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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Boron-Doped Spherical Hollow-Porous Silicon Local Lattice Expansion toward a High-Performance Lithium-Ion-Battery Anode
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Boron-Doped Spherical Hollow-Porous Silicon Local Lattice Expansion toward a High-Performance Lithium-Ion-Battery Anode

机译:掺杂硼的球形空心多孔硅局部格子膨胀朝高性能锂离子电池阳极膨胀

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摘要

Silicon (Si) attracts extensive attention as the advanced anode material for lithium (Li)-ion batteries (LIBs) because of its ultrahigh Li storage capacity and suitable voltage plateau. Hollow porous structure and dopant-induced lattice expansion can enhance the cycling stability and transporting kinetics of Li ions. However, it is still difficult to synthesize the Si anode possessing these structures simultaneously by a facile method. Herein, the lightly boron (B)-doped spherical hollow-porous Si (B-HPSi) anode material for LIBs is synthesized by a facile magnesiothermic reduction from B-doped silica. B-HPSi exhibits local lattice expansion located on boundaries of refined subgrains. B atoms in Si contribute to the increase of the conductivity and the expansion of lattices. On the basis of the first-principles calculations, the B dopants induce the conductivity increase and local lattice expansion. As a result, B-HPSi electrodes exhibit a high specific capacity of similar to 1500 mAh g(-1) at 0.84 A g(-1) and maintains 93% after 150 cycles. The reversible capacities of similar to 1250, similar to 1000, and similar to 800 mAh g(-1) can be delivered at 2.1, 4.2, and 8.4 A g(-1), respectively.
机译:硅(SI)由于其超大锂储存容量和合适的电压高原,作为锂(LI)电池(Libs)的先进阳极材料吸引了广泛的关注。中空多孔结构和掺杂剂诱导的晶格膨胀可以增强Li离子的循环稳定性和输送动力学。然而,仍然难以通过容易方法同时合成具有这些结构的Si阳极。这里,通过来自B掺杂二氧化硅的容易镁还原,通过B型镁氧化物减少合成Libs的轻质硼(B)的球形空心 - 多孔Si(B-HPSI)阳极材料。 B-HPSI展示了位于精制亚葛的边界的局部格子膨胀。 SI中的B原子有助于增加电导率和格子的扩展。在第一原理计算的基础上,B掺杂剂诱导电导率增加和局部晶格膨胀。结果,B-HPSI电极具有在0.84Ag(-1)的1500mAhg(-1)的高比容量,并在150次循环后保持93%。类似于1250的可逆容量,类似于1000,类似于800mAhg(-1),可以分别在2.1,4.2和8.4Ag(-1)时递送。

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