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Keywords = luminescent metal-organic framework

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41 pages, 5906 KB  
Review
Metal–Organic Frameworks (MOFs) Nobel Prize Materials: Recent Advances in Synthesis, Structure, Luminescent Properties and Applications in Sensing, Water Treatment, Hydrogen Storage
by Dragana Marinković, Giancarlo C. Righini and Maurizio Ferrari
Inorganics 2026, 14(8), 214; https://doi.org/10.3390/inorganics14080214 - 16 Aug 2026
Viewed by 361
Abstract
Metal–Organic Frameworks (MOFs) have undergone remarkable development in recent decades, transforming them into one of the most dynamic classes of emerging composite materials. These crystalline, porous coordination networks, built from metal ions or metal clusters interconnected by organic linkers, form architectures with tunable [...] Read more.
Metal–Organic Frameworks (MOFs) have undergone remarkable development in recent decades, transforming them into one of the most dynamic classes of emerging composite materials. These crystalline, porous coordination networks, built from metal ions or metal clusters interconnected by organic linkers, form architectures with tunable porosity, large specific surface area, and chemical functionality. Due to their remarkable stability and customizable functionalities, MOFs have attracted significant attention in recent years as promising materials for different applications. In 2025, Susumu Kitagawa, Omar Yaghi, and Richard Robson were awarded the Nobel Prize in Chemistry for pioneering the development of MOF crystalline materials with spacious internal cavities that can store, filter or catalyze molecules. This review systematically consolidates the recent literature (since 2020) on MOF-based systems, covering state-of-the-art performance, synthesis advantages and limitations, and the influence of reaction parameters on morphology, structure, and luminescent properties. The rapid yearly increase in MOF-related publications, continuing strongly into 2026, reflects the growing global interest and highlights the rising importance of their design and applications. This trend motivates the central focus of this paper, which, in a single work, emphasizes the integrated use of MOFs in luminescent sensing, biosensing, the removal of heavy metals, microplastics, and organic dyes in water treatment, and hydrogen storage. Finally, the challenges, conclusions and future perspectives of MOF-based materials will be highlighted with the aim of providing guidelines for their further development and additional applications. Full article
(This article belongs to the Special Issue Featured Papers in Inorganic Materials 2026)
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17 pages, 12209 KB  
Article
New Bright Luminescent Metal–Organic Frameworks Based on Heterometallic Gadolinium and Terbium Chloroterephthalates for Fingerprinting and Heavy-Metal Detection
by Oleg S. Butorlin, Anna S. Petrova, Aleksei E. Mikhaltsov, Mikhail N. Ryazantsev, Nikita A. Bogachev, Mikhail Yu. Skripkin and Andrey S. Mereshchenko
Molecules 2026, 31(16), 2834; https://doi.org/10.3390/molecules31162834 - 14 Aug 2026
Viewed by 343
Abstract
A series of novel heterometallic rare-earth chloroterephthalate metal–organic frameworks with the general formula (TbxGd1−x)2(Cl-1,4-bdc)3·5H2O (x = 0–1) were synthesized via direct precipitation from aqueous solutions. The structural and photophysical properties of these compounds [...] Read more.
A series of novel heterometallic rare-earth chloroterephthalate metal–organic frameworks with the general formula (TbxGd1−x)2(Cl-1,4-bdc)3·5H2O (x = 0–1) were synthesized via direct precipitation from aqueous solutions. The structural and photophysical properties of these compounds were studied in detail. All compounds exhibit bright luminescence upon UV excitation into the ligand absorption band due to an efficient antenna effect. The photoluminescence quantum yield shows a non-monotonic dependence on the concentration of the terbium ion with a maximum value of 71% achieved for the compound containing equal molar fractions of the lanthanide ions. The (Tb0.5Gd0.5)2(Cl-1,4-bdc)3·5H2O sample was evaluatedfor its utility in both qualitative and quantitative analysis of selected metal ions and in latent fingerprint development. It was shown to enable the detection of Cr(III), Fe(III), and Cu(II) ions through luminescence quenching, with the emission intensity being concentration-dependent. This behaviour highlights the compound’s potential as a basis for analytical protocols and materials aimed at the quantitative determination of these metal ions. Full article
(This article belongs to the Special Issue Rare Earth Materials: From Design to Applications)
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18 pages, 15244 KB  
Article
A Porous Europium Metal–Organic Framework as a Highly Sensitive Bifunctional Sensor for Isoprocarb and Levofloxacin
by You Yin, Yuanhong Cheng, Ning Song and Chenghui Zeng
Chemosensors 2026, 14(6), 144; https://doi.org/10.3390/chemosensors14060144 - 22 Jun 2026
Viewed by 422
Abstract
The development of highly sensitive luminescence sensing materials has attracted much attention in recent years. In this study, a new two-dimensional porous europium metal–organic framework (EuMOF, [Eu(DHDA)1.5·3H2O]n; DHDA = 2,2-dihydroxyacetic acid) is obtained, [...] Read more.
