Department of Chemistry and Biochemistry, University of Texas at Austin, Austin, Texas 78712, United States.
Langmuir. 2012 Feb 7;28(5):2897-903. doi: 10.1021/la2037229. Epub 2012 Jan 20.
Here, we present the Li(+) insertion behavior of mesoporous ordered TiO(2)(B) nanoparticles (meso-TiO(2)(B)). Using presynthesized 4 nm TiO(2)(B) nanoparticles as building blocks and a commercially available ethylene glycol-propylene glycol block copolymer (P123) as a structure-directing agent, we were able to produce mesoporous structures of high-purity TiO(2)(B) with nanocrystallinity and mesopore channels ranging from 10 to 20 nm in diameter. We compared the Li(+) insertion properties of nontemplated TiO(2)(B) nanoparticles (nano-TiO(2)(B)) to meso-TiO(2)(B) via voltammetry and galvanostatic cycling and found significant increases in overall Li(+) insertion capacity for the latter. While nano-TiO(2)(B) and meso-TiO(2)(B) both show surface charging (pseudocapacitive) Li(+) insertion behavior, meso-TiO(2)(B) exhibits a higher overall capacity especially at high charge rates. We attribute this effect to higher electrode/electrolyte contact area as well as the improved electron and ion transport in meso-TiO(2)(B). In this study, we have demonstrated the influence of both nanostructuring and mesoporosity on Li(+) insertion behavior by rationally controlling the overall architecture of the TiO(2)(B) materials.
在这里,我们介绍了介孔有序 TiO(2)(B) 纳米粒子(meso-TiO(2)(B))的 Li(+)嵌入行为。我们使用预先合成的 4nm TiO(2)(B)纳米粒子作为构建块和一种市售的乙二氧基丙氧基嵌段共聚物(P123)作为结构导向剂,成功制备了具有纳米结晶度和直径为 10 至 20nm 的介孔通道的高纯 TiO(2)(B)介孔结构。我们通过伏安法和恒电流循环比较了无模板 TiO(2)(B)纳米粒子(nano-TiO(2)(B))和介孔 TiO(2)(B)的 Li(+)嵌入性能,发现后者的总 Li(+)嵌入容量有显著提高。虽然 nano-TiO(2)(B)和 meso-TiO(2)(B)都表现出表面充电(赝电容)Li(+)嵌入行为,但 meso-TiO(2)(B)在高充电速率下表现出更高的总容量。我们将这种效果归因于更高的电极/电解质接触面积以及在介孔 TiO(2)(B)中改进的电子和离子传输。在这项研究中,我们通过合理控制 TiO(2)(B)材料的整体结构,证明了纳米结构和介孔性对 Li(+)嵌入行为的影响。