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一维纳米结构中的逐步纳米孔进化。

Stepwise nanopore evolution in one-dimensional nanostructures.

机构信息

Department of Materials Science and Engineering, Stanford University, Stanford, California 94305, USA.

出版信息

Nano Lett. 2010 Apr 14;10(4):1409-13. doi: 10.1021/nl100258p.

Abstract

We report that established simple lithium (Li) ion battery cycles can be used to produce nanopores inside various useful one-dimensional (1D) nanostructures such as zinc oxide, silicon, and silver nanowires. Moreover, porosities of these 1D nanomaterials can be controlled in a stepwise manner by the number of Li-battery cycles. Subsequent pore characterization at the end of each cycle allows us to obtain detailed snapshots of the distinct pore evolution properties in each material due to their different atomic diffusion rates and types of chemical bonds. Also, this stepwise characterization led us to the first observation of pore size increases during cycling, which can be interpreted as a similar phenomenon to Ostwald ripening in analogous nanoparticle cases. Finally, we take advantage of the unique combination of nanoporosity and 1D materials and demonstrate nanoporous silicon nanowires (poSiNWs) as excellent supercapacitor (SC) electrodes in high power operations compared to existing devices with activated carbon.

摘要

我们报告称,已建立的简单锂离子电池循环可以用于在各种有用的一维(1D)纳米结构内部产生纳米孔,例如氧化锌、硅和银纳米线。此外,通过锂离子电池循环的次数,可以以逐步的方式控制这些 1D 纳米材料的孔隙率。在每个循环结束时进行的后续孔特征分析使我们能够由于它们不同的原子扩散率和化学键类型,获得每种材料中独特的孔演化特性的详细快照。此外,这种逐步的特征分析使我们首次观察到在循环过程中孔径增大,这可以解释为类似于类似纳米颗粒情况下的奥斯特瓦尔德熟化的类似现象。最后,我们利用纳米多孔性和 1D 材料的独特组合,证明了与具有活性炭的现有器件相比,纳米多孔硅纳米线(poSiNWs)作为出色的超级电容器(SC)电极在高功率操作中的优势。

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