The development of highly sensitive luminescence sensing materials has attracted much attention in recent years. In this study, a new two-dimensional porous europium metal–organic framework (EuMOF, [Eu(DHDA)1.5·3H2O]n; DHDA = 2,2-dihydroxyacetic acid) is obtained, characterized by single-crystal X-ray diffraction, powder X-ray diffraction (PXRD), scanning electron microscopy (SEM), luminescence, and Fourier transform infrared spectroscopy (FT-IR). At the best excitation at 295 nm, EuMOF shows red luminescence (CIE: 0.6255, 0.3740) and has four obvious peaks at 582, 605, 641, and 689 nm, which are due to 5D07F1, 5D07F2, 5D07F3, and 5D07F4 transitions, respectively. Studies have shown that EuMOF is a stable, fast-responding, and highly sensitive luminescence sensor for isoprocarb and levofloxacin (Lvx) in aqueous solutions, apple peel and rice extract solutions, and real urine, which are closely associated with food safety and human health. The sensing behavior toward isoprocarb and Lvx may be attributed to the specific binding of the two analytes to EuMOF. The sensing of isoprocarb is a dynamic luminescence-quenching process, while that of Lvx is a dynamic luminescence-enhancing process. The limits of detection (LOD) for isoprocarb and Lvx are as low as 1.0 and 0.5 nM, respectively, which are much lower than the Chinese national standard (GB 28260-2011, 2.583 μM). EuMOF also demonstrates strong anti-interference detection of isoprocarb in apple peel and rice extract solutions, as well as Lvx in real urine, with excellent detection stability in a 0.01~9.0 nM range. The recovery rates for isoprocarb and Lvx in real samples are 99.12%~101.25%. This work provides the first bifunctional lanthanide sensor for pesticides and antibiotics. Full article
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32 pages, 8768 KB  
Review
Advances in Zn-MOF-Based Materials for Electrochemical and Fluorescence Sensing Applications
by Khursheed Ahmad, Shanmugam Vignesh and Tae Hwan Oh
Sensors 2026, 26(11), 3511; https://doi.org/10.3390/s26113511 - 2 Jun 2026
Cited by 1 | Viewed by 926
Abstract
Metal–organic frameworks (MOFs) exhibit high specific surface area and porosity, which may facilitate electron transfer during electrochemical reactions. Therefore, it is clear that MOFs are promising materials for the development of electrochemical sensors. In particular, zinc (Zn) based MOFs offer several advantages such [...] Read more.
