Department of Mechanical Engineering-Engineering Mechanics, Michigan Technological University, 1400 Townsend Drive, Houghton, Michigan 49931, United States.
ACS Nano. 2011 Oct 25;5(10):7805-11. doi: 10.1021/nn2029814. Epub 2011 Sep 20.
In situ electrochemical lithiation and delithiation processes inside a nanobattery consisting of an individual amorphous Si nanorod and ionic liquid were explored. Direct formation of the crystalline Li(22)Si(5) phase due to the intercalation of Li ions was observed. In addition, the role of the electrolyte-nanorod interface was examined. It was observed that the lithiation of Si nanorods is dominated by surface diffusion. Upon the delithiation process, partial decomposition of Li(22)Si(5) particles was observed which can explain the irreversible capacity loss that is generally seen in Si anodes. This study shows that the radial straining due to lithiation does not cause cracking in nanorods as small in diameter as 26 nm, whereas cracks were observed during the lithiation of 55 nm Si nanorods.
研究了由单个非晶硅纳米棒和离子液体组成的纳米电池内部的原位电化学嵌锂和脱锂过程。观察到由于锂离子的嵌入直接形成了结晶 Li(22)Si(5)相。此外,还研究了电解质-纳米棒界面的作用。结果表明,硅纳米棒的嵌锂过程主要由表面扩散控制。在脱锂过程中,观察到 Li(22)Si(5)颗粒的部分分解,这可以解释通常在硅阳极中观察到的不可逆容量损失。本研究表明,直径小至 26nm 的纳米棒由于嵌锂引起的径向应变不会导致开裂,而在 55nm 硅纳米棒的嵌锂过程中观察到了裂纹。