Harnessing marine biomass for sustainable fuel production through pyrolysis to support United Nations' Sustainable Development Goals
暂无分享,去创建一个
[1] A. Dias,et al. Overview on biofuels production in a seaweed biorefinery. , 2023, The Science of the total environment.
[2] J. Lanoisellé,et al. Biofuel Production from Seaweeds: A Comprehensive Review , 2022, Energies.
[3] P. Show,et al. Advancement pathway of biochar resources from macroalgae biomass: A review , 2022, Biomass and Bioenergy.
[4] A. Osman,et al. Seaweed for climate mitigation, wastewater treatment, bioenergy, bioplastic, biochar, food, pharmaceuticals, and cosmetics: a review , 2022, Environmental Chemistry Letters.
[5] Daniel C W Tsang,et al. Waste-derived biochar for water pollution control and sustainable development , 2022, Nature Reviews Earth & Environment.
[6] A. Al-Muhtaseb,et al. Algal biomass valorization for biofuel production and carbon sequestration: a review , 2022, Environmental Chemistry Letters.
[7] A. Miljković,et al. Assessing the volatile composition of seaweed (Laminaria digitata) suspensions as function of thermal and mechanical treatments , 2022, LWT.
[8] Hwai Chyuan Ong,et al. Microalgae biomass as a sustainable source for biofuel, biochemical and biobased value-added products: An integrated biorefinery concept , 2022, Fuel.
[9] A comprehensive review on pyrolysis of E-waste and its sustainability , 2021, Journal of Cleaner Production.
[10] Young‐Kwon Park,et al. Sustainable Valorization of Algae Biomass via Thermochemical Processing Route: An Overview. , 2021, Bioresource technology.
[11] O. Mašek,et al. A state-of-the-art review on algae pyrolysis for bioenergy and biochar production. , 2021, Bioresource technology.
[12] M. M. Ramirez-Corredores,et al. Overview and technology opportunities for thermochemically-produced bio-blendstocks , 2021 .
[13] Jianglong Yu,et al. Role of microwave during microwave-assisted catalytic reforming of guaiacol, syringolbio-oil as model compounds , 2021 .
[14] Chiu-Yue Lin,et al. Optimization of Hydrolysis-Acidogenesis Phase of Swine Manure for Biogas Production Using Two-Stage Anaerobic Fermentation , 2021, Processes.
[15] A. Al-Muhtaseb,et al. Conversion of biomass to biofuels and life cycle assessment: a review , 2021, Environmental Chemistry Letters.
[16] M. A. Palazzolo,et al. Microbial lipid biosynthesis from lignocellulosic biomass pyrolysis products. , 2021, Biotechnology advances.
[17] P. Lopez-Sanchez,et al. Macroalgae suspensions prepared by physical treatments: Effect of polysaccharide composition and microstructure on the rheological properties , 2021 .
[18] Jo‐Shu Chang,et al. Microalgae: The Future Supply House of Biohydrogen and Biogas , 2021, Frontiers in Energy Research.
[19] Jo‐Shu Chang,et al. Microalgae for biofuels, wastewater treatment and environmental monitoring , 2021, Environmental Chemistry Letters.
[20] A. Harvey,et al. Microalgae for biofuels: A review of thermochemical conversion processes and associated opportunities and challenges , 2021 .
[21] P. Show,et al. Microalgae Cultivation in Palm Oil Mill Effluent (POME) Treatment and Biofuel Production , 2021, Sustainability.
[22] A. Khalid,et al. Recent progress on CO-rich syngas production via CO2 gasification of various wastes: A critical review on efficiency, challenges and outlook. , 2021, Environmental pollution.
[23] A. Amenaghawon,et al. Biomass pyrolysis technologies for value-added products: a state-of-the-art review , 2021, Environment, Development and Sustainability.
[24] K. Khoo,et al. Algae utilization and its role in the development of green cities. , 2020, Chemosphere.
[25] I. Volf,et al. Biorefinery of marine macroalgae into high-tech bioproducts: a review , 2020, Environmental Chemistry Letters.
[26] B. B. Uzoejinwa,et al. A state-of-the-art review on dual purpose seaweeds utilization for wastewater treatment and crude bio-oil production , 2020 .
[27] V. Lunin,et al. Template Synthesis of Porous Ceria-Based Catalysts for Environmental Application , 2020, Molecules.