Metal–organic frameworks (MOFs) exhibit high specific surface area and porosity, which may facilitate electron transfer during electrochemical reactions. Therefore, it is clear that MOFs are promising materials for the development of electrochemical sensors. In particular, zinc (Zn) based MOFs offer several advantages such as high specific surface area, porosity, environmental friendliness and low cost. Thus, Zn-based MOF materials and their composites have been extensively utilized in the detection of various pollutants, biomolecules and food additives. The Zn-MOF-based materials have been extensively utilized in electrochemical and fluorescence sensing applications. Previously, various Zn-MOF-based sensing systems such as pristine Zn-MOF, carbon-supported Zn-MOF composites, MXene hybrids with Zn-MOF, and bimetallic/trimetallic Zn-based MOFs were explored to enhance sensing performance. Such materials exhibit remarkable analytical performance, such as a low limit of detection (LOD) (nM to pM range), wide linear response range (LR), fast response times, and high selectivity in the presence of interfering species. In electrochemical sensing, Zn-MOF-modified electrodes demonstrated improved charge-transfer kinetics and sensitivity, enabling accurate determination of the biomolecules, drugs and heavy metal ions in real samples. Similarly, Zn-MOF-based fluorescence sensors showed high luminescent properties and displayed sensitive detection of pollutants and biomolecules. Despite such promising sensing performances, some challenges, such as low stability, reproducibility and selectivity in real-time monitoring, etc., remain that need to be overcome. This review article summarizes the previously reported literature on the fabrication of Zn-MOFs, their composites and Zn-MOF-derived materials for the development of electrochemical and fluorescence sensors. We have also discussed the future directions for the rational design of the high-performance Zn-MOF-based sensing systems for environmental and biomedical applications. We believe that the present review article would be useful for the scientific community working on the fabrication of Zn-MOF-based sensors. Full article
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11 pages, 2202 KB  
Article
Effect of Ligand Substitution on the Formation of the Meltable Fe-ZIF
by Liuyang Zheng, Chaohui Guo, Zijuan Du, Juan Han, Ang Qiao, De Fang and Haizheng Tao
Materials 2026, 19(10), 1926; https://doi.org/10.3390/ma19101926 - 8 May 2026
Viewed by 514
Abstract
Meltable metal–organic frameworks (MOF) are essential for the formation of MOF glasses, which have emerged as a new family of functional materials offering promising potential for applications in gas separation, luminescence, energy storage, and beyond. Herein, the synthesis of iron-based zeolitic imidazolate framework [...] Read more.
Meltable metal–organic frameworks (MOF) are essential for the formation of MOF glasses, which have emerged as a new family of functional materials offering promising potential for applications in gas separation, luminescence, energy storage, and beyond. Herein, the synthesis of iron-based zeolitic imidazolate framework (ZIF) crystals, specifically Fe3(Im)6(HIm)2, where Im is imidazolate, is reported. Upon the substitution of some Im linkers with a secondary ligand, 5,6-dimethylbenzimidazole (dmbIm), it was found that such substitution induces the formation of new phases: one phase exhibits meltability and subsequent glass formation, while another phase [Fe3(Im)1.56(dmbIm)4.44(HIm)2] is non-meltable. Through structural characterizations, the configuration of the tetrahedral [Fe-linkers] units was revealed to be crucial in determining the meltability of Fe-ZIF. The incorporation of a large secondary ligand hinders the occurrence of melting. This work provides an insight into how ligands affect the accessibility of the liquid state of MOFs, showing a practical strategy for designing meltable MOFs. Full article
(This article belongs to the Section Advanced and Functional Ceramics and Glasses)
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44 pages, 4768 KB  
Review
Metal–Organic Frameworks as Materials for Applications in Sensors for Toxicants
by Leonid Kustov, Vadim Vergun, Valery Zakharov and Leonid Aslanov
Crystals 2026, 16(5), 279; https://doi.org/10.3390/cryst16050279 - 22 Apr 2026
Cited by 1 | Viewed by 2035
Abstract
Application of porous coordination polymers (PCPs), which include metal–organic frameworks (MOFs) and covalent organic frameworks (COFs) in sensors for detection of toxicant pollutants in water is discussed. Particular attention is given to electrochemical and photoluminescent sensors because PCPs/MOFs demonstrate good selectivity towards adsorption [...] Read more.
Application of porous coordination polymers (PCPs), which include metal–organic frameworks (MOFs) and covalent organic frameworks (COFs) in sensors for detection of toxicant pollutants in water is discussed. Particular attention is given to electrochemical and photoluminescent sensors because PCPs/MOFs demonstrate good selectivity towards adsorption of molecules in combination with outstanding luminescent properties and electroconductivity in composite materials. The use of PCPs/MOFs as pre-concentrators of the compounds to be analyzed is also outlined. The review covers the results described in the literature over the past 5 years in such diverse fields as the determination of metal ions and anions, drugs, mycotoxins, pesticides, explosives, bacteria, etc. Thus, the review demonstrates the proliferation of MOF applications and the universal nature of sensors based on them. Full article
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13 pages, 2452 KB  
Article
A Robust Zn-MOF Integrating Selective Luminescence Detection and On-Site Visual Monitoring of PNP and BNPP in Water
by Jie Dong, Xiang Xiong, Xin-Yu Tian, Man Yu, Ning Wang and Jie-Zheng Li
Inorganics 2026, 14(4), 108; https://doi.org/10.3390/inorganics14040108 - 11 Apr 2026
Viewed by 1378
Abstract
p-Nitrophenol (PNP) and bis(4-nitrophenyl) phosphate (BNPP), as typical persistent and toxic organic contaminants, present significant risks to both ecological systems and human health. Accurately quantifying these compounds using luminescent sensors remains a formidable task. In this study, we successfully synthesized a zinc-based metal–organic [...] Read more.
