Copyrolysis of food waste and rice husk to biochar to create a sustainable resource for soil amendment: A pilot-scale case study in Jinhua, China
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G. Pan | Xiaoyu Liu | R. Bian | Lianqing Li | S. Joseph | Xuhui Zhang | Jufeng Zheng | Yan Wang | Wenjiang Li | Xingmei Liu | S. Shan | Ying Wang | Weixing Shi | Jin-song Luo | Helen Gould
[1] M. Narayana,et al. Modeling of thermochemical conversion of waste biomass – a comprehensive review , 2021, Biofuel Research Journal.
[2] Daniel C W Tsang,et al. Roles of biochar-derived dissolved organic matter in soil amendment and environmental remediation: A critical review , 2021 .
[3] S. Turn,et al. Investigation of Biochar Production from Copyrolysis of Rice Husk and Plastic , 2021, ACS omega.
[4] G. Pan,et al. Assessing the impacts of biochar‐blended urea on nitrogen use efficiency and soil retention in wheat production , 2021, GCB Bioenergy.
[5] Subodh Kumar Maiti,et al. Biochar‐assisted eco‐restoration of coal mine degraded land to meet United Nation Sustainable Development Goals , 2021, Land Degradation & Development.
[6] A. Cowie,et al. How biochar works, and when it doesn't: A review of mechanisms controlling soil and plant responses to biochar , 2021, GCB Bioenergy.
[7] M. Gorji,et al. Application of Rice Husk Biochar for Achieving Sustainable Agriculture and Environment , 2021, Rice Science.
[8] Junguo Liu,et al. China’s food loss and waste embodies increasing environmental impacts , 2021, Nature Food.
[9] B. Ravindran,et al. Production and beneficial impact of biochar for environmental application: A comprehensive review. , 2021, Bioresource technology.
[10] G. Pan,et al. Rice Seedling Growth Promotion by Biochar Varies With Genotypes and Application Dosages , 2021, Frontiers in Plant Science.
[11] D. Seo,et al. Effect of biochar application on nitrogen use efficiency for sustainable and productive agriculture under different field crops , 2021, Journal of Plant Nutrition.
[12] G. Pan,et al. Could biochar amendment be a tool to improve soil availability and plant uptake of phosphorus? A meta-analysis of published experiments , 2021, Environmental Science and Pollution Research.
[13] Daniel C W Tsang,et al. Multifunctional applications of biochar beyond carbon storage , 2021, International Materials Reviews.
[14] M. Yan,et al. Experimental investigation on gasification of food waste in supercritical water: Effects of NaCl on syngas production and corrosion of reactor , 2021 .
[15] Wei Zheng,et al. The Effect of Different Soil Amendments on Soil Properties and on the Morphological and Physiological Characteristics of Chinese Cabbage , 2021, Journal of Soil Science and Plant Nutrition.
[16] S. Umar,et al. Efficacy of Characterized Prosopis Wood Biochar Amendments in Improving Growth, Nitrogen Use Efficiency, Nitrate Accumulation, and Mineral Content in Cabbage Genotypes , 2021 .
[17] Qizhao Lin,et al. Thermodynamics, kinetics, gas emissions and artificial neural network modeling of co-pyrolysis of sewage sludge and peanut shell , 2021 .
[18] A. Cowie,et al. Biochar in climate change mitigation , 2018, Nature Geoscience.
[19] Jechan Lee,et al. Co-pyrolysis of food waste and wood bark to produce hydrogen with minimizing pollutant emissions. , 2020, Environmental pollution.
[20] Zhang Xuhui,et al. Pyrolyzed biowastes deactivated potentially toxic metals and eliminated antibiotic resistant genes for healthy vegetable production , 2020, Journal of Cleaner Production.
[21] D. Shen,et al. Economics analysis of food waste treatment in China and its influencing factors , 2020, Frontiers of Environmental Science & Engineering.
[22] G. Pan,et al. The Water-Soluble Pool in Biochar Dominates Maize Plant Growth Promotion Under Biochar Amendment , 2020, Journal of Plant Growth Regulation.