[28] Vijay Kumar Garlapati,et al. Third-generation biorefineries: a sustainable platform for food, clean energy, and nutraceuticals production , 2020, Biomass Conversion and Biorefinery.
[29] P. Show,et al. Sustainability of the four generations of biofuels – A review , 2020, International Journal of Energy Research.
[30] A. Nizami,et al. A critical review of the effects of pretreatment methods on the exergetic aspects of lignocellulosic biofuels , 2020 .
[31] Hwai Chyuan Ong,et al. State of art review on conventional and advanced pyrolysis of macroalgae and microalgae for biochar, bio-oil and bio-syngas production , 2020 .
[32] P. S. Kumar,et al. Conversion of green algal biomass into bioenergy by pyrolysis. A review , 2020, Environmental Chemistry Letters.
[33] K. Pant,et al. Exploration of a novel biorefinery based on sequential hydropyrolysis and anaerobic digestion of algal biofilm: a comprehensive characterization of products for energy and chemical production , 2020 .
[34] Nishu,et al. A review on the catalytic pyrolysis of biomass for the bio-oil production with ZSM-5: Focus on structure , 2020 .
[35] A. Gonçalves,et al. A Comprehensive Review of the Nutraceutical and Therapeutic Applications of Red Seaweeds (Rhodophyta) , 2020, Life.
[36] Rui Ma,et al. Microwave pyrolysis of food waste for high-quality syngas production: Positive effects of a CO2 reaction atmosphere and insights into the intrinsic reaction mechanisms , 2020 .
[37] C. Marculescu,et al. Investigation of microwave-assisted pyrolysis of biomass with char in a rectangular waveguide applicator with built-in phase-shifting , 2020 .
[38] B. Halpern,et al. Blue Growth Potential to Mitigate Climate Change through Seaweed Offsetting , 2019, Current Biology.
[39] Luis A. Henríquez,et al. Co-culture in marine farms: macroalgae can act as chemical refuge for shell-forming molluscs under an ocean acidification scenario , 2019, Phycologia.
[40] Sara Pourkarimi,et al. Biofuel production through micro- and macroalgae pyrolysis – A review of pyrolysis methods and process parameters , 2019, Journal of Analytical and Applied Pyrolysis.
[41] T. Mathimani,et al. A review on bioenergy and bioactive compounds from microalgae and macroalgae-sustainable energy perspective , 2019, Journal of Cleaner Production.
[42] R. Meehan,et al. Microwave pyrolysis of Laminaria digitata to produce unique seaweed-derived bio-oils , 2019, Biomass and Bioenergy.
[43] U. Hamm,et al. Bioeconomy from experts’ perspectives – Results of a global expert survey , 2019, PloS one.
[44] A. Lappas,et al. Catalyst deactivation, ash accumulation and bio-oil deoxygenation during ex situ catalytic fast pyrolysis of biomass in a cascade thermal-catalytic reactor system , 2019, Fuel Processing Technology.
[45] Cun-wen Wang,et al. Pyrolysis of microalgae: A critical review , 2019, Fuel Processing Technology.
[46] Wei Chen,et al. Co-pyrolysis of microalgae and plastic: Characteristics and interaction effects. , 2019, Bioresource technology.
[47] Daniel C W Tsang,et al. Microwave-assisted low-temperature hydrothermal treatment of red seaweed (Gracilaria lemaneiformis) for production of levulinic acid and algae hydrochar. , 2019, Bioresource technology.
[48] S. Sim,et al. Performance and potential appraisal of various microalgae as direct combustion fuel. , 2019, Bioresource technology.
[49] A. Lappas,et al. First pilot scale study of basic vs acidic catalysts in biomass pyrolysis: Deoxygenation mechanisms and catalyst deactivation , 2018, Applied Catalysis B: Environmental.
[50] Arash Tahmasebi,et al. A review on the production of nitrogen-containing compounds from microalgal biomass via pyrolysis. , 2018, Bioresource technology.
[51] L. Pereira. Seaweeds as Source of Bioactive Substances and Skin Care Therapy—Cosmeceuticals, Algotheraphy, and Thalassotherapy , 2018, Cosmetics.
[52] Audrey Moores,et al. Nanocellulose, a Versatile Green Platform: From Biosources to Materials and Their Applications. , 2018, Chemical reviews.
[53] B. B. Uzoejinwa,et al. Co-pyrolysis of macroalgae and lignocellulosic biomass , 2018, Journal of Thermal Analysis and Calorimetry.
