Applied Chemistry and Environmental Science, School of Science, RMIT University, Melbourne, Victoria 3000, Australia.
CSIRO Manufacturing, Clayton, Victoria 3168, Australia.
Mater Horiz. 2021 Aug 31;8(9):2387-2419. doi: 10.1039/d1mh00609f.
Metal-organic frameworks (MOFs) are exceptionally large surface area materials with organized porous cages that have been investigated for nearly three decades. Due to the flexibility in their design and predisposition toward functionalization, they have shown promise in many areas of application, including chemical sensing. Consequently, they are identified as advanced materials with potential for deployment in analytical devices for chemical and biochemical sensing applications, where high sensitivity is desirable, for example, in environmental monitoring and to advance personal diagnostics. To keep abreast of new research, which signposts the future directions in the development of MOF-based chemical sensors, this review examines studies since 2015 that focus on the applications of MOF films and devices in chemical sensing. Various examples that use MOF films in solid-state sensing applications were drawn from recent studies based on electronic, electrochemical, electromechanical and optical sensing methods. These examples underscore the readiness of MOFs to be integrated in optical and electronic analytical devices. Also, preliminary demonstrations of future sensors are indicated in the performances of MOF-based wearables and smartphone sensors. This review will inspire collaborative efforts between scientists and engineers working within the field of MOFs, leading to greater innovations and accelerating the development of MOF-based analytical devices for chemical and biochemical sensing applications.
金属-有机骨架(MOFs)是具有组织多孔笼的极大比表面积材料,已经研究了近三十年。由于其设计的灵活性和功能化的倾向,它们在许多应用领域都显示出了前景,包括化学传感。因此,它们被认为是具有潜在应用前景的先进材料,可以用于化学和生物化学传感应用的分析设备中,在这些应用中需要高灵敏度,例如在环境监测和推进个人诊断中。为了紧跟新的研究,这些研究标志着 MOF 基化学传感器发展的未来方向,这篇综述考察了自 2015 年以来专注于 MOF 薄膜和器件在化学传感中的应用的研究。各种基于电子、电化学、机电和光学传感方法的使用 MOF 薄膜的固态传感应用的例子来自于最近的研究。这些例子强调了 MOFs 集成到光学和电子分析设备中的准备情况。此外,基于 MOF 的可穿戴设备和智能手机传感器的性能也初步展示了未来传感器的潜力。这篇综述将激发在 MOFs 领域工作的科学家和工程师之间的合作努力,从而带来更大的创新,并加速 MOF 基化学和生物化学传感应用的分析设备的发展。