[23] Y. Geng,et al. An overview of the municipal solid waste management modes and innovations in Shanghai, China , 2020, Environmental Science and Pollution Research.
[24] Teng Wang,et al. Preparation of biochar from food waste digestate: Pyrolysis behavior and product properties. , 2020, Bioresource technology.
[25] Changhoon Lee,et al. Characteristics of food waste: water and salinity contents , 2020 .
[26] Qiang Liu,et al. Comparative study of individual and Co-Application of biochar and wood vinegar on blueberry fruit yield and nutritional quality. , 2019, Chemosphere.
[27] C. Visvanathan,et al. Sustainable management practices of food waste in Asia: Technological and policy drivers. , 2019, Journal of environmental management.
[28] G. Pan,et al. Biochar bound urea boosts plant growth and reduces nitrogen leaching. , 2019, The Science of the total environment.
[29] Ping Chen,et al. Effects of mineral-organic fertilizer on the biomass of green Chinese cabbage and potential carbon sequestration ability in karst areas of Southwest China , 2019, Acta Geochimica.
[30] G. Mckay,et al. Food waste to biochars through pyrolysis: A review , 2019, Resources, Conservation and Recycling.
[31] Q. Hussain,et al. Biochar induced Pb and Cu immobilization, phytoavailability attenuation in Chinese cabbage, and improved biochemical properties in naturally co-contaminated soil , 2019, Journal of Soils and Sediments.
[32] Y. Xing,et al. Impacts of heavy metals and soil properties at a Nigerian e-waste site on soil microbial community. , 2019, Journal of hazardous materials.
[33] L. Sheng,et al. Study on the comprehensive utilization of city kitchen waste as a resource in China , 2017, Energy.
[34] M. P. Dorado,et al. Valorization of food waste based on its composition through the concept of biorefinery , 2018, Current Opinion in Green and Sustainable Chemistry.
[35] Kristina Overgaard Zacho,et al. Capturing uncaptured values — A Danish case study on municipal preparation for reuse and recycling of waste , 2018, Resources, Conservation and Recycling.
[36] Yong Sik Ok,et al. Impact of biochar properties on soil conditions and agricultural sustainability: A review , 2018 .
[37] G. Pan,et al. Short-term biochar manipulation of microbial nitrogen transformation in wheat rhizosphere of a metal contaminated Inceptisol from North China plain. , 2018, The Science of the total environment.
[38] G. Pan,et al. Effects of biochar on availability and plant uptake of heavy metals - A meta-analysis. , 2018, Journal of environmental management.
[39] Zongguo Wen,et al. Evaluation of flue-gas treatment technologies for municipal waste incineration: A case study in Changzhou, China , 2018 .
[40] K. Bernat,et al. Biological stability of multi-component agri-food digestates and post-digestates. , 2018, Waste management.
[41] N. O. Aguiar,et al. Influence of pyrolysis temperature on chemical and physical properties of biochar from sewage sludge , 2018 .
[42] Nengwu Zhu,et al. On site composting of food waste: A pilot scale case study in China , 2018 .
[43] Y. Chi,et al. Co-pyrolysis characteristics and kinetic analysis of organic food waste and plastic. , 2018, Bioresource technology.
[44] S. Mehmood,et al. Sugarcane bagasse-derived biochar reduces the cadmium and chromium bioavailability to mash bean and enhances the microbial activity in contaminated soil , 2018, Journal of Soils and Sediments.
[45] W. Gwenzi,et al. Synthesis and nutrient release patterns of a biochar-based N–P–K slow-release fertilizer , 2018, International Journal of Environmental Science and Technology.
[46] E. Kwon,et al. Strategic CO2 utilization for shifting carbon distribution from pyrolytic oil to syngas in pyrolysis of food waste , 2017 .
[47] En-chen Jiang,et al. The complete utilization of rice husk for production of synthesis gas , 2017 .
[48] Jie Yang,et al. Characterization, quantification and management of China's municipal solid waste in spatiotemporal distributions: A review. , 2017, Waste management.