[54] Tuong-Van Nguyen,et al. Techno-economic analysis of polygeneration systems based on catalytic hydropyrolysis for the production of bio-oil and fuels , 2018, Energy Conversion and Management.
[55] Shiwen Fang,et al. Catalytic characteristics of the fast pyrolysis of microalgae over oil shale: Analytical Py-GC/MS study , 2018, Renewable Energy.
[56] Ribhu Gautam,et al. Non-catalytic fast pyrolysis and catalytic fast pyrolysis of Nannochloropsis oculata using Co-Mo/γ-Al2O3 catalyst for valuable chemicals , 2018, Algal Research.
[57] L. Hasselström,et al. The impact of seaweed cultivation on ecosystem services - a case study from the west coast of Sweden. , 2018, Marine pollution bulletin.
[58] R. Mamat,et al. An overview of marine macroalgae as bioresource , 2018, Renewable and Sustainable Energy Reviews.
[59] Haiping Yang,et al. Influence of Biochar Addition on Nitrogen Transformation during Copyrolysis of Algae and Lignocellulosic Biomass. , 2018, Environmental science & technology.
[60] Sankar Bhattacharya,et al. Quality of bio-oil from catalytic pyrolysis of microalgae Chlorella vulgaris , 2018, Fuel.
[61] A. Zouboulis,et al. Cultivation, characterization, and properties of Chlorella vulgaris microalgae with different lipid contents and effect on fast pyrolysis oil composition , 2018, Environmental Science and Pollution Research.
[62] A. Bridgwater,et al. Intermediate pyrolysis of organic fraction of municipal solid waste and rheological study of the pyrolysis oil for potential use as bio-bitumen , 2018, Journal of Cleaner Production.
[63] O. Serrano,et al. Sequestration of macroalgal carbon: the elephant in the Blue Carbon room , 2018, Biology Letters.
[64] B. B. Uzoejinwa,et al. Co-pyrolysis of biomass and waste plastics as a thermochemical conversion technology for high-grade biofuel production: Recent progress and future directions elsewhere worldwide , 2018 .
[65] Zhi-xia He,et al. A comparative study on the quality of bio-oil derived from green macroalga Enteromorpha clathrata over metal modified ZSM-5 catalysts. , 2018, Bioresource technology.
[66] R. Luque,et al. A review on sustainable microalgae based biofuel and bioenergy production: Recent developments , 2018 .
[67] Hwai Chyuan Ong,et al. Biochar production from microalgae cultivation through pyrolysis as a sustainable carbon sequestration and biorefinery approach , 2018, Clean Technologies and Environmental Policy.
[68] G. Bollas,et al. Two-stage catalytic fast hydropyrolysis of biomass for the production of drop-in biofuel , 2018 .
[69] Hamed Abedini Najafabadi,et al. A review on bio-fuel production from microalgal biomass by using pyrolysis method , 2018 .
[70] Hwai Chyuan Ong,et al. Recent developments on algal biochar production and characterization. , 2017, Bioresource technology.
[71] Billie Yan Zhang Hiew,et al. Multistage optimizations of slow pyrolysis synthesis of biochar from palm oil sludge for adsorption of lead. , 2017, Bioresource technology.
[72] A. Tavasoli,et al. Catalytic upgrading of bio-products derived from pyrolysis of red macroalgae Gracilaria gracilis with a promising novel micro/mesoporous catalyst. , 2017, Bioresource technology.
[73] B. Wang,et al. Catalytic hydropyrolysis and co-hydropyrolysis of algae and used engine oil for the production of hydrocarbon-rich fuel , 2017 .
[74] Thomas Wichard,et al. Offshore macroalgae biomass for bioenergy production: Environmental aspects, technological achievements and challenges , 2017 .
[75] E. Lester,et al. Microwave-enhanced pyrolysis of macroalgae and microalgae for syngas production. , 2017, Bioresource technology.
[76] Lai Yee Lee,et al. Biochar potential evaluation of palm oil wastes through slow pyrolysis: Thermochemical characterization and pyrolytic kinetic studies. , 2017, Bioresource technology.
[77] Muhammad Mohtasheemul Hasan,et al. ALGAE AS NUTRITION, MEDICINE AND COSMETIC: THE FORGOTTEN HISTORY, PRESENT STATUS AND FUTURE TRENDS , 2017 .
