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      Metal-Organic Frameworks for the Development of Biosensors: A Current Overview

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          Abstract

          This review focuses on the fabrication of biosensors using metal-organic frameworks (MOFs) as recognition and/or transducer elements. A brief introduction discussing the importance of the development of new biosensor schemes is presented, describing these coordination polymers, their properties, applications, and the main advantages and drawbacks for the final goal. The increasing number of publications regarding the characteristics of these materials and the new micro- and nanofabrication techniques allowing the preparation of more accurate, robust, and sensitive biosensors are also discussed. This work aims to offer a new perspective from the point of view of materials science compared to other reviews focusing on the transduction mechanism or the nature of the analyte. A few examples are discussed depending on the starting materials, the integration of the MOF as a part of the biosensor and, in a deep detail, the fabrication procedure.

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          Metal-organic framework materials as chemical sensors.

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            Stable Metal-Organic Frameworks: Design, Synthesis, and Applications

            Metal-organic frameworks (MOFs) are an emerging class of porous materials with potential applications in gas storage, separations, catalysis, and chemical sensing. Despite numerous advantages, applications of many MOFs are ultimately limited by their stability under harsh conditions. Herein, the recent advances in the field of stable MOFs, covering the fundamental mechanisms of MOF stability, design, and synthesis of stable MOF architectures, and their latest applications are reviewed. First, key factors that affect MOF stability under certain chemical environments are introduced to guide the design of robust structures. This is followed by a short review of synthetic strategies of stable MOFs including modulated synthesis and postsynthetic modifications. Based on the fundamentals of MOF stability, stable MOFs are classified into two categories: high-valency metal-carboxylate frameworks and low-valency metal-azolate frameworks. Along this line, some representative stable MOFs are introduced, their structures are described, and their properties are briefly discussed. The expanded applications of stable MOFs in Lewis/Brønsted acid catalysis, redox catalysis, photocatalysis, electrocatalysis, gas storage, and sensing are highlighted. Overall, this review is expected to guide the design of stable MOFs by providing insights into existing structures, which could lead to the discovery and development of more advanced functional materials.
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              Metal-Organic Frameworks as Platforms for Catalytic Applications

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                Author and article information

                Journal
                Biosensors (Basel)
                Biosensors (Basel)
                biosensors
                Biosensors
                MDPI
                2079-6374
                16 October 2018
                December 2018
                : 8
                : 4
                : 92
                Affiliations
                Department of Organic Chemistry, Stockholm University, SE-106 91 Stockholm, Sweden; sergio.carrasco@ 123456su.se ; Tel.: +46-08-162479
                Author information
                https://orcid.org/0000-0003-0024-1392
                Article
                biosensors-08-00092
                10.3390/bios8040092
                6315769
                30332786
                871b07ee-8c6f-44a8-9442-a8194f250224
                © 2018 by the author.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 23 September 2018
                : 13 October 2018
                Categories
                Review

                metal-organic frameworks,polymer-based biosensors,mof-based fluorescence biosensors,mof-based electrochemical biosensors,mof micro/nanostructuring

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