2D Monoelements. Группа авторов

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2D Monoelements - Группа авторов

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      1 *Corresponding author: [email protected]; [email protected]

      Antimonene: A Potential 2D Material

       Shuai Liu, Tianle Zhang and Shengxue Yang*

       School of Materials Science and Engineering, Beihang University, Beijing, China

       Abstract

      Since the two-dimensional antimonene was reported, it has become the focus of theoretical research. The predicted various interesting properties have inspired many experimental scientists to confirm and better understand this material. Recent studies on the preparation and application of such material have yielded many important results. This chapter is mainly on how to produce and apply antimonene experimentally. First, the theoretically calculated fundamental characteristics of antimonene are given. Second, different preparation methods of antimonene from traditional mechanical exfoliation to other novel approaches are listed. Finally, it summarizes the potential applications in several technological fields such as optical, optoelectronic, electronic, and biomedical fields. In addition, it provides insights into further exploration of the diverse properties of antimonene, continuous updating of preparation methods, as well as further development of potential applications, and then looks ahead to the opportunities and challenges of antimonene facing in the future.

      Keywords: Antimonene, structural characteristics, band structure, preparation methods, potential applications

      Afterwards, many researchers hope to find novel 2D materials with a certain band gap. Transition metal dichalcogenides (TMDs) are also a typical class of 2D materials, these materials have tunable band gap ranging from 1.5 to 2.5 eV and some of which are semiconductors with direct band gap [3]. However, TMDs are still not very suitable for optoelectronic applications. Therefore, other groups of 2D materials have aroused interest in research. Among them, the earliest concerned and widely explored 2D material is black phosphorus (BP), which is the most stable allotrope of phosphorus. The band gap of BP can be adjusted in a large range by the number of layers to achieve light absorption from the near infrared to the visible region. BP also has a high carrier mobility of up to 103 cm2 V−1s−1, and a large on-off current ratio of 105 [4]. Therefore, it is a very promising electronic and optoelectronic materials. In addition, unlike other 2D materials, BP possesses crystal orientation-dependent carrier mobility, light absorption, and other properties as well, due to its anisotropic nature [5, 6]. Unfortunately, a fatal disadvantage of BP is its easy degradation, due to the joint influence of oxygen, water, and light [7].

      2.2.1 Structure

Schematic illustration of (a) top views of the relaxed antimonene monolayer allotropic forms with five typical honeycomb structures (alpha, beta, gamma, delta, sigma). (b) Calculated average binding energies of antimonene allotropes with different phases. (c) Phonon band dispersions of alpha and beta phases of antimonene monolayer.

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