以Fe SO4·7H2O和尿素为原料,通过水热法一步制备负极材料碳酸亚铁(FeCO3)。用XRD、SEM、恒流充放电和循环伏安测试对材料的结构、形貌和电化学性能进行分析。制备的Fe CO3为菱铁矿结构。以200 m A/g的电流在0.05-3.00 V充放电,Fe...以Fe SO4·7H2O和尿素为原料,通过水热法一步制备负极材料碳酸亚铁(FeCO3)。用XRD、SEM、恒流充放电和循环伏安测试对材料的结构、形貌和电化学性能进行分析。制备的Fe CO3为菱铁矿结构。以200 m A/g的电流在0.05-3.00 V充放电,FeCO3负极的首次放电比容量为1 146 m Ah/g,经过50次循环,放电比容量保持在559 m Ah/g。展开更多
The soft magnetic nanocomposites with equiatomic FeCo particles dispersed in Al2O3 matrix were synthesized via a sol-gel technique combined with H2 reduction method. The samples were characterized by X-ray diffraction...The soft magnetic nanocomposites with equiatomic FeCo particles dispersed in Al2O3 matrix were synthesized via a sol-gel technique combined with H2 reduction method. The samples were characterized by X-ray diffraction, transmission electron microscopy and vibrating sample magnetometer. The FeCo nanoparticles in all the samples have the typical bcc structure. With the decreasing of Al2O3 content, the mean grain size of FeCo in the nanocomposites and the saturation magnetization of the samples increase, while the coercivity of samples increases firstly and then decreases due to different magnetic mechanisms.展开更多
文摘以Fe SO4·7H2O和尿素为原料,通过水热法一步制备负极材料碳酸亚铁(FeCO3)。用XRD、SEM、恒流充放电和循环伏安测试对材料的结构、形貌和电化学性能进行分析。制备的Fe CO3为菱铁矿结构。以200 m A/g的电流在0.05-3.00 V充放电,FeCO3负极的首次放电比容量为1 146 m Ah/g,经过50次循环,放电比容量保持在559 m Ah/g。
基金Supported by the Development Project of Science and Technology of Jilin Province, China(No.20090144)
文摘The soft magnetic nanocomposites with equiatomic FeCo particles dispersed in Al2O3 matrix were synthesized via a sol-gel technique combined with H2 reduction method. The samples were characterized by X-ray diffraction, transmission electron microscopy and vibrating sample magnetometer. The FeCo nanoparticles in all the samples have the typical bcc structure. With the decreasing of Al2O3 content, the mean grain size of FeCo in the nanocomposites and the saturation magnetization of the samples increase, while the coercivity of samples increases firstly and then decreases due to different magnetic mechanisms.