p-Nitrophenol (PNP) and bis(4-nitrophenyl) phosphate (BNPP), as typical persistent and toxic organic contaminants, present significant risks to both ecological systems and human health. Accurately quantifying these compounds using luminescent sensors remains a formidable task. In this study, we successfully synthesized a zinc-based metal–organic framework (Zn-MOF) that functions as a luminescent sensing material. The synthesized Zn-MOF demonstrates exceptional dual-response luminescent detection toward PNP and BNPP, with detection limits as low as 3.49 × 10−6 and 8.43 × 10−6 mol/L, respectively. The sensor maintains high selectivity and functionality even in the presence of various potentially interfering substances commonly found in complex environmental samples. Moreover, the material can be fabricated into a visual sensing film, greatly facilitating its application in on-site rapid detection scenarios. Overall, this work introduces a novel luminescent sensor platform that enables fast and reliable monitoring of PNP and BNPP in environmental contexts, demonstrating strong potential for integration into real-time surveillance and early warning systems. Full article
(This article belongs to the Section Coordination Chemistry)
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24 pages, 2353 KB  
Review
Metal–Organic Frameworks as Multifunctional Platforms for Chemical Sensors: Advances in Electrochemical and Optical Detection of Emerging Contaminants
by Iare Soares Ribeiro, Wesley C. P. Aquino, Lucas H. M. Alfredo and Jemmyson R. de Jesus
Processes 2026, 14(6), 886; https://doi.org/10.3390/pr14060886 - 10 Mar 2026
Cited by 3 | Viewed by 1491
Abstract
Metal–organic frameworks (MOFs) have received significant attention as multifunctional platforms for chemical sensing due to their adjustable porosity, high specific surface area, and modular chemical architecture, which allow for customized host-guest interactions and signal transduction. This work presents a critical overview of recent [...] Read more.
Metal–organic frameworks (MOFs) have received significant attention as multifunctional platforms for chemical sensing due to their adjustable porosity, high specific surface area, and modular chemical architecture, which allow for customized host-guest interactions and signal transduction. This work presents a critical overview of recent advances in electrochemical and optical sensors based on MOFs for the detection of emerging contaminants, including toxic metal ions, pharmaceutical residues, and industrial pollutants in environmental and biological matrices. Special emphasis is placed on the underlying sensing mechanisms, such as redox activity, charge transfer, and luminescence modulation, as well as the main challenges related to structural stability under realistic operating conditions, including variations in pH, humidity, and temperature. Furthermore, the development of hybrid and hierarchical architecture based on MOFs is discussed as an effective strategy to improve sensitivity, selectivity, and long-term robustness. Finally, the perspective highlights how to optimize sensor performance and enable more reliable and scalable applications in monitoring emerging contaminants. Full article
(This article belongs to the Special Issue Environmental Protection and Remediation Processes)
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14 pages, 7174 KB  
Communication
The Synthesis of Ru–Co–Oxalate MOFs for an Electrochemiluminescent Glyphosate Sensor
by Karina G. Espinosa-Cavazos, Joelis Rodríguez-Hernández, Carlos Gallardo-Vega, Carmen Alvarado-Canché, Marco Antonio Castillo, Roman Torres-Lubian, Perla E. García Casillas, Juan Carlos Anaya-Zavaleta, Antonio Ledezma-Pérez and Arxel de León
Biosensors 2026, 16(3), 140; https://doi.org/10.3390/bios16030140 - 28 Feb 2026
Viewed by 1260
Abstract
Cobalt–ruthenium bypiridine–oxalate metal–organic frameworks (MOFs) were synthesized via a solvothermal method with a custom-designed reactor that permits stirring, which can result in changes in the morphology of the structures. In this work, we performed a morphological and structural study of MOFs with varying [...] Read more.
