Sulfide all-solid-state lithium batteries(SASSLBs)with a single-crystal nickel-rich layered oxide cathode(LiNix-CoyMn_(1-x-y)O_(2),x≥0.8)are highly desirable for advanced power batteries owing to their excellent ener...Sulfide all-solid-state lithium batteries(SASSLBs)with a single-crystal nickel-rich layered oxide cathode(LiNix-CoyMn_(1-x-y)O_(2),x≥0.8)are highly desirable for advanced power batteries owing to their excellent energy density and safety.Nevertheless,the cathode material's cracking issue and its severe interfacial problem with sulfide solid electrolytes have hindered the further development.This study proposes to employ surface modification engineering to produce B-NCM cathode materials coated with boride nanostructure stabilizer in situ by utilizing NCM encapsulated with residual lithium.This approach enhances the electrochemical performance of SASSLBs by effectively inhibiting electrochemical-mechanical degradation of the NCM cathode material on cycling and reducing deleterious side reactions with the solid sulfide electrolyte.The B-NCM/LPSCl/Gr SASSLBs demonstrate impressive cycling stability,retaining 84.19%of its capacity after 500 cycles at 0.2 C,which represents a 30.13%increase vs.NCM/LPSCl/Gr.It also exhibits a specific capacity of 170.4 mAh/g during its first discharge at 0.1 C.This work demonstrates an effective surface engineering strategy for enhancing capacity and cycle life,providing valuable insights into solving interfacial problems in SASSLBs.展开更多
采用共沉淀-高温固相法制备LiNi_(0.6)Co_(0.1)Mn_(0.3)O_2锂离子正极材料,并使用X射线衍射仪(XRD)和扫描电镜(SEM)技术分别表征其结构和形貌.然后将所得LiNi_(0.6)Co_(0.1)Mn_(0.3)O_2正极材料组装成扣式电池,并表征其电化学性能,探讨...采用共沉淀-高温固相法制备LiNi_(0.6)Co_(0.1)Mn_(0.3)O_2锂离子正极材料,并使用X射线衍射仪(XRD)和扫描电镜(SEM)技术分别表征其结构和形貌.然后将所得LiNi_(0.6)Co_(0.1)Mn_(0.3)O_2正极材料组装成扣式电池,并表征其电化学性能,探讨烧结温度和锂配量对其电化学性能的影响.结果表明:所得LiNi_(0.6)Co_(0.1)Mn_(0.3)O_2正极材料的放电比容量随烧结温度的升高而增大,且在900℃时表现出最佳的电化学性能.室温下,1C倍率下,锂配量(n(Li)/n(Ni+Co+Mn)=1.09)时,正极材料的首次放电容量为143.7 m Ah/g,50次循环后,正极材料的放电比容量仍有141.3 m Ah/g,容量保持率为98.3%.展开更多
LiNi0.8Co0.1Mn0.1O2 powder was prepared by mixing LiOH·H2O and co-precipitated Ni0.8Co0.1Mn0.1(OH)2 at a molar ratio of 1:1.05, followed by sintering at different temperatures. The effects of temperature on th...LiNi0.8Co0.1Mn0.1O2 powder was prepared by mixing LiOH·H2O and co-precipitated Ni0.8Co0.1Mn0.1(OH)2 at a molar ratio of 1:1.05, followed by sintering at different temperatures. The effects of temperature on the morphology, structure and electrochemical performance were extensively studied. SEM and XRD results demonstrate that the sintering temperature has large influence on the morphology and structure and suitable temperature is very important to obtain spherical materials and suppresses the ionic distribution. The charge-discharge tests show that the electrochemical performance of LiNi0.8Co0.1Mn0.1O2 powders becomes better with the increase of temperature from 700 ℃ to 750 ℃ and higher temperature will deteriorate the performance. Although both of materials obtained at 750 ℃ and 780 ℃ demonstrate almost identical cyclic stability at 2C rate, which delivers 71.9%retention after 200 cycles, the rate performance of powder calcined at 780 ℃ is much poorer than that at 750 ℃. The XRD results demonstrate that the poor performance is ascribed to more severe ionic distribution caused by higher temperature.展开更多
采用共沉淀-高温固相法制备出Ni-Mn固溶的LiNi_(0.9)Mn_(0.1)O_2正极材料,并对材料进行ZrO_2掺杂改性,提高其性能。结合X-射线衍射(XRD)、扫描电镜(SEM)、电化学性能测试分析对LiNi_(0.9)Mn_(0.1)O_2材料性能进行表征。研究表明:掺杂能...采用共沉淀-高温固相法制备出Ni-Mn固溶的LiNi_(0.9)Mn_(0.1)O_2正极材料,并对材料进行ZrO_2掺杂改性,提高其性能。结合X-射线衍射(XRD)、扫描电镜(SEM)、电化学性能测试分析对LiNi_(0.9)Mn_(0.1)O_2材料性能进行表征。研究表明:掺杂能改善材料的电化学性能,ZrO_2掺杂量为1.5%,在25℃、2.75~4.35 V下,材料的首次放电比容量为199.8 m Ah/g,循环50次后,容量保持率为89.79%,在-20℃低温下,放电效率为71.68%。同时分析了材料内阻随放电深度的变化,确定材料电化学阻抗值的变化规律。展开更多
基金support from the National Natural Science Foundation of China(Grant No.52374407)is gratefully acknowledged.
