REEs recovery from molten salt electrolytic slag: Challenges and opportunities for environmentally friendly techniques
暂无分享,去创建一个
Heng Zhong | G. Tu | Ziyan Yang | Faxin Xiao | Shu-Chen Sun
[1] K. Laatikainen,et al. The recent progress of ion exchange for the separation of rare earths from secondary resources – A review , 2023, Hydrometallurgy.
[2] Yanjiang Liu,et al. Exploring rare earth mineral recovery through characterization of riebeckite type ore in Bayan Obo , 2023, Heliyon.
[3] Gang Wang,et al. A novel model of bismuth and lead impurities removal behavior in purification of antimony metal by vacuum distillation , 2023, Vacuum.
[4] G. Hu,et al. Recovery of rare earths, lithium, and fluorine from rare earth molten salt electrolytic slag by mineral phase reconstruction combined with vacuum distillation , 2023, Separation and Purification Technology.
[5] J. Sutherland,et al. Molten salt electrolysis and room temperature ionic liquid electrochemical processes for refining rare earth metals: Environmental and economic performance comparison , 2022, Sustainable Energy Technologies and Assessments.
[6] Dachun Liu,et al. Measurement and effect of volatilization kinetic parameters in the production of high-purity zinc by vacuum distillation , 2022, Vacuum.
[7] M. Chaieb,et al. Effects of fluoride pollution on the development of the Mediterranean plant species Atractylis serratuloides Sieber ex Cass. (Asteraceae) , 2022, South African Journal of Botany.
[8] Daxin Huang,et al. Thermodynamic analysis and experimental verification of the green and efficient recycling of waste sulfur slag by airtight sulfuration-vacuum distillation , 2022, Minerals Engineering.
[9] D. Wang,et al. New Insight into Oxidative Roasting and Leaching for Ndfeb Waste , 2022, SSRN Electronic Journal.
[10] Xianping Luo,et al. Precipitation process for combined impurity removal from a magnesium sulphate-based leachate of ionic rare earth ore , 2022, Minerals Engineering.
[11] Daxin Huang,et al. Separation and recovery of tin and copper from tin refining sulfur slag using a new process of airtight sulfuration – Vacuum distillation , 2022, Journal of Cleaner Production.
[12] Xiangning Bu,et al. Resource utilization strategies for spent pot lining: a review of the current state , 2022, Separation and Purification Technology.
[13] B. Swain,et al. Assessment of bauxite residue as secondary resource for rare earth metal and valorization challenges: a perspective , 2022, Resources, Conservation & Recycling Advances.
[14] Haifang Wen,et al. Effect of roasting activation of rare earth molten salt slag on extraction of rare earth, lithium and fluorine , 2022, Journal of Rare Earths.
[15] Huiquan Li,et al. Recovery of Rare-Earth Elements from Molten Salt Electrolytic Slag by Fluorine Fixation Roasting and Leaching , 2022, Journal of Sustainable Metallurgy.
[16] I. Koyuncu,et al. A holistic approach for the recovery of rare earth elements and scandium from secondary sources under a circular economy framework - A review. , 2022, Chemosphere.
[17] Dachun Liu,et al. An innovative green process for separating and enriching tellurium from lead anode slime via vacuum gasification , 2021, Journal of Materials Research and Technology.
[18] Tian Yang,et al. One-step preparation of high purity magnesium by vacuum distillation technology , 2021 .
[19] Bin Yang,et al. Effective separation and recovery of valuable metals from high value-added lead anode slime by sustainable vacuum distillation , 2021 .
[20] L. Tian,et al. Recovery of rare earths, lithium and fluorine from rare earth molten salt electrolytic slag via fluoride sulfate conversion and mineral phase reconstruction , 2021, Minerals Engineering.
[21] Syed Sikandar Shah,et al. Biotechnological trends and market impact on the recovery of rare earth elements from bauxite residue (red mud) – A review , 2021 .
[22] Dipali,et al. Electrochemical treatment of spent NdFeB magnet in organic acid for recovery of rare earths and other metal values , 2021 .
[23] Bin Yang,et al. A selective volatilization and condensation process for extracting precious metals from noble lead , 2021 .
[24] Jinliang Wang,et al. Selective extraction of rare earths and lithium from rare earth fluoride molten-salt electrolytic slag by nitration , 2021 .
[25] N. Randhawa,et al. Energy efficient process for recovery of rare earths from spent NdFeB magnet by chlorination roasting and water leaching , 2021 .
[26] C. Young,et al. Extraction and optimization of neodymium from molten fluoride electrolysis , 2021 .
[27] E. Williams,et al. Rare earth metals from secondary sources: Review of potential supply from waste and byproducts , 2020 .
[28] Ming Xu,et al. Secondary resource curse's formation and transmission mechanism based on environmental externality theory , 2020 .
[29] P. Parhi,et al. Review of rare earth elements recovery from secondary resources for clean energy technologies: Grand opportunities to create wealth from waste , 2020 .
[30] Yunfeng Wang. Recovery of scandium and fluorine from molten salt electrolysis waste residues , 2020 .
[31] Wei Sun,et al. A novel process for silver enrichment from Kaldo smelting slag of copper anode slime by reduction smelting and vacuum metallurgy , 2020 .