Cobalt–ruthenium bypiridine–oxalate metal–organic frameworks (MOFs) were synthesized via a solvothermal method with a custom-designed reactor that permits stirring, which can result in changes in the morphology of the structures. In this work, we performed a morphological and structural study of MOFs with varying tris(2,2,bipyridyl) and diclororuthenium(II) hexahydrate (Ru(bpy)32+) concentrations, demonstrating changes in the size of the MOFs, and these MOFs were used as the luminescent materials in an electrochemiluminescent (ECL) system for glyphosate (Gly) detection, which acts as a coreactant in the light emission of Ru(bpy)32+. Gly is the most commonly used herbicide worldwide, and our system has a calibration curve range of 10–70 ppm, with a detection limit of 7.6 ppm. Full article
(This article belongs to the Section Environmental, Agricultural, and Food Biosensors)
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16 pages, 2189 KB  
Article
A Molecularly Imprinted Polymer Electrochemiluminescence Sensor Based on AuNPs@Ru-ZIF-8 for the Rapid Detection of Cyhalothrin Residues in Lycium barbarum L.
by Kaili Liu, Chengqiang Li, Yuchen Cai, Jiashuai Sun, Nortoji A. Khujamshukurov, Peisen Li, Yemin Guo and Xia Sun
Sensors 2026, 26(4), 1178; https://doi.org/10.3390/s26041178 - 11 Feb 2026
Viewed by 895
Abstract
Lycium barbarum L. is a widely used medicinal and edible Chinese medicinal material. However, with consumers’ heightened concern for health and food safety, pesticide residues have become one of the major challenges affecting its quality and safety. Cyhalothrin is a pyrethroid insecticide and [...] Read more.
Lycium barbarum L. is a widely used medicinal and edible Chinese medicinal material. However, with consumers’ heightened concern for health and food safety, pesticide residues have become one of the major challenges affecting its quality and safety. Cyhalothrin is a pyrethroid insecticide and a typical type of pesticide with excessive pesticide residues in Lycium barbarum L. Rapid detection of pesticide residues is an effective way to ensure the quality and safety of traditional Chinese medicinal materials. In this work, a molecularly imprinted polymer electrochemiluminescence (ECL) sensor based on gold nanoparticles (AuNPs)@Ru-ZIF-8 was constructed for rapid detection of cyhalothrin residues. The prepared cyhalothrin molecularly imprinted polymers (MIPs) were used as a recognition element and modified on the surface of a glassy carbon electrode (GCE) by an electrochemical polymerization method. AuNPs were utilized to promote the excitation of Ru(bpy)32+ and TPrA in the ECL system, which improved the observability of the light signal. The GCE modified with the metal–organic frameworks (MOFs) ZIF-8 was employed to increase the specific surface area and enhance the electron transfer capacity on the electrode, thereby improving the sensing sensitivity of the sensor. In addition, the luminescent reagent of Ru(bpy)32+ was introduced into the synthesis process of ZIF-8, which caused Ru(bpy)32+ to be tightly bound around it and enhanced the stability of the sensor. Under optimal conditions, the linear detection range of the sensor is 1 × 10−1~1 × 104 nM, with a limit of detection (LOD) of 10 pM. The accuracy of the ECL-MIP sensor has been verified through spiked recovery experiments and actual sample detection. This study has opened up a new approach to rapid detection of pesticide residues in traditional Chinese medicinal materials used for both food and medicine. Full article
(This article belongs to the Special Issue Electrochemical Sensors in the Food Industry: 2nd Edition)
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13 pages, 3115 KB  
Article
BINOL-Based Zirconium Metal–Organic Cages: Self-Assembly, Guest Complexation, Aggregation-Induced Emission, and Circularly Polarized Luminescence
by Yawei Liu, Gen Li, Roy Lavendomme, En-Qing Gao and Dawei Zhang
Nanomaterials 2026, 16(2), 132; https://doi.org/10.3390/nano16020132 - 19 Jan 2026
Viewed by 1218
Abstract
The development of nanoscale chiral materials with enhanced optical properties holds significant promise for advancing technologies in light-emitting devices and enantioselective sensing. Here, we report the self-assembly of chiral metal–organic cages from an axially chiral, AIE-active binaphthyl dicarboxylate ligand. This supramolecular architecture functions [...] Read more.