[78] J. Brodie,et al. A review of the bladed Bangiales (Rhodophyta) in China: history, culture and taxonomy , 2017 .
[79] Jiaping Wu,et al. Nutrient removal from Chinese coastal waters by large-scale seaweed aquaculture , 2017, Scientific Reports.
[80] Jiaping Wu,et al. Can Seaweed Farming Play a Role in Climate Change Mitigation and Adaptation? , 2017, Front. Mar. Sci..
[81] B. Hameed,et al. Recent progress on biomass co-pyrolysis conversion into high-quality bio-oil. , 2016, Bioresource technology.
[82] A. Tavasoli,et al. Promotion of hydrogen-rich gas and phenolic-rich bio-oil production from green macroalgae Cladophora glomerata via pyrolysis over its bio-char. , 2016, Bioresource technology.
[83] H. Woo,et al. Fast pyrolysis of Saccharina japonica alga in a fixed-bed reactor for bio-oil production , 2016 .
[84] K. Ahn,et al. Characteristics of biochar derived from marine macroalgae and fabrication of granular biochar by entrapment in calcium-alginate beads for phosphate removal from aqueous solution. , 2016, Bioresource technology.
[85] Rui Li,et al. Catalytic hydroprocessing of microalgae-derived biofuels: a review , 2016 .
[86] Xiaoyi Yang,et al. Co-pyrolysis of microalgae and sewage sludge: Biocrude assessment and char yield prediction , 2016 .
[87] Yafei Shen,et al. By-products recycling for syngas cleanup in biomass pyrolysis – An overview , 2016 .
[88] A. Sanna,et al. Catalytic pyrolysis of Tetraselmis and Isochrysis microalgae by nickel ceria based catalysts for hydrocarbon production , 2016 .
[89] M. Ni,et al. Effect of Operating Parameters and Moisture Content on Municipal Solid Waste Pyrolysis and Gasification , 2016 .
[90] Janusz A. Kozinski,et al. Biochar as an Exceptional Bioresource for Energy, Agronomy, Carbon Sequestration, Activated Carbon and Specialty Materials , 2016 .
[91] J. Sahu,et al. Effect of process parameters on production of biochar from biomass waste through pyrolysis: A review , 2016 .
[92] H. Masjuki,et al. Macroalgae and microalgae as a potential source for commercial applications along with biofuels production: A biorefinery approach , 2016 .
[93] K. Iisa,et al. In Situ and ex Situ Catalytic Pyrolysis of Pine in a Bench-Scale Fluidized Bed Reactor System , 2016 .
[94] H. Woo,et al. Fast pyrolysis of macroalga Saccharina japonica in a bubbling fluidized-bed reactor for bio-oil production , 2015 .
[95] Xin Wang,et al. Co-pyrolysis characteristics of microalgae Isochrysis and Chlorella: Kinetics, biocrude yield and interaction. , 2015, Bioresource technology.
[96] Haji Hassan Masjuki,et al. Feasibility of bioethanol and biobutanol as transportation fuel in spark-ignition engine: a review , 2015 .
[97] Paul Chen,et al. Fast microwave-assisted catalytic co-pyrolysis of microalgae and scum for bio-oil production , 2015 .
[98] D. Stengel,et al. Prospects and challenges for industrial production of seaweed bioactives , 2015, Journal of phycology.
[99] E. Lee,et al. Sustainable production of liquid biofuels from renewable microalgae biomass , 2015 .
[100] Jason C. Quinn,et al. Lifecycle assessment of microalgae to biofuel: Comparison of thermochemical processing pathways , 2015 .
[101] N. Marbà,et al. Macroalgae contribute to nested mosaics of pH variability in a subarctic fjord , 2015 .
[102] P. Wangikar,et al. Challenges and opportunities for microalgae‐mediated CO2 capture and biorefinery , 2015, Biotechnology and bioengineering.
[103] Binbin Jin,et al. Co-pyrolysis of microalgae and waste rubber tire in supercritical ethanol , 2015 .
[104] P. Duan,et al. Catalytic hydropyrolysis of microalgae: influence of operating variables on the formation and composition of bio-oil. , 2015, Bioresource technology.
[105] M. Francavilla,et al. Cascade approach of red macroalgae Gracilaria gracilis sustainable valorization by extraction of phycobiliproteins and pyrolysis of residue. , 2015, Bioresource technology.
