Thiago G L Brito, Fábio J R Costa, Alisson Ceccatto, Charles A N de Almeida, Abner de Siervo, Odilon D D Couto, Ingrid David Barcelos, Luiz Fernando Zagonel
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Samples were mechanically transferred under ambient conditions, consequently trapping an adsorbate layer of atmospheric molecules unintentionally between the monolayer and the substrate. To reduce the amount of adsorbates, some samples were thermally annealed. Atomic force microscopy confirmed the presence of the adsorbate layer under the TMD and its partial removal after annealing. X-ray photoelectron spectroscopy confirmed the presence of carbon species among the adsorbates even after annealing. Photoluminescence measurements show that WSe<sub>2</sub>remains optically active on ITO even after annealing. Moreover, the luminescence intensity and energy are affected by the amount of adsorbates under the WSe<sub>2</sub>monolayer. Scanning tunnelling spectroscopy reveals that the TMD monolayer is n-doped, and that its band edges form a type I band alignment with ITO. Surface potential measurements show a polarity change after annealing, indicating that polar molecules, most likely water, are being removed. This comprehensive study shows that a TCE does not quench WSe<sub>2</sub>luminescence even after a prolonged thermal annealing, although its optical and electronic properties are affected by unintentional adsorbates. 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引用次数: 0
摘要
二维(2D)材料,特别是过渡金属二卤化物(TMDCs),因其有趣的电学和光学特性而备受关注。在 TMDCs 中,WSe2 单层具有直接带隙和高激子结合能,即使在室温下也能增强光子发射和吸收。本研究探讨了 WSe2 单层机械转移到铟锡氧化物(ITO)基底时的电子和光学特性。ITO 是一种透明导电电极 (TCE),广泛应用于工业光电子领域。样品是在环境条件下进行机械转移的,因此在单层和基底之间无意中夹带了大气分子吸附层。为了减少吸附层的数量,对一些样品进行了热退火处理。原子力显微镜(AFM)证实了 TMD 下吸附层的存在以及退火后吸附层的部分去除。X 射线光电子能谱 (XPS) 证实,即使在退火后,吸附剂中仍存在碳物种。光致发光(PL)测量结果表明,即使在退火后,WSe2 在 ITO 上仍具有光学活性。此外,发光强度和能量受 WSe2 单分子层下吸附剂数量的影响。扫描隧穿光谱显示,TMD 单层为正掺杂,其带边与 ITO 形成 I 型带排列。表面电位测量显示退火后极性发生了变化,表明极性分子(很可能是水)正在被去除。这项综合研究表明,尽管 WSe2 的光学和电子特性会受到无意吸附物的影响,但即使经过长时间的热退火,TCE 也不会熄灭 WSe2 的发光。这些发现为更好地理解、控制和设计 TCE 上的二维材料异质结构提供了启示。
Investigating the impact of ITO substrates on the optical and electronic properties of WSe2monolayers.
Two-dimensional (2D) materials, particularly transition metal dichalcogenides (TMDs), have gathered significant attention due to their interesting electrical and optical properties. Among TMDs, monolayers of WSe2exhibit a direct band gap and high exciton binding energy, which enhances photon emission and absorption even at room temperature. This study investigates the electronic and optical properties of WSe2monolayers when they are mechanically transferred to indium tin oxide (ITO) substrates. ITO is a transparent conducting electrode (TCE) used in many industrial optoelectronic applications. Samples were mechanically transferred under ambient conditions, consequently trapping an adsorbate layer of atmospheric molecules unintentionally between the monolayer and the substrate. To reduce the amount of adsorbates, some samples were thermally annealed. Atomic force microscopy confirmed the presence of the adsorbate layer under the TMD and its partial removal after annealing. X-ray photoelectron spectroscopy confirmed the presence of carbon species among the adsorbates even after annealing. Photoluminescence measurements show that WSe2remains optically active on ITO even after annealing. Moreover, the luminescence intensity and energy are affected by the amount of adsorbates under the WSe2monolayer. Scanning tunnelling spectroscopy reveals that the TMD monolayer is n-doped, and that its band edges form a type I band alignment with ITO. Surface potential measurements show a polarity change after annealing, indicating that polar molecules, most likely water, are being removed. This comprehensive study shows that a TCE does not quench WSe2luminescence even after a prolonged thermal annealing, although its optical and electronic properties are affected by unintentional adsorbates. These findings provide insights for better understanding, controlling, and design of 2D material heterostructures on TCEs.
期刊介绍:
The journal aims to publish papers at the forefront of nanoscale science and technology and especially those of an interdisciplinary nature. Here, nanotechnology is taken to include the ability to individually address, control, and modify structures, materials and devices with nanometre precision, and the synthesis of such structures into systems of micro- and macroscopic dimensions such as MEMS based devices. It encompasses the understanding of the fundamental physics, chemistry, biology and technology of nanometre-scale objects and how such objects can be used in the areas of computation, sensors, nanostructured materials and nano-biotechnology.