Lithium-ion battery(LIB) industry seems to have met its bottle neck in cutting down producing costs even though much efforts have been put into building a complete industrial chain. Actually, manufacturing methods can...Lithium-ion battery(LIB) industry seems to have met its bottle neck in cutting down producing costs even though much efforts have been put into building a complete industrial chain. Actually, manufacturing methods can greatly affect the cost of battery production. Up to now, lithium ion battery producers still adopt manufacturing methods with cumbersome sub-components preparing processes and costly assembling procedures, which will undoubtedly elevate the producing cost. Herein, we propose a novel approach to directly assemble battery components(cathode, anode and separator) in an integrated way using electro-spraying and electro-spinning technologies. More importantly, this novel battery manufacturing method can produce LIBs in large scale, and the products show excellent mechanical strength, flexibility, thermal stability and electrolyte wettability. Additionally, the performance of the as-prepaed Li Fe PO_(4)||graphite full cell produced by this new method is comparable or even better than that produced by conventional manufacturing approach. In brief, this work provides a new promising technology to prepare LIBs with low cost and better performance.展开更多
Metal-sulfur battery,which provides considerable high energy density at a low cost,is an appealing energy-storage technology for future long-range electric vehicles and large-scale power grids.One major challenge of m...Metal-sulfur battery,which provides considerable high energy density at a low cost,is an appealing energy-storage technology for future long-range electric vehicles and large-scale power grids.One major challenge of metal-sulfur batteries is their long-term cycling stability,which is significantly deteriorated by the generation of various soluble polysulfide intermediates and the shuttling of these intermediates through the separator.Furthermore,the intrinsically sluggish reaction kinetics associated with the poor conductivity of sulfur/sulfides family causes a large polarization in cycle behavior,which further deteriorates the electrode rechargeability.To solve these problems,the research communities have spent a great amount of effort on designing smart cathodes to delicately tailor the physiochemical interaction between the sulfur hosts and polysulfides.Here,we summarize the key progress in the development of two-dimensional(2D)host materials showing advantageous tunability of their physiochemical properties through coordination control methods such as defect engineering,heteroatom doping,heterostructure,and phase and interface engineering.Accordingly,we discuss the mechanisms of polysulfide anchoring and catalyzing upon specific coordination environment in conjunction with possible structure-property relationships and theoretical analysis.This review will provide prospective fundamental guidance for future sulfur host design and beyond.展开更多
基金This work was financially supported by the National Nat-ural Science Foundation of China No.U20A20247 and 51922038.
文摘Lithium-ion battery(LIB) industry seems to have met its bottle neck in cutting down producing costs even though much efforts have been put into building a complete industrial chain. Actually, manufacturing methods can greatly affect the cost of battery production. Up to now, lithium ion battery producers still adopt manufacturing methods with cumbersome sub-components preparing processes and costly assembling procedures, which will undoubtedly elevate the producing cost. Herein, we propose a novel approach to directly assemble battery components(cathode, anode and separator) in an integrated way using electro-spraying and electro-spinning technologies. More importantly, this novel battery manufacturing method can produce LIBs in large scale, and the products show excellent mechanical strength, flexibility, thermal stability and electrolyte wettability. Additionally, the performance of the as-prepaed Li Fe PO_(4)||graphite full cell produced by this new method is comparable or even better than that produced by conventional manufacturing approach. In brief, this work provides a new promising technology to prepare LIBs with low cost and better performance.
基金support from the Science and Technology Bureau of Huangpu District(No.2020GH03)the Innovation and Technology-Fund Partnership Research Programme(No.PRP/055/21FX)+2 种基金Innovation and Technology Fund-Gong Hong Kong Technology Cooperation Funding Scheme(No.GHP/047/20GD)Guangdong-Hong Kong-Macao Joint Laboratory for Photonic-Thermal-Electrical Energy Materials and Devices(GDSTC No.2019B121205001)Kong Branch of National Precious Metals Material Engineering Research Center.
文摘Metal-sulfur battery,which provides considerable high energy density at a low cost,is an appealing energy-storage technology for future long-range electric vehicles and large-scale power grids.One major challenge of metal-sulfur batteries is their long-term cycling stability,which is significantly deteriorated by the generation of various soluble polysulfide intermediates and the shuttling of these intermediates through the separator.Furthermore,the intrinsically sluggish reaction kinetics associated with the poor conductivity of sulfur/sulfides family causes a large polarization in cycle behavior,which further deteriorates the electrode rechargeability.To solve these problems,the research communities have spent a great amount of effort on designing smart cathodes to delicately tailor the physiochemical interaction between the sulfur hosts and polysulfides.Here,we summarize the key progress in the development of two-dimensional(2D)host materials showing advantageous tunability of their physiochemical properties through coordination control methods such as defect engineering,heteroatom doping,heterostructure,and phase and interface engineering.Accordingly,we discuss the mechanisms of polysulfide anchoring and catalyzing upon specific coordination environment in conjunction with possible structure-property relationships and theoretical analysis.This review will provide prospective fundamental guidance for future sulfur host design and beyond.