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自组装氧化锌纳米棒表面和本体的迁移能垒

Migration Energy Barriers for the Surface and Bulk of Self-Assembly ZnO Nanorods.

作者信息

Chang Feng-Ming, Wu Zhong-Zhe, Huang Jing-Heng, Chen Wei-Ting, Brahma Sanjaya, Lo Kuang Yao

机构信息

Department of Physics, National Cheng Kung University, Tainan 701, Taiwan.

出版信息

Nanomaterials (Basel). 2018 Oct 9;8(10):811. doi: 10.3390/nano8100811.

Abstract

Post-annealing treatment is a necessary process to create/eliminate/repair defects in self⁻assembly (SA) metal oxide by providing enough thermal energy to the O atoms to overcome the migration energy barrier in ZnO. The height of migration energy barrier is dependent on the depth from the surface, which is hard to be estimated by theoretical calculations, as well as the optical analyses. SA ZnO nanorods (ZNRs) have high surface-to-volume ratio to provide complete picture between the optical and surface properties obtained by photoluminescence (PL) and ultraviolet/X-ray photoemission spectroscopy (UPS/XPS), which is used to investigate the evolution of structure and chemical states of the surface layers to reveal mutual agreement on all observations in PL, XPS, and UPS. We demonstrate variation of the surface structure of SA-ZNRs by scanning over a range of annealing temperatures and time to regulate the structure variation of SA-ZNRs, and their optical analyses agrees well with PL, XPS and UPS, which indicates the dependence of migration energy barriers on the depth from the surface of ZNR. The results reveal the well ZNRs formed at 570 °C and the further oxidation process and the formation of hydroperoxide on the Zn-rich surface of ZNRs at 640 °C.

摘要

退火后处理是一个必要的过程,通过为氧原子提供足够的热能以克服氧化锌中迁移能垒,从而在自组装(SA)金属氧化物中产生/消除/修复缺陷。迁移能垒的高度取决于距表面的深度,这很难通过理论计算以及光学分析来估计。SA氧化锌纳米棒(ZNRs)具有高的表面积与体积比,以便通过光致发光(PL)和紫外/ X射线光电子能谱(UPS / XPS)获得光学和表面性质之间的完整情况,这用于研究表面层的结构和化学状态的演变,以揭示PL、XPS和UPS中所有观察结果之间的相互一致性。我们通过在一系列退火温度和时间范围内进行扫描来证明SA-ZNRs表面结构的变化,以调节SA-ZNRs的结构变化,并且它们的光学分析与PL、XPS和UPS很好地吻合,这表明迁移能垒取决于距ZNR表面的深度。结果揭示了在570°C下形成的良好ZNRs以及在640°C下ZNRs富锌表面上的进一步氧化过程和氢过氧化物的形成。

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