Park Kwonpil, Kim Minsoo P
Department of Chemical Engineering, Sunchon National University, Suncheon 57922, Republic of Korea.
Sensors (Basel). 2024 Oct 15;24(20):6637. doi: 10.3390/s24206637.
Flexible and stretchable electronics have emerged as a groundbreaking technology with wide-ranging applications, including wearable devices, medical implants, and environmental monitoring systems. Among their numerous applications, hydrogen sensing represents a critical area of research, particularly due to hydrogen's role as a clean energy carrier and its explosive nature at high concentrations. This review paper provides a comprehensive overview of the recent advancements in flexible and stretchable electronics tailored for resistive hydrogen sensing applications. It begins by introducing the fundamental principles underlying the operation of flexible and stretchable resistive sensors, highlighting the innovative materials and fabrication techniques that enable their exceptional mechanical resilience and adaptability. Following this, the paper delves into the specific strategies employed in the integration of these resistive sensors into hydrogen detection systems, discussing the merits and limitations of various sensor designs, from nanoscale transducers to fully integrated wearable devices. Special attention is paid to the sensitivity, selectivity, and operational stability of these resistive sensors, as well as their performance under real-world conditions. Furthermore, the review explores the challenges and opportunities in this rapidly evolving field, including the scalability of manufacturing processes, the integration of resistive sensor networks, and the development of standards for safety and performance. Finally, the review concludes with a forward-looking perspective on the potential impacts of flexible and stretchable resistive electronics in hydrogen energy systems and safety applications, underscoring the need for interdisciplinary collaboration to realize the full potential of this innovative technology.
柔性可拉伸电子器件已成为一项具有开创性的技术,具有广泛的应用,包括可穿戴设备、医疗植入物和环境监测系统。在其众多应用中,氢传感是一个关键的研究领域,特别是因为氢作为清洁能源载体的作用以及其在高浓度下的易爆性质。这篇综述文章全面概述了为电阻式氢传感应用量身定制的柔性可拉伸电子器件的最新进展。文章首先介绍了柔性可拉伸电阻式传感器工作的基本原理,强调了使其具有卓越机械弹性和适应性的创新材料和制造技术。在此之后,文章深入探讨了将这些电阻式传感器集成到氢检测系统中所采用的具体策略,讨论了从纳米级换能器到完全集成的可穿戴设备等各种传感器设计的优缺点。特别关注这些电阻式传感器的灵敏度、选择性和操作稳定性,以及它们在实际条件下的性能。此外,该综述探讨了这个快速发展领域中的挑战和机遇,包括制造工艺的可扩展性、电阻式传感器网络的集成以及安全和性能标准的制定。最后,该综述以前瞻性的视角总结了柔性可拉伸电阻式电子器件在氢能系统和安全应用中的潜在影响,强调了跨学科合作以实现这项创新技术全部潜力的必要性。