文摘Sulfide all-solid-state lithium batteries(SASSLBs)with a single-crystal nickel-rich layered oxide cathode(LiNix-CoyMn_(1-x-y)O_(2),x≥0.8)are highly desirable for advanced power batteries owing to their excellent energy density and safety.Nevertheless,the cathode material's cracking issue and its severe interfacial problem with sulfide solid electrolytes have hindered the further development.This study proposes to employ surface modification engineering to produce B-NCM cathode materials coated with boride nanostructure stabilizer in situ by utilizing NCM encapsulated with residual lithium.This approach enhances the electrochemical performance of SASSLBs by effectively inhibiting electrochemical-mechanical degradation of the NCM cathode material on cycling and reducing deleterious side reactions with the solid sulfide electrolyte.The B-NCM/LPSCl/Gr SASSLBs demonstrate impressive cycling stability,retaining 84.19%of its capacity after 500 cycles at 0.2 C,which represents a 30.13%increase vs.NCM/LPSCl/Gr.It also exhibits a specific capacity of 170.4 mAh/g during its first discharge at 0.1 C.This work demonstrates an effective surface engineering strategy for enhancing capacity and cycle life,providing valuable insights into solving interfacial problems in SASSLBs.
文摘采用共沉淀-高温固相法制备LiNi_(0.6)Co_(0.1)Mn_(0.3)O_2锂离子正极材料,并使用X射线衍射仪(XRD)和扫描电镜(SEM)技术分别表征其结构和形貌.然后将所得LiNi_(0.6)Co_(0.1)Mn_(0.3)O_2正极材料组装成扣式电池,并表征其电化学性能,探讨烧结温度和锂配量对其电化学性能的影响.结果表明:所得LiNi_(0.6)Co_(0.1)Mn_(0.3)O_2正极材料的放电比容量随烧结温度的升高而增大,且在900℃时表现出最佳的电化学性能.室温下,1C倍率下,锂配量(n(Li)/n(Ni+Co+Mn)=1.09)时,正极材料的首次放电容量为143.7 m Ah/g,50次循环后,正极材料的放电比容量仍有141.3 m Ah/g,容量保持率为98.3%.
基金Project(2014CB643406)supported by the National Basic Research Program of China
文摘LiNi0.8Co0.1Mn0.1O2 powder was prepared by mixing LiOH·H2O and co-precipitated Ni0.8Co0.1Mn0.1(OH)2 at a molar ratio of 1:1.05, followed by sintering at different temperatures. The effects of temperature on the morphology, structure and electrochemical performance were extensively studied. SEM and XRD results demonstrate that the sintering temperature has large influence on the morphology and structure and suitable temperature is very important to obtain spherical materials and suppresses the ionic distribution. The charge-discharge tests show that the electrochemical performance of LiNi0.8Co0.1Mn0.1O2 powders becomes better with the increase of temperature from 700 ℃ to 750 ℃ and higher temperature will deteriorate the performance. Although both of materials obtained at 750 ℃ and 780 ℃ demonstrate almost identical cyclic stability at 2C rate, which delivers 71.9%retention after 200 cycles, the rate performance of powder calcined at 780 ℃ is much poorer than that at 750 ℃. The XRD results demonstrate that the poor performance is ascribed to more severe ionic distribution caused by higher temperature.
文摘采用共沉淀-高温固相法制备出Ni-Mn固溶的LiNi_(0.9)Mn_(0.1)O_2正极材料,并对材料进行ZrO_2掺杂改性,提高其性能。结合X-射线衍射(XRD)、扫描电镜(SEM)、电化学性能测试分析对LiNi_(0.9)Mn_(0.1)O_2材料性能进行表征。研究表明:掺杂能改善材料的电化学性能,ZrO_2掺杂量为1.5%,在25℃、2.75~4.35 V下,材料的首次放电比容量为199.8 m Ah/g,循环50次后,容量保持率为89.79%,在-20℃低温下,放电效率为71.68%。同时分析了材料内阻随放电深度的变化,确定材料电化学阻抗值的变化规律。