Department of Materials Science and Engineering, Korea University, Anam-Dong, Seongbuk-Gu, Seoul 136-713, Republic of Korea.
Nanoscale. 2018 Jul 19;10(28):13531-13538. doi: 10.1039/c8nr03886d.
Nanostructured metal selenides with a variety of morphologies are crucial for fabricating porous, hollow metal-oxide nanomaterials by nanoscale Kirkendall diffusion. Herein, SnSe-SnO2 composite powders and SnSe nanospheres were synthesized via one-pot spray pyrolysis by optimizing the concentration of the Se precursor in the spray solution; these were then used to fabricate sunflower-like SnO2 and hollow SnO2 nanospheres, respectively, via nanoscale Kirkendall diffusion. Post-treatment of the SnSe-decorated SnO2 under air produced sunflower-like SnO2, in which ray and disk florets consisting of hollow nanoplates and dense nanospheres, respectively, were present. The mean diameter of the homogeneous hollow SnO2 nanospheres was 150 nm. The hollow morphology shortens the diffusion length, increasing the contact area between the electrolyte and voids and buffering large volume changes during repeated cycling. As anode materials for lithium-ion batteries, the hollow SnO2 nanospheres showed excellent cycling and rate performances. The discharge capacity of the hollow SnO2 nanospheres, after 500 cycles from 0.001 V to 3.0 V, was 1043 mA h g-1, at a current density of 3.0 A g-1. The hollow SnO2 nanospheres showed a high reversible capacity of 638 mA h g-1, even at current density as high as 10 A g-1.
具有各种形态的纳米结构金属硒化物对于通过纳米级 Kirkendall 扩散来制造多孔、空心金属氧化物纳米材料至关重要。在此,通过优化喷雾溶液中硒前体的浓度,通过一锅喷雾热解法合成了 SnSe-SnO2 复合粉末和 SnSe 纳米球,然后分别通过纳米级 Kirkendall 扩散来制造向日葵状 SnO2 和空心 SnO2 纳米球。在空气中对 SnSe 修饰的 SnO2 进行后处理,得到了由空心纳米板和密集纳米球组成的分别为射线和盘状花瓣的向日葵状 SnO2。均匀空心 SnO2 纳米球的平均直径为 150nm。空心形态缩短了扩散长度,增加了电解质与空隙之间的接触面积,并在反复循环过程中缓冲了大的体积变化。作为锂离子电池的阳极材料,空心 SnO2 纳米球表现出优异的循环和倍率性能。在 3.0A g-1 的电流密度下,从 0.001V 到 3.0V 循环 500 次后,空心 SnO2 纳米球的放电容量为 1043mAh g-1。空心 SnO2 纳米球的可逆容量高达 638mAh g-1,即使在高达 10A g-1 的电流密度下也是如此。