The development of nanoscale chiral materials with enhanced optical properties holds significant promise for advancing technologies in light-emitting devices and enantioselective sensing. Here, we report the self-assembly of chiral metal–organic cages from an axially chiral, AIE-active binaphthyl dicarboxylate ligand. This supramolecular architecture functions as a multifunctional platform, demonstrating a high affinity for anionic guests through synergistic electrostatic and hydrogen-bonding interactions. The rigid cage framework not only enhances the ligand’s intrinsic aggregation-induced emission (AIE) but also serves as a highly effective chiral amplifier. Notably, MOCs significantly boost the circularly polarized luminescence (CPL), achieving a luminescence dissymmetry factor (|glum|) of 1.2 × 10−3. This value represents an approximately five-fold enhancement over that of the unassembled ligand. The photophysical properties of this chiral supramolecular system provide a strategic blueprint for designing next-generation optical nanomaterials. Full article
(This article belongs to the Section Inorganic Materials and Metal-Organic Frameworks)
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29 pages, 2942 KB  
Review
Synthesis of BODIPY@MOFs as Hybrid Materials for Emerging Applications: A Review
by Louise Bureller, Clément Michelin and Federico Cisnetti
Molecules 2025, 30(24), 4790; https://doi.org/10.3390/molecules30244790 - 16 Dec 2025
Cited by 2 | Viewed by 1858
Abstract
This review explores the integration of Boron-Dipyrromethene (BODIPY) dyes within Metal–Organic Frameworks (MOFs), highlighting their combined potential in various applications. MOFs, with their high porosity and structural versatility, provide an ideal platform to enable applications with BODIPYs, which otherwise remain challenging in the [...] Read more.
This review explores the integration of Boron-Dipyrromethene (BODIPY) dyes within Metal–Organic Frameworks (MOFs), highlighting their combined potential in various applications. MOFs, with their high porosity and structural versatility, provide an ideal platform to enable applications with BODIPYs, which otherwise remain challenging in the solid state. The article discusses different strategies for incorporating BODIPYs into MOFs, including their use as monodentate, bidentate, and tridentate ligands, as well as covalent attachment and non-coordinating encapsulation. The resulting hybrid materials exhibit enhanced properties suitable for applications in the luminescent materials/light harvesting, photodynamic therapy, sensing, and photocatalysis areas. The review emphasizes the importance of synthetic conditions, characterization techniques, and the quantification of BODIPY loading to ensure the integrity and functionality of the MOF structures. Full article
(This article belongs to the Special Issue BODIPYs: State of the Art and Future Perspectives)
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14 pages, 2619 KB  
Article
A Stable Tetraphenylethylene-Based Charge-Assisted Hydrogen-Bonded Organic Framework for Turn-On Fluorescence Sensing of Al3+ Ions
by Yingjia Deng, Yijin Wang, Xiangyu Gao, Yunke Jin, Jiabao Liu, Guanglai Mo, Yixuan Guo, Lanlu Lu and Peng Li
Molecules 2025, 30(24), 4725; https://doi.org/10.3390/molecules30244725 - 10 Dec 2025
Cited by 3 | Viewed by 1253
Abstract
The development of stable and sensitive fluorescent sensors for metal ion detection remains a challenge in materials chemistry. Although hydrogen-bonded organic frameworks (HOFs) have shown great potential in luminescent applications, their practical use is often limited by structural instability. In this work, we [...] Read more.
The development of stable and sensitive fluorescent sensors for metal ion detection remains a challenge in materials chemistry. Although hydrogen-bonded organic frameworks (HOFs) have shown great potential in luminescent applications, their practical use is often limited by structural instability. In this work, we present a novel charge-assisted HOF, termed FDU-HOF-21 ([H(NH2Bpy)]2(TPE)), constructed from a tetraphenylethylene (TPE)-based carboxylic acid ligand (H4TCPE) and 2,2′-bipyridine-5,5′-diamine (NH2Bpy). Single-crystal X-ray diffraction (SCXRD) reveals a stable three-dimensional framework stabilized by an extensive hydrogen-bonding network and reinforced by charge-assisted hydrogen bonds (CAHBs), and it exhibits exceptional stability across various solvents and pH conditions. Moreover, FDU-HOF-21 serves as a highly sensitive and selective fluorescent turn-on sensor for Al3+ ions, with a lowest limit of detection (LOD) of 1.7 × 10−6 M. Characterization and time-dependent density functional theory (TDDFT) calculations reveal that the fluorescence enhancement originates from the suppression of non-radiative decay likely due to the reduction in intermolecular charge transfer (Inter-CT) during the emission process, coupled with the restricted intramolecular rotation upon Al3+ chelation. Full article
(This article belongs to the Special Issue Design and Application of Hydrogen-Bonded Organic Frameworks (HOFs))
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19 pages, 1076 KB  
Review
Multifunctional Metal–Organic Frameworks for Enhancing Food Safety and Quality: A Comprehensive Review
by Weina Jiang, Xue Zhou, Xuezhi Yuan, Liang Zhang, Xue Xiao, Jiangyu Zhu and Weiwei Cheng
Foods 2025, 14(23), 4111; https://doi.org/10.3390/foods14234111 - 30 Nov 2025
Cited by 11 | Viewed by 2782
Abstract
Food safety and quality are paramount global concerns, with the complexities of the modern supply chain demanding advanced technologies for monitoring, preservation, and decontamination. Conventional methods often fall short due to limitations in speed, sensitivity, cost, and functionality. Metal–organic frameworks (MOFs), a class [...] Read more.
