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61.
Fe-based compounds with good environmental friendliness and high reversible capacity have attracted considerable attention as anode for lithium-ion batteries.But,similar to other transition metal oxides(TMOs),it is also affected by large volume changes and inferior kinetics during redox reactions,resulting in the destruction of the crystal structure and poor electrochemical performance.Here,Fe_3O_4/C nanospheres anchored on the two-dimensional graphene oxide as precursors are phosphated and sintered to build the multiphasic nanocomposite.XRD results confirmed the multiphasic nanocomposite composed of Fe_2O_3,Fe_3O_4 and Fe_3PO_7,which will facilitate the Li~+ diffusion.And the carbonaceous matrix will buffer the volume changes and enhance electron conduction.Consequently,the multiphasic Febased anode delivers a large specific capacity of 1086 mAh/g with a high initial Coulombic efficiency of 87% at 0.1 C.It also has excellent cycling stability and rate property,maintaining a capacity retention of~87% after 300 cycles and a high reversible capacity of 632 mAh/g at 10 C.The proposed multiphasic structure offers a new insight into improving the electrochemical properties of TMO-based anodes for advanced alkali-ion batteries.  相似文献   
62.
Numerous scientists are in the pursuit of energy storage materials with high energy and high power density by assembly of electrochemically active materials into conductive scaffolds, owing to the emerging need for next-generation energy storage devices. In this architectures, the active materials bonded to the conductive scaffold can provide a robust and free-standing structure, which is crucial to the fabrication of materials with high gravimetric capacity. Thus, hierarchical copper-cobalt-nickel ternary oxide (CuCoNi-oxide) nanowire arrays grown from copper foam were successfully fabricated as free-standing anode materials for lithium ion batteries (LIBs). CuCoNi-oxide nanowire arrays could provide more active sites owing to the hyperbranched structure, leading to a better specific capacity of 1191 mAh/g, cycle performance of 73% retention in comparison to CuO nanowire structure, which exhibited a specific capacity of 1029 mAh/g and capacity retention of 43%, respectively.  相似文献   
63.
《中国化学快报》2021,32(9):2914-2918
The silicon-based materials are promising candidates for lithium-ion batteries owing to their high energy density. However, achieving long lifespan under realistic conditions remains a challenge because of the volume expansion and low conductivity. In this work, the highly elastic cobweb-like composite materials consisted by SiO and nanofibers are designed and fabricated for high-efficient lithium storage by ball-milling & electrostatic spinning method. The reconstructed heterostructure and highly elastic nanofibers can simultaneously increase the conductivity and inhibit the “expansion effect” of silicon-based materials. The constructed electrode of n-SiO/CNF delivers an initial capacity of 1700 mAh/g, and maintains the capacities over 1000 mAh/g after 100 cycles at the current density of 500 mA/g. Meanwhile, this electrode can give an initial coulombic efficiency over 85% and maintains at 98% in the following charge/discharge processes. Furthermore, it exhibits efficient long-term electrochemical performance, maintaining the capacity at about 1000 mAh/g at a high current density of 1000 mA/g after 1000 cycles. This work could provide a promising strategy for enhancing the performance of silicon-based composite materials for practical application in lithium-ion batteries.  相似文献   
64.
锂硫电池因其较高的理论容量和对环境友好等优势被视为极具发展潜力的储能装置,但是多硫化物的穿梭效应极大地限制了锂硫电池的实际应用。本文以葡萄糖为碳源,离子液体为氮源和硫源,KCl和ZnCl2为模板剂,KOH为活化剂,通过热解工艺合成了氮硫共掺杂多孔碳(NSPC)。XPS和极性吸附实验表明N、S杂原子成功引入并且提高了碳材料对多硫化物的吸附能力,有效缓解多硫化物的穿梭效应,而较高的比表面积(1290.67 m2·g-1)有助于提高硫负载量。负载70.1wt.%的硫后(S@NSPC)作为锂硫电池的正极材料表现出了良好的电化学性能。在167.5 mA·g-1的电流密度下S@NSPC的首次放电容量为1229.2 mAh·g-1,远高于S@PC的861.6 mAh·g-1,且S@NSPC循环500圈后容量为328.1 mAh·g-1。当电流密度从3350 mA·g-1恢复至167.5 mA·g-1时,可逆容量达到首圈放电比容量的80%,几乎恢复至其初始值。  相似文献   
65.
