A Review of Carbon Nanotubes, Graphene and Nanodiamond Based Strain Sensor in Harsh Environments

C Pub Date : 2023-11-14 DOI:10.3390/c9040108
Xiaoyan Wang, Eng Gee Lim, Kai Hoettges, Pengfei Song
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Abstract

Flexible and wearable electronics have attracted significant attention for their potential applications in wearable human health monitoring, care systems, and various industrial sectors. The exploration of wearable strain sensors in diverse application scenarios is a global issue, shaping the future of our intelligent community. However, current state-of-the-art strain sensors still encounter challenges, such as susceptibility to interference under humid conditions and vulnerability to chemical and mechanical fragility. Carbon materials offer a promising solution due to their unique advantages, including excellent electrical conductivity, intrinsic and structural flexibility, lightweight nature, high chemical and thermal stability, ease of chemical functionalization, and potential for mass production. Carbon-based materials, such as carbon nanotubes, graphene, and nanodiamond, have been introduced as strain sensors with mechanical and chemical robustness, as well as water repellency functionality. This review reviewed the ability of carbon nanotubes-, graphene-, and nanodiamond-based strain sensors to withstand extreme conditions, their sensitivity, durability, response time, and diverse applications, including strain/pressure sensors, temperature/humidity sensors, and power devices. The discussion highlights the promising features and potential advantages offered by these carbon materials in strain sensing applications. Additionally, this review outlines the existing challenges in the field and identifies future opportunities for further advancement and innovation.
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基于碳纳米管、石墨烯和纳米金刚石的恶劣环境应变传感器研究进展
柔性和可穿戴电子产品因其在可穿戴人体健康监测、护理系统和各种工业部门的潜在应用而引起了人们的极大关注。探索多种应用场景下的可穿戴应变传感器是一个全球性的问题,塑造了我们智能社区的未来。然而,当前最先进的应变传感器仍然面临挑战,例如在潮湿条件下易受干扰,易受化学和机械脆弱性的影响。碳材料由于其独特的优势,包括优异的导电性、内在和结构的灵活性、轻质性、高化学和热稳定性、易于化学功能化以及大规模生产的潜力,提供了一个很有前途的解决方案。碳基材料,如碳纳米管、石墨烯和纳米金刚石,已经作为应变传感器引入,具有机械和化学稳健性,以及防水功能。本文综述了基于碳纳米管、石墨烯和纳米金刚石的应变传感器在极端条件下的承受能力,它们的灵敏度、耐用性、响应时间和各种应用,包括应变/压力传感器、温度/湿度传感器和功率器件。讨论强调了这些碳材料在应变传感应用中的前景和潜在优势。此外,本综述概述了该领域现有的挑战,并确定了进一步发展和创新的未来机会。
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