[49] Y. Yoo,et al. Recycling Possibility of the Salty Food Waste by Pyrolysis and Water Scrubbing , 2017 .
[50] G. Pan,et al. Contribution of Soluble Minerals in Biochar to Pb2+ Adsorption in Aqueous Solutions , 2017 .
[51] Pan Genxing,et al. From biowaste treatment to novel bio-material manufacturing: biomaterial science and technology based on biomass pyrolysis. , 2017 .
[52] Eoin White,et al. An environmental analysis of options for utilising wasted food and food residue. , 2016, Journal of environmental management.
[53] G. Pan,et al. Pyrolysis of crop residues in a mobile bench-scale pyrolyser: Product characterization and environmental performance , 2016 .
[54] Huijun Zhao,et al. The influence of biochar type on long-term stabilization for Cd and Cu in contaminated paddy soils. , 2016, Journal of hazardous materials.
[55] R. Pode. Potential applications of rice husk ash waste from rice husk biomass power plant , 2016 .
[56] John L. Zhou,et al. Insight into biochar properties and its cost analysis , 2016 .
[57] Krista L. Thyberg,et al. Drivers of food waste and their implications for sustainable policy development , 2016 .
[58] Simon Shackley,et al. Competing uses for China's straw: the economic and carbon abatement potential of biochar , 2015 .
[59] M. Ni,et al. Partitioning of Heavy Metals in Municipal Solid Waste Pyrolysis, Gasification, and Incineration , 2015 .
[60] Guangming Zeng,et al. How Does Poly(hydroxyalkanoate) Affect Methane Production from the Anaerobic Digestion of Waste-Activated Sludge? , 2015, Environmental science & technology.
[61] G. Pan,et al. Enhanced rice production but greatly reduced carbon emission following biochar amendment in a metal-polluted rice paddy , 2015, Environmental Science and Pollution Research.
[62] K. Möller,et al. Chemical characterization of commercial organic fertilizers , 2015 .
[63] B. Gao,et al. Slow-release fertilizer encapsulated by graphene oxide films , 2014 .
[64] G. Pan,et al. Biochar compound fertilizer as an option to reach high productivity but low carbon intensity in rice agriculture of China , 2014 .
[65] Apostolis A. Koutinas,et al. Food waste as a valuable resource for the production of chemicals, materials and fuels. Current situation and global perspective , 2013 .
[66] G. Pan,et al. Biochar’s effect on crop productivity and the dependence on experimental conditions—a meta-analysis of literature data , 2013, Plant and Soil.
[67] G. Pan,et al. Shifting paradigms: development of high-efficiency biochar fertilizers based on nano-structures and soluble components , 2013 .
[68] J. Lehmann,et al. Corn growth and nitrogen nutrition after additions of biochars with varying properties to a temperate soil , 2012, Biology and Fertility of Soils.
[69] M. Velde,et al. A quantitative review of the effects of biochar application to soils on crop productivity using meta-analysis , 2011 .
[70] Gang Yu,et al. Influence of pesticides contamination on the emission of PCDD/PCDF to the land from open burning of corn straws. , 2011, Environmental pollution.
[71] Jin-hua Yuan,et al. The forms of alkalis in the biochar produced from crop residues at different temperatures. , 2011, Bioresource technology.
[72] Xinde Cao,et al. Properties of dairy-manure-derived biochar pertinent to its potential use in remediation. , 2010, Bioresource technology.
[73] Ramón Murillo,et al. Emissions from the combustion of gas-phase products at tyre pyrolysis , 2007 .
[74] Yuanpeng Wang,et al. The influence of soil heavy metals pollution on soil microbial biomass, enzyme activity, and community composition near a copper smelter. , 2007, Ecotoxicology and environmental safety.
[75] C. Tohyama,et al. The 2005 World Health Organization reevaluation of human and Mammalian toxic equivalency factors for dioxins and dioxin-like compounds. , 2006, Toxicological sciences : an official journal of the Society of Toxicology.