[106] R. H. Venderbosch,et al. A critical view on catalytic pyrolysis of biomass. , 2015, ChemSusChem.
[107] N. Paul,et al. Biochar from commercially cultivated seaweed for soil amelioration , 2015, Scientific Reports.
[108] A. Lali,et al. Biorefining of marine macroalgal biomass for production of biofuel and commodity chemicals , 2015 .
[109] S. Maity. Opportunities, recent trends and challenges of integrated biorefinery: Part II. , 2015 .
[110] J. Erlandson,et al. Ecology of the Kelp Highway: Did Marine Resources Facilitate Human Dispersal From Northeast Asia to the Americas? , 2015 .
[111] Manu Agarwal,et al. Retrofitting hetrotrophically cultivated algae biomass as pyrolytic feedstock for biogas, bio-char and bio-oil production encompassing biorefinery. , 2015, Bioresource technology.
[112] Susanne B. Jones,et al. Hydrothermal liquefaction of biomass: developments from batch to continuous process. , 2015, Bioresource technology.
[113] John J. Milledge,et al. Macroalgae-Derived Biofuel: A Review of Methods of Energy Extraction from Seaweed Biomass , 2014 .
[114] F. Abnisa,et al. A review on co-pyrolysis of biomass: An optional technique to obtain a high-grade pyrolysis oil , 2014 .
[115] H. Woo,et al. Production of brown algae pyrolysis oils for liquid biofuels depending on the chemical pretreatment methods , 2014 .
[116] Md. Azhar Uddin,et al. Hydrogen production from algal biomass via steam gasification. , 2014, Bioresource technology.
[117] Young‐Kwon Park,et al. Pyrolysis and co-pyrolysis of Laminaria japonica and polypropylene over mesoporous Al-SBA-15 catalyst , 2014, Nanoscale Research Letters.
[118] J. Vangronsveld,et al. Evaluation of flash and slow pyrolysis applied on heavy metal contaminated Sorghum bicolor shoots resulting from phytoremediation , 2014 .
[119] Benedetta de Caprariis,et al. Effect of Chlorella vulgaris growing conditions on bio-oil production via fast pyrolysis , 2014 .
[120] I. M. Rizwanul Fattah,et al. Comparative evaluation of performance and emission characteristics of Moringa oleifera and Palm oil based biodiesel in a diesel engine , 2014 .
[121] Tomohisa Hasunuma,et al. Co-expression of TAL1 and ADH1 in recombinant xylose-fermenting Saccharomyces cerevisiae improves ethanol production from lignocellulosic hydrolysates in the presence of furfural. , 2014, Journal of bioscience and bioengineering.
[122] Tyler L. Westover,et al. Biomass feedstocks for renewable fuel production: a review of the impacts of feedstock and pretreatment on the yield and product distribution of fast pyrolysis bio-oils and vapors , 2014 .
[123] Minghou Xu,et al. Investigation on Pyrolysis of Low Lipid Microalgae Chlorella vulgaris and Dunaliella salina , 2014 .
[124] M. Takriff,et al. Potential of the micro and macro algae for biofuel production: a brief review. , 2013 .
[125] Young-Kwon Park,et al. Comparison of biochar properties from biomass residues produced by slow pyrolysis at 500°C. , 2013, Bioresource technology.
[126] Antonio Marcilla,et al. A review of thermochemical conversion of microalgae , 2013 .
[127] R. Stahl,et al. Pyrolysis of algal biomass. , 2013 .
[128] Tanongkiat Kiatsiriroat,et al. Study of bio-oil and bio-char production from algae by slow pyrolysis , 2013 .
[129] I. Chung,et al. Installing kelp forests/seaweed beds for mitigation and adaptation against global warming: Korean Project Overview , 2013 .
[130] Haji Hassan Masjuki,et al. A study on the effects of promising edible and non-edible biodiesel feedstocks on engine performance and emissions production: A comparative evaluation , 2013 .
[131] Xiaoqian Ma,et al. The characteristic and evaluation method of fast pyrolysis of microalgae to produce syngas. , 2013, Bioresource technology.
[132] Haji Hassan Masjuki,et al. Evaluation of biodiesel blending, engine performance and emissions characteristics of Jatropha curcas methyl ester: Malaysian perspective , 2013 .
[133] Kyung A Jung,et al. Potentials of macroalgae as feedstocks for biorefinery. , 2013, Bioresource technology.
