以石墨烯复合粉末为添加剂,采用一步水热法制备了一种SnS_2/GCP微米复合材料。在所得到的复合材料中,SnS_2纳米片相互缠绕组成多孔球状SnS_2颗粒,石墨烯复合粉末均匀的包裹在球状SnS_2颗粒表面。将所制备的SnS_2/GCP微米复合材料用作锂...以石墨烯复合粉末为添加剂,采用一步水热法制备了一种SnS_2/GCP微米复合材料。在所得到的复合材料中,SnS_2纳米片相互缠绕组成多孔球状SnS_2颗粒,石墨烯复合粉末均匀的包裹在球状SnS_2颗粒表面。将所制备的SnS_2/GCP微米复合材料用作锂离子电池负极材料测其电化学性能。结果显示,在0.1 A·g-1的电流密度下可逆比容量为795.6 m Ah·g-1,循环100次后比容量损失不到1%。相比于SnS_2其比容量和循环稳定性得到了明显改善,主要是由于石墨烯复合粉末的加入,不仅缓解了SnS_2颗粒在充放电过程中的团聚和体积膨胀,而且还提高了SnS_2颗粒的电导率。展开更多
5.0 vol.% graphene nanoplatelets(GNPs) and aluminum powders were mixed to prepare GNPs/Al composites via high-energy ball milling(HEBM). The mixed powders were subjected to spark plasma sintering(SPS) and subsequent h...5.0 vol.% graphene nanoplatelets(GNPs) and aluminum powders were mixed to prepare GNPs/Al composites via high-energy ball milling(HEBM). The mixed powders were subjected to spark plasma sintering(SPS) and subsequent hot extrusion. The microstructure and mechanical properties of extruded composites were investigated by X-ray photoelectron spectroscopy(XPS), transmission electron microscopy(TEM) and tensile tests. In the extruded composites, 5.0 vol.% GNPs were dispersed homogeneously and no serious GNP-Al interfacial reaction occurred. As a result, the yield strength and ultimate tensile strength of the extruded GNPs/Al composites reached 462 and 479 MPa, which were 62% and 60% higher than those of the extruded Al matrix, respectively. The enhanced mechanical properties were attributed to the effective load transfer capacity of dispersed GNPs. This demonstrated that it may be promising to introduce dispersed high-content GNPs via HEBM, SPS and hot extrusion techniques and GNP-Al interfacial reaction can be controlled.展开更多
文摘以石墨烯复合粉末为添加剂,采用一步水热法制备了一种SnS_2/GCP微米复合材料。在所得到的复合材料中,SnS_2纳米片相互缠绕组成多孔球状SnS_2颗粒,石墨烯复合粉末均匀的包裹在球状SnS_2颗粒表面。将所制备的SnS_2/GCP微米复合材料用作锂离子电池负极材料测其电化学性能。结果显示,在0.1 A·g-1的电流密度下可逆比容量为795.6 m Ah·g-1,循环100次后比容量损失不到1%。相比于SnS_2其比容量和循环稳定性得到了明显改善,主要是由于石墨烯复合粉末的加入,不仅缓解了SnS_2颗粒在充放电过程中的团聚和体积膨胀,而且还提高了SnS_2颗粒的电导率。
基金financial supports from National Key R&D Program of China (2017YFB0703103)Key Area R&D Program of Guangdong Province,China (2019B010942001)。
文摘5.0 vol.% graphene nanoplatelets(GNPs) and aluminum powders were mixed to prepare GNPs/Al composites via high-energy ball milling(HEBM). The mixed powders were subjected to spark plasma sintering(SPS) and subsequent hot extrusion. The microstructure and mechanical properties of extruded composites were investigated by X-ray photoelectron spectroscopy(XPS), transmission electron microscopy(TEM) and tensile tests. In the extruded composites, 5.0 vol.% GNPs were dispersed homogeneously and no serious GNP-Al interfacial reaction occurred. As a result, the yield strength and ultimate tensile strength of the extruded GNPs/Al composites reached 462 and 479 MPa, which were 62% and 60% higher than those of the extruded Al matrix, respectively. The enhanced mechanical properties were attributed to the effective load transfer capacity of dispersed GNPs. This demonstrated that it may be promising to introduce dispersed high-content GNPs via HEBM, SPS and hot extrusion techniques and GNP-Al interfacial reaction can be controlled.