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通过自催化气相传输合成法在铜片上形成的氧化锌纳米棒/石墨烯混合结构

ZnO Nanorod/Graphene Hybrid-Structures Formed on Cu Sheet by Self-Catalyzed Vapor-Phase Transport Synthesis.

作者信息

Cho Hak Dong, Kim Deuk Young, Lee Jong-Kwon

机构信息

Quantum Functional Semiconductor Research Center, Dongguk University, Seoul 04620, Korea.

Division of Physics and Semiconductor Science, Dongguk University, Seoul 04620, Korea.

出版信息

Nanomaterials (Basel). 2021 Feb 10;11(2):450. doi: 10.3390/nano11020450.

Abstract

High crystalline ZnO nanorods (NRs) on Zn pre-deposited graphene/Cu sheet without graphene transfer process have been fabricated by self-catalyzed vapor-phase transport synthesis. Here, the pre-deposited Zn metal on graphene not only serves as a seed to grow the ZnO NRs, but also passivates the graphene underneath. The temperature-dependent photoluminescence spectra of the fabricated ZnO NRs reveal a dominant peak of 3.88 eV at 10 K associated with the neutral-donor bound exciton, while the redshifted peak by bandgap shrinkage with temperature and electron-lattice interactions leads a strong emission at 382 nm at room temperature. The optical absorption of the ZnO NRs/graphene hetero-nanostructure at this ultraviolet (UV) emission is then theoretically analyzed to quantify the absorption amount depending on the ZnO NR distribution. By simply covering the ZnO NR/graphene/Cu structure with the graphene/glass as a top electrode, it is observed that the current-voltage characteristic of the ZnO NR/graphene hetero-nanojunction device exhibits a photocurrent of 1.03 mA at 3 V under a light illumination of 100 μW/cm. In particular, the suggested graphene/ZnO NRs/graphene hybrid-nanostructure-based devices reveal comparable photocurrents at a bidirectional bias, which can be a promising platform to integrate 1D and 2D nanomaterials without complex patterning process for UV device applications.

摘要

通过自催化气相传输合成法,在未经石墨烯转移过程的预沉积锌的石墨烯/铜片上制备了高结晶度的氧化锌纳米棒(NRs)。在此,石墨烯上预沉积的锌金属不仅作为生长氧化锌纳米棒的种子,还钝化了下方的石墨烯。所制备的氧化锌纳米棒的温度依赖光致发光光谱显示,在10 K时与中性施主束缚激子相关的主峰为3.88 eV,而随着温度和电子-晶格相互作用导致带隙收缩而红移的峰在室温下在382 nm处产生强发射。然后从理论上分析了氧化锌纳米棒/石墨烯异质纳米结构在该紫外(UV)发射下的光吸收,以量化取决于氧化锌纳米棒分布的吸收量。通过简单地用石墨烯/玻璃作为顶电极覆盖氧化锌纳米棒/石墨烯/铜结构,观察到氧化锌纳米棒/石墨烯异质结器件的电流-电压特性在100 μW/cm的光照下,在3 V时表现出1.03 mA的光电流。特别是,所提出的基于石墨烯/氧化锌纳米棒/石墨烯混合纳米结构的器件在双向偏压下显示出可比的光电流,这可以成为一个有前途的平台,用于集成一维和二维纳米材料,而无需复杂的图案化工艺用于紫外器件应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e403/7916703/b90cdb2ca4b9/nanomaterials-11-00450-g001.jpg

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