[134] P. Duan,et al. Non-catalytic hydropyrolysis of microalgae to produce liquid biofuels. , 2013, Bioresource technology.
[135] Qian Wang,et al. Compositional analysis of bio-oil derived from pyrolysis of seaweed , 2013 .
[136] Anja Oasmaa,et al. State-of-the-Art of Fast Pyrolysis in IEA Bioenergy Member Countries , 2013 .
[137] Robert C. Brown,et al. Catalytic pyrolysis of microalgae for production of aromatics and ammonia , 2013 .
[138] H. R. Sørensen,et al. Comparison of Lignin, Macroalgae, Wood, and Straw Fast Pyrolysis , 2013 .
[139] Mohammad. Rasul,et al. Biofuels Production through Biomass Pyrolysis —A Technological Review , 2012 .
[140] M. Harold,et al. Fast pyrolysis of microalgae in a falling solids reactor: Effects of process variables and zeolite catalysts , 2012 .
[141] Howard A. Chase,et al. A Review on Waste to Energy Processes Using Microwave Pyrolysis , 2012 .
[142] Mohd Ambar Yarmo,et al. A review on bio-oil production from biomass by using pyrolysis method , 2012 .
[143] Emanuele Graciosa Pereira,et al. Sustainable energy: A review of gasification technologies , 2012 .
[144] Abolghasem Shahbazi,et al. Bio-oil production and upgrading research: A review , 2012 .
[145] S. Adhikari,et al. Catalytic Pyrolysis of Biomass over H+ZSM-5 under Hydrogen Pressure , 2012 .
[146] Melanie L. Sattler,et al. Renewable Energy from Waste: Investigation of Co-pyrolysis between Sargassum Macroalgae and Polystyrene , 2012 .
[147] A. Bridgwater. Review of fast pyrolysis of biomass and product upgrading , 2012 .
[148] K. Hussain,et al. The conversion of waste polystyrene into useful hydrocarbons by microwave-metal interaction pyrolysis , 2012 .
[149] N. Paul,et al. Algal biochar: effects and applications , 2012 .
[150] S. Viamajala,et al. Comparative study of pyrolysis of algal biomass from natural lake blooms with lignocellulosic biomass. , 2011, Bioresource technology.
[151] K. Das,et al. Comparative Evaluation of Thermochemical Liquefaction and Pyrolysis for Bio-Oil Production from Microalgae , 2011 .
[152] S. Maschio,et al. Fly and bottom ashes from biomass combustion as cement replacing components in mortars production: rheological behaviour of the pastes and materials compression strength. , 2011, Chemosphere.
[153] Ger Devlin,et al. A review of recent laboratory research and commercial developments in fast pyrolysis and upgrading , 2011 .
[154] V. Strezov,et al. Properties of oil and char derived from slow pyrolysis of Tetraselmis chui. , 2011, Bioresource technology.
[155] John W. Scott,et al. Chemical properties of biocrude oil from the hydrothermal liquefaction of Spirulina algae, swine manure, and digested anaerobic sludge. , 2011, Bioresource technology.
[156] J. Clark,et al. Microwave-mediated pyrolysis of macro-algae† , 2011 .
[157] Jacob A. Moulijn,et al. Catalytic pyrolysis of microalgae to high-quality liquid bio-fuels , 2011 .
[158] S. Adhikari,et al. Production of hydrocarbon fuels from biomass using catalytic pyrolysis under helium and hydrogen environments. , 2011, Bioresource technology.
[159] Qin Chen,et al. Microwave-assisted pyrolysis of microalgae for biofuel production. , 2011, Bioresource technology.
[160] Young‐Kwon Park,et al. The characteristics of bio-oil produced from the pyrolysis of three marine macroalgae. , 2011, Bioresource technology.
[161] Su-Hwa Jung,et al. Fast pyrolysis of palm kernel shells: influence of operation parameters on the bio-oil yield and the yield of phenol and phenolic compounds. , 2010, Bioresource technology.
[162] Susanne B. Jones,et al. Macroalgae as a Biomass Feedstock: A Preliminary Analysis , 2010 .
[163] Linghong Zhang,et al. Overview of recent advances in thermo-chemical conversion of biomass. , 2010 .
[164] Keat Teong Lee,et al. A visionary and conceptual macroalgae-based third-generation bioethanol (TGB) biorefinery in Sabah, Malaysia as an underlay for renewable and sustainable development , 2010 .
