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通过反应性激光退火实现氧化铟锡的光控光电特性

Photo-engineered optoelectronic properties of indium tin oxide via reactive laser annealing.

作者信息

Hillier James Arthur, Patsalas Panos, Karfaridis Dimitrios, Camelio Sophie, Cranton Wayne, Nabok Alexei V, Mellor Christopher J, Koutsogeorgis Demosthenes C, Kalfagiannis Nikolaos

机构信息

School of Science and Technology, Nottingham Trent University, Nottingham, NG11 8NS, UK.

Department of Physics, Aristotle University of Thessaloniki, 54124, Thessaloniki, Greece.

出版信息

Sci Rep. 2022 Sep 2;12(1):14986. doi: 10.1038/s41598-022-18883-5.

Abstract

Transparent conductive oxides are appealing materials for optoelectronic and plasmonic applications as, amongst other advantages, their properties can be modulated by engineering their defects. Optimisation of this adjustment is, however, a complex design problem. This work examined the modification of the carrier transport properties of sputtered tin-doped indium oxide (ITO) via laser annealing in reactive environments. We relate the optical modifications to the structural, compositional, and electronic properties to elucidate the precise mechanisms behind the reactive laser annealing (ReLA) process. For sufficiently high laser fluence, we reveal an ambient-dependent and purely compositional modulation of the carrier concentration of ITO thin films. Hereby, we demonstrate that ReLA utilises the precise energy delivery of photonic processing to enhance the carrier mobility and finely tune the carrier concentration without significantly affecting the crystal structure. Exploitation of this phenomena may enable one to selectively engineer the optoelectronic properties of ITO, promising an alternative to the exploration of new materials for optoelectronic and photonic applications.

摘要

透明导电氧化物是用于光电子和等离子体应用的有吸引力的材料,因为除其他优点外,它们的性能可以通过设计其缺陷来调节。然而,这种调整的优化是一个复杂的设计问题。这项工作研究了在反应环境中通过激光退火对溅射的掺锡氧化铟(ITO)的载流子传输特性的改性。我们将光学改性与结构、成分和电子特性联系起来,以阐明反应性激光退火(ReLA)过程背后的确切机制。对于足够高的激光能量密度,我们揭示了ITO薄膜载流子浓度的环境依赖性和纯成分调制。据此,我们证明ReLA利用光子处理的精确能量传递来提高载流子迁移率并精细调节载流子浓度,而不会显著影响晶体结构。利用这种现象可能使人们能够选择性地设计ITO的光电子特性,有望为光电子和光子应用探索新材料提供一种替代方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9dcf/9440247/300c164ea848/41598_2022_18883_Fig1_HTML.jpg

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