1. Unidirectional growth of molybdenum dioxide nanoflakes on C-sapphire substrate via buffer layer induction.
- Author
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Wu, Di, Li, Benxuan, Wang, Zixuan, Yuan, Li, Ou, Haohui, Li, Zelong, Yi, Tianrong, Wang, Yuedong, Liu, Jidong, Hao, Qiaoyan, Weng, Xiaoliang, Zeng, Yu-Jia, Huang, Han, Ouyang, Fangping, and Zhang, Wenjing
- Subjects
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BUFFER layers , *CHEMICAL vapor deposition , *SUBSTRATES (Materials science) , *ELECTRIC conductivity , *MAGNETIC fields , *SAPPHIRES - Abstract
Unidirectional growth, a novel and promising approach, is a key method for synthesizing large-scale single crystals of ultra-thin materials. In this study, we present a unique and convenient method for the growth of molybdenum dioxide (MoO 2) nanoflakes on a c-sapphire substrate, achieving uniform orientation. Specifically, the MoO 2 (100) and MoO 2 < 02 1 ¯ > are aligned parallel to sapphire(0001) and sapphire<1 2 ¯ 10>, respectively. A crucial observation in our study is the presence of a buffer layer between the as-grown MoO 2 and c-sapphire. This buffer layer is essential in overcoming the limitation of lattice mismatch, thereby facilitating the unidirectional growth of MoO 2. The introduction of reductants, such as H 2 and sulfur vapor, is critical for the formation of this buffer layer. Electrical measurements indicate that the electrical conductivity of the as-grown MoO 2 nanoflake is approximately 3.91 × 106 S/m at 300 K, which is comparable to other metallic nanomaterials. In addition, magnetotransport measurements reveal that the as-grown MoO 2 nanoflakes exhibit a temperature-dependent linear magnetoresistance (MR) under magnetic fields. These findings not only demonstrate a method for the unidirectional growth of MoO 2 on the c-sapphire substrate but also have significant implications for the application of MoO 2 in transparent electrodes and the fabrication of integrated devices based on MoO 2. • MoO 2 nanoflakes with uniform orientation are synthesized on c-sapphire substrate through a convenient CVD method. • A buffer layer is observed between MoO 2 nanoflakes and substrate, resulting the unidirectional growth of MoO 2 nanoflakes. • The MoO 2 nanoflakes exhibit high conductivity and temperature-dependent linear magnetoresistance under magnetic fields. [ABSTRACT FROM AUTHOR]
- Published
- 2024
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