[165] Philip Owende,et al. Biofuels from microalgae—A review of technologies for production, processing, and extractions of biofuels and co-products , 2010 .
[166] M. Balat,et al. Main routes for the thermo-conversion of biomass into fuels and chemicals. Part 1: Pyrolysis systems , 2009 .
[167] Z. Wen,et al. Production of Biodiesel Fuel from the Microalga Schizochytrium limacinum by Direct Transesterification of Algal Biomass , 2009 .
[168] Cedric Briens,et al. Flash pyrolysis of grape residues into biofuel in a bubbling fluid bed. , 2009 .
[169] Vladimir Strezov,et al. Thermal characterisation of microalgae under slow pyrolysis conditions , 2009 .
[170] T. Bridgeman,et al. Classification of macroalgae as fuel and its thermochemical behaviour. , 2008, Bioresource technology.
[171] Benoit Guieysse,et al. Algal-bacterial processes for the treatment of hazardous contaminants: a review. , 2006, Water research.
[172] Changyan Yang,et al. Fast pyrolysis of microalgae to produce renewable fuels , 2004 .
[173] X. Miao,et al. High yield bio-oil production from fast pyrolysis by metabolic controlling of Chlorella protothecoides. , 2004, Journal of biotechnology.
[174] Jinsong Zhou,et al. Research on biomass fast pyrolysis for liquid fuel , 2004 .
[175] C. Imada,et al. Amperometric determination of laminarin using immobilized β-1,3-glucanase , 2004 .
[176] Gokare A. Ravishankar,et al. Phytoremediation—A Novel and Promising Approach for Environmental Clean-up , 2004, Critical reviews in biotechnology.
[177] A. J. Toft,et al. A techno-economic comparison of power production by biomass fast pyrolysis with gasification and combustion , 2002 .
[178] Shaobin Wang,et al. Role of CeO2 in Ni/CeO2–Al2O3 catalysts for carbon dioxide reforming of methane , 1998 .
[179] G. Kendrick,et al. Ecological significance and commercial harvesting of drifting and beach-cast macro-algae and seagrasses in Australia: a review , 1997, Journal of Applied Phycology.
[180] A. Jensen. Present and future needs for algae and algal products , 1993, Hydrobiologia.
[181] Woong Kim,et al. Advanced thermochemical conversion of algal biomass to liquid and gaseous biofuels: A comprehensive review of recent advances , 2022, Sustainable Energy Technologies and Assessments.
[182] G. Mckay,et al. A review of pyrolysis technologies and feedstock: A blending approach for plastic and biomass towards optimum biochar yield , 2022, Renewable and Sustainable Energy Reviews.
[183] P. Show,et al. Simulation studies on microwave-assisted pyrolysis of biomass for bioenergy production with special attention on waveguide number and location , 2020 .
[184] Xuyao Jiang,et al. The interactions of algae-bacteria symbiotic system and its effects on nutrients removal from synthetic wastewater. , 2018, Bioresource technology.
[185] I. Levine. Algae: A Way of Life and Health , 2016 .
[186] A. Synytsya,et al. Cell Wall Polysaccharides of Marine Algae , 2015 .
[187] E. Fuente,et al. Conventional and microwave pyrolysis of a macroalgae waste from the Agar-Agar industry. Prospects for bio-fuel production. , 2014, Bioresource technology.
[188] Sally L. Homsy,et al. Fast pyrolysis of microalgae remnants in a fluidized bed reactor for bio-oil and biochar production. , 2013, Bioresource technology.
[189] M. Wang,et al. Microwave-induced torrefaction of rice husk and sugarcane residues , 2012 .
[190] Theodoros Damartzis,et al. Thermochemical conversion of biomass to second generation biofuels through integrated process design—A review , 2011 .
[191] Rocky de Nys,et al. Algal biochar--production and properties. , 2011, Bioresource technology.
[192] Amit K. Gupta,et al. Energy and Sustainable Development-An Indian Perspective , 2009 .
[193] J. Stachowicz,et al. Frontiers inEcology and the Environment Managing for ocean biodiversity to sustain marine ecosystem services , 2008 .
[194] M. Lahaye. Marine algae as sources of fibres: Determination of soluble and insoluble dietary fibre contents in some ‘sea vegetables’ , 1991 .