论文标题
二维复合材料的生长:可控性,材料质量和增长机制
Growth of Two-dimensional Compound Materials: Controllability, Material Quality, and Growth Mechanism
论文作者
论文摘要
摄影:二维(2D)化合物材料是在电子,光电,柔性设备等中使用的有前途的材料。因为它们是超薄材料,并且覆盖了广泛的特性。在制备2D材料的所有方法中,化学蒸气沉积(CVD)是有希望的,因为它产生了高质量且合理的成本的材料。到目前为止,已经做出了很多努力,以生产具有较大域大小,可控层,快速增长速率和高质量特征等的2D化合物材料。但是,由于复杂的生长机制(如升华和多个前列体的扩散过程),维持了COVD 2D二元和ternare材料的高质量的可控性,可重复性和高质量,这仍然是一个大型挑战。在这里,以2D过渡金属二分法(TMDC)为示例,我们回顾了当前的进度,并突出了一些有希望的增长策略,以实现2D化合物的生长。讨论了影响CVD工艺的关键技术问题,包括非金属前体,金属前体,底物工程,温度和气流。同样,强调了提高CVD生长2D材料质量以及对其生长机制的当前理解的方法。最后,提出了这一领域的挑战和机遇。我们认为,这篇评论将指导可控的CVD系统的未来设计,以增长具有良好可控性和高质量的2D化合物材料,从而为其潜在应用奠定了基础。
CONSPECTUS: Two-dimensional (2D) compound materials are promising materials for use in electronics, optoelectronics, flexible devices, etc. because they are ultrathin and cover a wide range of properties. Among all methods to prepare 2D materials, chemical vapor deposition (CVD) is promising because it produces materials with a high quality and reasonable cost. So far, much efforts have been made to produce 2D compound materials with large domain size, controllable number of layers, fast-growth rate, and high quality features, etc. However, due to the complicated growth mechanism like sublimation and diffusion processes of multiple precursors, maintaining the controllability, repeatability, and high quality of CVD grown 2D binary and ternary materials is still a big challenge, which prevents their widespread use. Here, taking 2D transition metal dichalcogenides (TMDCs) as examples, we review current progress and highlight some promising growth strategies for the growth of 2D compound materials. The key technology issues which affect the CVD process, including non-metal precursor, metal precursor, substrate engineering, temperature, and gas flow, are discussed. Also, methods in improving the quality of CVD-grown 2D materials and current understanding on their growth mechanism are highlighted. Finally, challenges and opportunities in this field are proposed. We believe this review will guide the future design of controllable CVD systems for the growth of 2D compound materials with good controllability and high quality, laying the foundations for their potential applications.