[32] Wenhui Ma,et al. A novel method for extracting metal Ag and Cu from high value-added secondary resources by vacuum distillation , 2020 .
[33] B. Friedrich,et al. Separation behavior of arsenic and lead from antimony during vacuum distillation and zone refining , 2020, Journal of Materials Research and Technology.
[34] L. Fengqin,et al. Detoxification of spent cathode carbon blocks from aluminum smelters by joint controlling temperature-vacuum process , 2020 .
[35] Minhui Xiao,et al. Rare Earth Recovery from Fluoride Molten-Salt Electrolytic Slag by Borax Roasting-Hydrochloric Acid Leaching , 2020, JOM.
[36] R. Keiski,et al. Recycling and substitution of light rare earth elements, cerium, lanthanum, neodymium, and praseodymium from end-of-life applications - A review , 2019, Journal of Cleaner Production.
[37] C. Del Río,et al. Enhancing rare-earth recovery from lamp phosphor waste , 2019, Hydrometallurgy.
[38] Bin Yang,et al. A new method for separation of As–Pb alloys: Vacuum distillation-condensation , 2019, Vacuum.
[39] Fu Zhao,et al. Assessing the environmental footprint of the production of rare earth metals and alloys via molten salt electrolysis , 2018, Resources, Conservation and Recycling.
[40] G. Mudd,et al. Recycling of the rare earth elements , 2018, Current Opinion in Green and Sustainable Chemistry.
[41] Di Yuezhong,et al. Separation and Recycling of Spent Carbon Cathode Blocks in the Aluminum Industry by the Vacuum Distillation Process , 2018 .
[42] Yong Liang,et al. Extraction of rare earth elements from fluoride molten salt electrolytic slag by mineral phase reconstruction , 2018 .
[43] V. S. Rotter,et al. Assessment of element-specific recycling efficiency in WEEE pre-processing , 2017 .
[44] Bin Yang,et al. Kinetics of Pb evaporation from Pb-Sn liquid alloy in vacuum distillation , 2017 .
[45] Corby G. Anderson,et al. Rare Earths: Market Disruption, Innovation, and Global Supply Chains , 2016 .
[46] Zhi Chen,et al. Source apportionment of fluorine pollution in regional shallow groundwater at You'xi County southeast China. , 2016, Chemosphere.
[47] Chenna Rao Borra,et al. Recovery of Rare Earths and Other Valuable Metals From Bauxite Residue (Red Mud): A Review , 2016, Journal of Sustainable Metallurgy.
[48] Bin Yang,et al. Experimental investigation and modelling of phase equilibria for the Ag–Cu–Pb system in vacuum distillation , 2016 .
[49] C. Zhang,et al. Prediction of vapor–liquid equilibria for the Pb-X (X=Ag, Cu and Sn) systems in vacuum distillation using ab initio methods and Wilson equation , 2016 .
[50] Tom Van Gerven,et al. Selective recovery of rare earths from bauxite residue by combination of sulfation, roasting and leaching , 2016 .
[51] R. Nguyen,et al. China’s Rare Earth Supply Chain: Illegal Production, and Response to new Cerium Demand , 2016 .
[52] I. Burke,et al. Alkaline residues and the environment: a review of impacts, management practices and opportunities , 2016 .
[53] Archana Kumari,et al. Recovery of rare earth metals (REMs) from primary and secondary resources: a review , 2014 .
[54] Shengen Zhang,et al. Recovery of waste rare earth fluorescent powders by two steps acid leaching , 2013, Rare Metals.
[55] Tom Van Gerven,et al. Recycling of rare earths: a critical review , 2013 .
[56] D. Apelian,et al. Rare-Earth Economics: The Balance Problem , 2013 .
[57] T. Wallington,et al. Evaluating rare earth element availability: a case with revolutionary demand from clean technologies. , 2012, Environmental science & technology.
[58] C. Gupta,et al. Preparation of rare earth-silicon-iron alloy by metallothermic reduction , 1985 .
[59] Jinliang Wang,et al. Selective extraction of rare earths and lithium from rare earth fluoride molten-salt electrolytic slag by sulfation , 2021 .
[60] Tom Van Gerven,et al. Recovery of rare earths from industrial waste residues: a concise review , 2013 .
[61] Marinela Panayotova,et al. REVIEW OF METHODS FOR THE RARE EARTH METALS RECYCLING , 2012 .
[62] A. F. Fuentes,et al. Cerium extraction by metallothermic reduction using cerium oxide powder injection , 2011 .
[63] Xu Tao,et al. Formation Cause,Composition Analysis and Comprehensive Utilization of Rare Earth Solid Wastes , 2010 .
[64] M. Rabah,et al. Recyclables recovery of europium and yttrium metals and some salts from spent fluorescent lamps. , 2008, Waste management.
[65] X. Gen. Study on Recovery of Scrapped Molten Salt in RE Electrolysis , 2005 .
[66] Li Ping,et al. PHYSICOCHEMICAL STUDIES ON ELECTROWINING OF MISCHMETAL-ALUMINIUM ALLOYS WITH RECL3-KCl· NaCl*MOLTEN SALT AT LOWER TEMPERATURE , 1985 .