Sinopec (Shanghai) Research Institute of Petrochemical Technology Co., Ltd., Shanghai 201210, China.
School of Life Sciences, Shanghai University, Shanghai 200444, China.
Biosensors (Basel). 2024 Aug 28;14(9):420. doi: 10.3390/bios14090420.
Flexible electrochemical sensors can adhere to any bendable surface with conformal contact, enabling continuous data monitoring without compromising the surface's dynamics. Among various materials that have been explored for flexible electronics, metal-organic frameworks (MOFs) exhibit dynamic responses to physical and chemical signals, offering new opportunities for flexible electrochemical sensing technologies. This review aims to explore the role of electrocatalysis in MOF films specifically designed for flexible electrochemical sensing applications, with a focus on their design, fabrication techniques, and applications. We systematically categorize the design and fabrication techniques used in preparing MOF films, including in situ growth, layer-by-layer assembly, and polymer-assisted strategies. The implications of MOF-based flexible electrochemical sensors are examined in the context of wearable devices, environmental monitoring, and healthcare diagnostics. Future research is anticipated to shift from traditional microcrystalline powder synthesis to MOF thin-film deposition, which is expected to not only enhance the performance of MOFs in flexible electronics but also improve sensing efficiency and reliability, paving the way for more robust and versatile sensor technologies.
柔性电化学传感器可以通过共形接触贴合到任何可弯曲的表面上,实现连续的数据监测,而不会影响表面的动态特性。在已经探索过的各种用于柔性电子学的材料中,金属-有机骨架(MOF)对物理和化学信号表现出动态响应,为柔性电化学传感技术提供了新的机会。本综述旨在探索电催化在专门设计用于柔性电化学传感应用的 MOF 薄膜中的作用,重点关注它们的设计、制造技术和应用。我们系统地对用于制备 MOF 薄膜的设计和制造技术进行了分类,包括原位生长、层层组装和聚合物辅助策略。我们还考察了基于 MOF 的柔性电化学传感器在可穿戴设备、环境监测和医疗诊断方面的应用。未来的研究预计将从传统的微晶体粉末合成转向 MOF 薄膜沉积,这不仅有望提高 MOFs 在柔性电子学中的性能,还将提高传感效率和可靠性,为更强大和多功能的传感器技术铺平道路。