et al. Investigation of biomass (pine wood) gasification: Experiments and Aspen Plus simulation , 2019, Energy Science & Engineering.
[82] Han Hu,et al. Synthesis of Biomass-Derived Nitrogen-Doped Porous Carbon Nanosheests for High-Performance Supercapacitors , 2019, ACS Sustainable Chemistry & Engineering.
[83] Seok‐Young Oh,et al. Factors affecting the sorption of halogenated phenols onto polymer/biomass-derived biochar: Effects of pH, hydrophobicity, and deprotonation. , 2019, Journal of environmental management.
[84] L. Ding,et al. Effect of torrefaction on pinewood pyrolysis kinetics and thermal behavior using thermogravimetric analysis. , 2019, Bioresource technology.
[85] Tuoping Hu,et al. Selective adsorption and removal ability of pine needle-based activated carbon towards Al(III) from La(III) , 2019, Journal of Dispersion Science and Technology.
[86] K. Vijayaraghavan. Recent advancements in biochar preparation, feedstocks, modification, characterization and future applications , 2019, Environmental Technology Reviews.
[87] D. Sinha,et al. Pine Cone biomass as an efficient precursor for the synthesis of activated biocarbon for adsorption of anionic dye from aqueous solution: Isotherm, kinetic, thermodynamic and regeneration studies , 2018, Sustainable Chemistry and Pharmacy.
[88] A. Al-Dujaili,et al. Phenol adsorption on biochar prepared from the pine fruit shells: Equilibrium, kinetic and thermodynamics studies. , 2018, Journal of environmental management.
[89] I. Savva,et al. Uranium(VI) binding by pine needles prior and after chemical modification , 2018, Journal of Radioanalytical and Nuclear Chemistry.
[90] F. Zhang,et al. Pyrolysis/gasification of pine sawdust biomass briquettes under carbon dioxide atmosphere: Study on carbon dioxide reduction (utilization) and biochar briquettes physicochemical properties. , 2018, Bioresource technology.
[91] V. Chintala,et al. Solar thermal pyrolysis of non-edible seeds to biofuels and their feasibility assessment , 2017 .
[92] Jianwei Ren,et al. Modified Pine Cone for Dye Pollutants Removal from Aqueous solution , 2017 .
[93] Lin-zhang Yang,et al. Carboxylic acid functionalized sesame straw: A sustainable cost-effective bioadsorbent with superior dye adsorption capacity. , 2017, Bioresource technology.
[94] Hanping Mao,et al. A review of catalytic microwave pyrolysis of lignocellulosic biomass for value-added fuel and chemicals. , 2017, Bioresource technology.
[95] K. Lian,et al. Polyoxometalate modified pine cone biochar carbon for supercapacitor electrodes , 2017 .
[96] N. M. Nor,et al. Biochars as Potential Adsorbers of CH4, CO2 and H2S , 2017 .
[97] Dengyu Chen,et al. Pyrolysis polygeneration of pine nut shell: Quality of pyrolysis products and study on the preparation of activated carbon from biochar. , 2016, Bioresource technology.
[98] C. A. Rodrigues,et al. Adsorption of rhodamine B and methylene blue dyes using waste of seeds of Aleurites Moluccana, a low cost adsorbent , 2016 .
[99] Gilles Flamant,et al. Product distribution from solar pyrolysis of agricultural and forestry biomass residues , 2016 .
[100] Janusz A. Kozinski,et al. Biochar as an Exceptional Bioresource for Energy, Agronomy, Carbon Sequestration, Activated Carbon and Specialty Materials , 2016 .
[101] Jitae Kim,et al. Acid activation pine cone waste at differences temperature and selective removal of Pb2+ ions in water , 2016 .
[102] M. Martín-Lara,et al. Physico-chemical characterization of pine cone shell and its use as biosorbent and fuel. , 2015, Bioresource technology.
[103] M. E. Sánchez,et al. Assessment of sustainable biochar production for carbon abatement from vineyard residues , 2015 .
[104] Hung‐Suck Park,et al. Arsenic(III) removal from aqueous solution by raw and zinc-loaded pine cone biochar: equilibrium, kinetics, and thermodynamics studies , 2015, International Journal of Environmental Science and Technology.
[105] Ayesha Khan,et al. Adsorption of Reactive Black-5 by Pine Needles Biochar Produced Via Catalytic and Non-catalytic Pyrolysis , 2015 .
[106] Y. Ok,et al. Organic and inorganic contaminants removal from water with biochar, a renewable, low cost and sustainable adsorbent--a critical review. , 2014, Bioresource technology.
[107] Jae-Young Kim,et al. Influence of pyrolysis temperature on physicochemical properties of biochar obtained from the fast pyrolysis of pitch pine (Pinus rigida). , 2012, Bioresource technology.
[108] W. Prins,et al. Combustion Kinetics of Char Obtained by Flash Pyrolysis of Pine Wood , 1998 .
[109] Archna Narula,et al. Production and beneficial impact of biochar for environmental application: A review on types of feedstocks, chemical compositions, operating parameters, techno-economic study, and life cycle assessment , 2023, Fuel.
[110] C. Snape,et al. Effect of process variables on producing biocoals by hydrothermal carbonisation of pine Kraft lignin at low temperatures , 2022, Fuel.
[111] P. Mondal,et al. Biofuels production from pine needles via pyrolysis: Process parameters modeling and optimization through combined RSM and ANN based approach , 2022, Fuel.
[112] Wei-hsin Chen,et al. Biomass torrefaction: An overview of process and technology assessment based on global readiness level , 2022, Fuel.
[113] M. Gope,et al. Removal of heavy metals from industrial effluents by using biochar , 2021 .
[114] Hwai Chyuan Ong,et al. Progress in biomass torrefaction: Principles, applications and challenges , 2021 .
[115] H. Esmaeili,et al. Magnetically modified activated carbon prepared from pine cones for treatment of wastewater containing heavy metals , 2020 .
[116] L. Kun,et al. Cr ( VI ) removal from wastewater using molded masson pine needles , 2020 .
[117] A. Amouei,et al. Removal of cefixime from aqueous solutions by the biosorbent prepared from pine cones: kinetic and isotherm studies , 2020, DESALINATION AND WATER TREATMENT.
[118] A. Maity,et al. Competitive adsorption of ternary dye mixture using pine cone powder modified with β-cyclodextrin , 2017 .
[119] AUSTRALIAN PINE CONES-BASED ACTIVATED CARBON FOR ADSORPTION OF COPPER IN AQUEOUS SOLUTION MUSLIM , 2017 .