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流变相法合成ZnO包覆的尖晶石LiNi_(0.5)Mn_(1.5)O_4 被引量:2
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作者 张胜利 李维 +1 位作者 宋延华 杨胜杰 《电池》 CAS CSCD 北大核心 2010年第4期205-206,共2页
以CH3COOLi、Ni(CH3COO)2和Mn(CH3COO)2为原料,用流变相法合成了正极材料ZnO包覆的Li Ni0.5Mn1.5O4。XRD测试表明:该材料为尖晶石结构。电化学性能测试表明:包覆ZnO后,Li Ni0.5Mn1.5O4在3.5~4.9 V以0.1C充放电的首次放电比容量为137.68... 以CH3COOLi、Ni(CH3COO)2和Mn(CH3COO)2为原料,用流变相法合成了正极材料ZnO包覆的Li Ni0.5Mn1.5O4。XRD测试表明:该材料为尖晶石结构。电化学性能测试表明:包覆ZnO后,Li Ni0.5Mn1.5O4在3.5~4.9 V以0.1C充放电的首次放电比容量为137.68 mAh/g,第30次循环的放电比容量为133.78 mAh/g,循环稳定性得到了改善。 展开更多
关键词 尖晶石LiNi0.5Mn1.5O4 流变相法 zno包覆
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ZnS包覆及其光致发光研究
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作者 史新宇 杨国建 +2 位作者 李剑平 孙元平 徐宝龙 《材料导报(纳米与新材料专辑)》 EI 2009年第2期132-133,共2页
应用水热法制备了立方相ZnS,通过均匀沉淀法得到ZnO包覆的ZnS颗粒。简单介绍了包覆的原理,对样品进行了XRD、SEM和光致发光光谱PL表征。结果表明,应用不同的表面活性剂可得到形貌各异的样品。
关键词 硫化锌 水热法 均匀沉淀 zno包覆 光致发光谱
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Performance of carbon-coated nano-ZnO prepared by carbonizing gel precursor as anodic material for secondary alkaline Zn batteries 被引量:3
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作者 Ke PENG Zhi-jian ZHANG +3 位作者 Ze-jun ZHAO Chao YANG Zhong-liang TIAN Yan-qing LAI 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2019年第10期2151-2159,共9页
Although carbon coating can improve the cycle life of anode for alkaline Zn batteries, the specific capacity reported is still lower compared with nanosized ZnO. Herein, carbon-coated nanosized ZnO(nano-ZnO@C) was syn... Although carbon coating can improve the cycle life of anode for alkaline Zn batteries, the specific capacity reported is still lower compared with nanosized ZnO. Herein, carbon-coated nanosized ZnO(nano-ZnO@C) was synthesized by one-step heat treatment from a gel precursor in N2. Commercial ZnO and homemade ZnO prepared similarly in air atmosphere were studied for comparison. Structure analysis displayed that both nano-ZnO@C and homemade ZnO had a porous hierarchical agglomerated architecture produced from primary nanoparticles with a diameter of approximately 100 nm as building blocks. Electrochemical performance measurements showed that nano-ZnO@C displayed the highest electrochemical activity, the lowest electrode resistance, the highest discharge capacity(622 m A·h/g), and the best cyclic stability. These properties were due to the combination of nanosized ZnO and the physical capping of carbon, which maintained the high utilization efficiency of nano-ZnO, and simultaneously prevented dendrite growth and densification of the anode. 展开更多
关键词 carbon-coated nano-zno sol-gel method porous hierarchical architecture Zn-Ni battery
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