Natsuki Toshiaki, Natsuki Jun
College of Textiles and Apparel, Quanzhou Normal University, Quanzhou 362000, China.
Institute for Fiber Engineering (IFES), Interdisciplinary Cluster for Cutting Edge Research (ICCER), Shinshu University, 3-15-1 Tokida, Ueda 386-8567, Nagano, Japan.
Nanomaterials (Basel). 2023 Jun 9;13(12):1834. doi: 10.3390/nano13121834.
Carbon-based nanomaterials, including carbon nanotubes (CNTs) and graphene sheets (GSs), have garnered considerable research attention owing to their unique mechanical, physical, and chemical properties compared with traditional materials. Nanosensors are sensing devices with sensing elements made of nanomaterials or nanostructures. CNT- and GS-based nanomaterials have been proved to be very sensitive nanosensing elements, being used to detect tiny mass and force. In this study, we review the developments in the analytical modeling of mechanical behavior of CNTs and GSs, and their potential applications as next-generation nanosensing elements. Subsequently, we discuss the contributions of various simulation studies on theoretical models, calculation methods, and mechanical performance analyses. In particular, this review intends to provide a theoretical framework for a comprehensive understanding of the mechanical properties and potential applications of CNTs/GSs nanomaterials as demonstrated by modeling and simulation methods. According to analytical modeling, nonlocal continuum mechanics pose small-scale structural effects in nanomaterials. Thus, we overviewed a few representative studies on the mechanical behavior of nanomaterials to inspire the future development of nanomaterial-based sensors or devices. In summary, nanomaterials, such as CNTs and GSs, can be effectively utilized for ultrahigh-sensitivity measurements at a nanolevel resolution compared to traditional materials.
碳基纳米材料,包括碳纳米管(CNTs)和石墨烯片(GSs),由于与传统材料相比具有独特的机械、物理和化学性质,已引起了相当多的研究关注。纳米传感器是一种传感装置,其传感元件由纳米材料或纳米结构制成。基于碳纳米管和石墨烯片的纳米材料已被证明是非常灵敏的纳米传感元件,可用于检测微小的质量和力。在本研究中,我们回顾了碳纳米管和石墨烯片力学行为分析建模的进展,以及它们作为下一代纳米传感元件的潜在应用。随后,我们讨论了各种模拟研究在理论模型、计算方法和力学性能分析方面的贡献。特别是,本综述旨在通过建模和模拟方法,为全面理解碳纳米管/石墨烯片纳米材料的力学性能和潜在应用提供一个理论框架。根据分析建模,非局部连续介质力学在纳米材料中呈现出小尺度结构效应。因此,我们概述了一些关于纳米材料力学行为的代表性研究,以启发基于纳米材料的传感器或器件的未来发展。总之,与传统材料相比,碳纳米管和石墨烯片等纳米材料可有效地用于纳米级分辨率的超高灵敏度测量。