范业鹏  罗业强  沈培康 《电化学》2021,27(4):377-387
锂硫电池的实际能量密度不高和多硫化物(LiPSs)的穿梭效应等问题严重影响了该电池的实际应用。本文通过将二维的Ti3C2Tx Mxene纳米片与碳黑/硫(CB/S)材料进行混合,制备了Ti3C2Tx-CB/S正极材料并将其涂覆在商业隔膜(PP)上,最终获得了Ti3C2Tx-CB/S-PP一体式电极并用于锂硫电池。利用Ti3C2Tx纳米片对CB/S进行修饰,不仅能提高活性物质硫的导电性,还能对扩散的LiPSs进行物理阻挡和化学吸附。而一体式电极的设计有利于提高电池的能量密度。恒流充放电测试结果表明,Ti3C2Tx-CB/S-PP电极在0.1 C电流下的初始放电容量为1028.8 mAh·g-1,高于不含Ti3C2Tx的CB/S-PP电极的896.8 mAh·g-1。Ti3C2Tx-CB/S-PP电极还展示出了比基于传统铝箔集流体的Ti3C2Tx-CB/S-Al电极更好的循环稳定性,前者在0.5 C下400圈长循环测试中的每圈衰减率为0.072%,而后者则为更高的0.10%。本文利用Ti3C2Tx-CB/S构建一体式电极的策略为实现高性能和高能量密度的锂硫电池提供了新的研究方向。  相似文献   
66.
在水热条件下,以碳球为模板合成了Mn2O3空心球,并用作锂硫电池的载硫基底材料。测试结果表明载硫量为51%的Mn2O3-S复合材料显示了较高的比容量,良好的循环稳定性和倍率性能。循环100圈后,最终可逆容量仍保持657 mA·g-1,证明该Mn2O3空心球是一种有潜力的载硫基底材料。  相似文献   
67.
通过硝酸锰和乙醇的水热反应在三聚氰胺泡棉(MF)上生成三氧化二锰颗粒,氮气下高温处理后形成锰氧化物负载碳氮三维网络结构的复合物。碳氮网络结构提高了充放电过程中材料结构的稳定性及导电性,且烧结过程中产生的孔道结构有利于锂离子传输,使得该复合材料作为负极在锂离子电池中表现出优异的充放电性能和循环稳定性。材料的比容量和循环稳定性大大提高,经500℃处理后的MnO/CNnws-500材料在160次循环后仍然保留590 m Ah·g~(-1)的比容量,达到氧化亚锰理论容量755 m Ah·g~(-1)的78%。  相似文献   
68.
MoS2 nanosheet arrays supported on hierarchical nitrogen-doped porous carbon(MoS2@C)have been synthesized by a facile hydrothermal approach combined with high-temperature calcination.The hierarchical nitrogen-doped porous carbon can serve as three-dimensional conductive frameworks to improve the electronic transport of semiconducting MoS2.When evaluated as anode material for lithium-ion batteries,the MoS2@C exhibit enhanced electrochemical performances compared with pure MoS2 nanosheets,including high capacity(1305.5 mA h g-1 at 100 mA g-1),excellent rate capability (438.4 mA h g-1 at 1000 mA g-1).The reasons for the improved electrochemical performances are explored in terms of the high electronic conductivity and the facilitation of lithium ion transport arising from the hierarchical structures of MoS2@C.  相似文献   
69.
Spherical Li-rich lithium manganese oxide(LMO) spinel material was synthesized by an ion implanted method assisted by polyalcohol doped with Niobium and Phosphate simultaneously.The material was characterized by scanning electron microscopy,X-ray diffraction and BET specific surface area analysis.The electrochemical performances were investigated with galvanostatic techniques and cyclic voltammetry.The synthesis process was investigated with TG/DSC.The results show that the lithium ion can be immersed into the pore of manganese dioxide at a low temperature with the ion implanted method.The prepared materials have a higher discharge capacity and better crystallization than those prepared by solid phase method.The doped Nb can improve the capacity of the Li-rich LMO spinel and reinforce the crystal growth along(111) and(400) planes.The crystal grains show circular and smooth morphology,which makes the specific surface area greatly decreased.Phosphate-doped LMO spinel exhibits good high-rate capacity and structure stability.The prepared Li_(1.09)Mn_(1.87)Nb_(0.031)O_(3.99)(PO_4)_(0.021)delivers a discharge capacity of 119mAhg~(-1) at 0.2C(1C=148mAg~(-1)) and 112.8 mAhg~(-1) at 10 C,the discharge capacity retention reaches 98% at 1 ℃ after 50 cycles at 25 ℃ and 94% at 55 ℃.  相似文献   
70.
Recent advances in the applications of transition metal chalcogenides/graphene (TMC/graphene) nanocomposites in future energy storage and conversion are reviewed. The synthesis processes and structures of TMC/graphene, workingpriciple of evergy energy device, and the electrochemical performances are summarized.  相似文献   
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