Food safety and quality are paramount global concerns, with the complexities of the modern supply chain demanding advanced technologies for monitoring, preservation, and decontamination. Conventional methods often fall short due to limitations in speed, sensitivity, cost, and functionality. Metal–organic frameworks (MOFs), a class of crystalline porous materials, have emerged as a highly universal platform to address these challenges, owing to their unprecedented structural tunability, ultrahigh surface areas, and tailorable chemical functionalities. This comprehensive review details the state-of-the-art applications of multifunctional MOFs across the entire spectrum of food safety and quality enhancement. First, the review details the application of MOFs in advanced food analysis, covering their transformative roles as sorbents in sample preparation (e.g., solid-phase extraction and microextraction), as novel stationary phases in chromatography, and as the core components of highly sensitive sensing platforms, including luminescent, colorimetric, electrochemical, and SERS-based sensors for contaminant detection. Subsequently, the role of MOFs in food preservation and packaging is explored, highlighting their use in active packaging systems for ethylene scavenging and controlled antimicrobial release, in intelligent packaging for visual spoilage indication, and as functional fillers for enhancing the barrier properties of packaging materials. Furthermore, the review examines the direct application of MOFs in food processing for the selective adsorptive removal of contaminants from complex food matrices (such as oils and beverages) and as robust, recyclable heterogeneous catalysts. Finally, a critical discussion is presented on the significant challenges that impede widespread adoption. These include concerns regarding biocompatibility and toxicology, issues of long-term stability in complex food matrices, and the hurdles of achieving cost-effective, scalable synthesis. This review not only summarizes recent progress but also provides a forward-looking perspective on the interdisciplinary efforts required to translate these promising nanomaterials from laboratory research into practical, real-world solutions for a safer and higher-quality global food supply. Full article
(This article belongs to the Special Issue Micro and Nanomaterials in Sustainable Food Encapsulation)
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45 pages, 15287 KB  
Review
Insight into Current Research on Luminescent Metal–Organic Frameworks (MOFs) Based on the 1,2,4-Triazole Scaffold
by Kornelia Kubiesa and Agnieszka Kudelko
Appl. Sci. 2025, 15(22), 11943; https://doi.org/10.3390/app152211943 - 10 Nov 2025
Cited by 6 | Viewed by 2955
Abstract
1,2,4-Triazoles, as heterocyclic compounds, represent an attractive class of ligands in the design of metal–organic frameworks (MOFs) due to their donor–acceptor character, thermal and chemical stability, and ability to form extended coordination networks. This review summarizes the literature published between 2019 and 2025 [...] Read more.
1,2,4-Triazoles, as heterocyclic compounds, represent an attractive class of ligands in the design of metal–organic frameworks (MOFs) due to their donor–acceptor character, thermal and chemical stability, and ability to form extended coordination networks. This review summarizes the literature published between 2019 and 2025 on luminescent MOFs incorporating 1,2,4-triazole scaffold. The analysis covers synthetic conditions and provides a detailed discussion of the luminescent properties of these materials. Particular emphasis is placed on their applicability as luminescent probes for environmental monitoring and medical diagnostics, as well as on their potential use in light-emitting diode construction. The collected data highlight promising results, including strong correlations between analyte concentration and luminescent response, enabling sensitive detection with low limits of detection (LOD) for selected analytes. This article may serve as a valuable resource for chemists, physicists, and engineers involved in the design of functional materials and the development of detection and optoelectronic technologies. Full article
(This article belongs to the Special Issue Advances in Organic Synthetic Chemistry)
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