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通过离子浓度调节溶液中氮化镓纳米线的稳定且可逆光致发光

Stable and Reversible Photoluminescence from GaN Nanowires in Solution Tuning by Ionic Concentration.

作者信息

Nguyen Anh Thi, Ho Ya-Wen, Yu Wei-Cheng, Zan Hsiao-Wen, Meng Hsin-Fei, Chou Yi-Chia

机构信息

Institute of Physics, National Yang Ming Chiao Tung University, Hsinchu, 30010, Taiwan.

Department of Photonics, National Yang Ming Chiao Tung University, Hsinchu, 30010, Taiwan.

出版信息

Nanoscale Res Lett. 2021 Mar 11;16(1):45. doi: 10.1186/s11671-021-03473-7.

Abstract

We report response of photoluminescence (PL) from GaN nanowires without protection in solutions. The distinct response is not only toward pH but toward ionic concentration under same pH. The nanowires appear to be highly stable under aqueous solution with high ionic concentration and low pH value down to 1. We show that the PL has a reversible interaction with various types of acidic and salt solutions. The quantum states of nanowires are exposed to the external environment and have a direct physical interaction which depends on the anions of the acids. As the ionic concentration increases, the PL intensity goes up or down depending on the chemical species. The response results from a competition of change in surface band bending and charge transfer to redox level in solution. That of GaN films is reported for comparison as the effect of surface band bending can be neglected so that there are only slight variations in PL intensity for GaN films. Additionally, such physical interaction does not impact on the PL peaks in acids and salts, whereas there is a red shift on PL when the nanowires are in basic solution, say NH4OH, due to chemical etching occurred on the nanowires.

摘要

我们报道了未受保护的氮化镓纳米线在溶液中的光致发光(PL)响应。这种独特的响应不仅针对pH值,在相同pH值下还针对离子浓度。在离子浓度高且pH值低至1的水溶液中,纳米线似乎高度稳定。我们表明,PL与各种类型的酸性和盐溶液具有可逆相互作用。纳米线的量子态暴露于外部环境,并存在直接的物理相互作用,该相互作用取决于酸的阴离子。随着离子浓度的增加,PL强度根据化学物种的不同而升高或降低。这种响应源于表面能带弯曲变化与溶液中氧化还原能级电荷转移之间的竞争。作为对比,报道了氮化镓薄膜的情况,因为其表面能带弯曲的影响可忽略不计,所以氮化镓薄膜的PL强度只有轻微变化。此外,这种物理相互作用不会影响酸和盐中的PL峰,而当纳米线处于碱性溶液(如NH4OH)中时,由于纳米线上发生化学蚀刻,PL会出现红移。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fec/7952484/378475894131/11671_2021_3473_Fig1_HTML.jpg

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