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Metal–organic frameworks for chemical sensing devices

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TLDR
In this paper, a review examines studies since 2015 that focus on the applications of metal-organic frameworks and devices in chemical sensing, including solid-state sensing applications, based on electronic, electrochemical, electromechanical and optical sensing methods.
Abstract
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.

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Citations
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Porphyrin-based Framework Materials for Energy Conversion

TL;DR: In this paper , the types of porphyrin structural blocks are briefly reviewed and the challenges of using porphrin-based framework materials in the above application and corresponding solutions are presented.
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A microporous 2D cobalt-based MOF with pyridyl sites and open metal sites for selective adsorption of CO2

TL;DR: In this paper , a 2D Co-based MOF, Co3(C6H3NO2)2(cpna)2 (DMA)2]n (1) (H2cpna = 6-(4-carboxylphenyl)nicotinic acid; DMA = N,N-dimethylacetamide), has been synthesized and structurally characterized.
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Covalent organic frameworks as multifunctional materials for chemical detection.

TL;DR: In this article, the authors highlight how the unique properties of COFs can be harnessed to develop different types of chemical detection systems based on the principles of chromism, luminescence, electrical transduction, chromatography, spectrometry, and others to achieve highly sensitive and selective detection of various analytes.
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Functional nanomaterials, synergisms, and biomimicry for environmentally benign marine antifouling technology.

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References
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Journal ArticleDOI

The Chemistry and Applications of Metal-Organic Frameworks

TL;DR: Metal-organic frameworks are porous materials that have potential for applications such as gas storage and separation, as well as catalysis, and methods are being developed for making nanocrystals and supercrystals of MOFs for their incorporation into devices.
Journal ArticleDOI

Verwendung von Schwingquarzen zur Wägung dünner Schichten und zur Mikrowägung

TL;DR: In this paper, eigenfrequenz der Platte infolge Vergroserung der schwingenden Masse is vermessen, so das eine empirische Eichung bei der Schichtwagung mit Schwingquarzen entfallt.
Journal ArticleDOI

Selective gas adsorption and separation in metal–organic frameworks

TL;DR: This critical review starts with a brief introduction to gas separation and purification based on selective adsorption, followed by a review of gas selective adsorbents in rigid and flexible MOFs, and primary relationships between adsorptive properties and framework features are analyzed.
Journal ArticleDOI

Design and synthesis of an exceptionally stable and highly porous metal-organic framework

TL;DR: In this article, an organic dicarboxylate linker is used in a reaction that gives supertetrahedron clusters when capped with monocarboxyates.
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