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Metal-organic Framework
4,7-Dibromo-5,6-dimethyl-1H-benzo[d]imidazole functions as a precursory compound in the synthesis of metal-organic frameworks (MOFs). It exhibits significant potential for facilitating the formation of layered structures with tunable porosity and chemical functionality. This compound is relevant for applications in gas storage, separation processes, and catalysis in various chemical research settings. -
Metal-organic Framework
3,4,5,6-Tetrachlorophthalic acid serves as a crucial building block for the synthesis of metal-organic frameworks (MOFs). This compound exhibits significant potential in gas storage, separation technologies, and catalysis due to its structural properties. Its unique chemical structure allows for versatile functionalization, making it an important reagent for research in materials science and nanotechnology applications. -
Metal-organic Framework
1,3,5-Tri(pyrimidin-5-yl)benzene is a ligand designed for the synthesis of metal-organic frameworks (MOFs). This compound coordinates with metal ions to form stable MOF structures, which can exhibit tunable properties for gas storage, catalysis, and adsorption applications. Its pyrimidine functional groups enhance metal coordination and may influence the resultant framework's porosity and stability, making it a valuable reagent for materials science research. -
Metal-organic Framework
2-(1H-Tetrazol-5-yl)pyrimidine is a compound utilized in the formation of metal-organic frameworks (MOFs). This reagent exhibits unique properties that facilitate its incorporation into MOF structures, enhancing their stability and functionality. Research applications of 2-(1H-Tetrazol-5-yl)pyrimidine include the development of advanced materials for gas storage, separation, and catalysis. Its distinct chemical structure provides versatility in materials science and offers potential in various fields such as environmental science and energy storage. -
Metal-organic Framework
2-Ethynylterephthalic acid serves as a key building block for the synthesis of metal-organic frameworks (MOFs). This compound exhibits significant potential for applications in gas adsorption, catalysis, and sensor development due to its structural versatility and functional groups. Its ability to form stable complexes with various metal centers enhances its utility in material science and nanotechnology research. -
Metal-organic Framework
5-(1H-Tetrazol-5-yl)isophthalic acid serves as a crucial building block for metal-organic frameworks (MOFs). This compound exhibits notable characteristics such as high thermal stability and tunable porosity, making it suitable for applications in gas storage, separation, and catalysis. Its unique structural features facilitate the synthesis of advanced materials for various research applications, including drug delivery and sensor development. -
Metal-organic Framework
2,2',2'',2'''-(Benzene-1,2,4,5-tetrayl)tetraacetic acid is a multifunctional ligand utilized in the assembly of metal-organic frameworks (MOFs). Its unique structure facilitates the coordination of metal ions, contributing to the stability and porosity of the MOF. This compound is essential for research applications in catalysis, gas storage, and environmental remediation, enabling the development of advanced materials for various technological applications. -
Metal-organic Framework
1,3-Bis(1H-imidazol-4-yl)benzene functions as a ligand in metal-organic frameworks (MOFs). This compound exhibits significant potential for applications in gas storage, catalysis, and chemical sensing due to its ability to coordinate with various metal ions. Its structural properties facilitate the formation of porous materials, making it valuable in research involving material science and nanotechnology. -
Metal-organic Framework
4,4′-(3,5-Pyridinediyl)bis[1,3-benzenedicarboxylic acid] acts as a robust ligand for the synthesis of metal-organic frameworks (MOFs). This compound facilitates the formation of coordination networks, providing structural integrity and high surface area. It is utilized in various research applications, including gas storage, catalysis, and drug delivery systems, highlighting its versatility in the field of materials science. -
Metal-organic Framework
IRMOF-8 is a metal-organic framework (MOF) characterized by its high surface area and tunable pore size. It serves as an effective adsorbent for gas storage and separation applications due to its robust structural integrity and chemical stability. Additionally, IRMOF-8 is utilized in catalysis and drug delivery research, where its crystalline structure allows for the encapsulation and controlled release of various molecules. -
Metal-organic Framework
Co-CUK-1 is a metal-organic framework (MOF) designed for applications in gas storage and separation. Its unique structure enables high surface area and tunable porosity, making it an effective candidate for catalysis, environmental remediation, and sensing applications. This reagent serves as a valuable tool for researchers investigating advanced materials and nanotechnology. -
Metal-organic Framework
1,2-Bis(3-(pyridin-4-yl)phenoxy)ethane acts as a ligand in metal-organic frameworks (MOFs), enabling the synthesis of complex structures with tailored properties. This compound demonstrates significant potential in applications such as gas storage, catalysis, and drug delivery due to its ability to enhance metal coordination and porosity. Its structural versatility makes it a valuable tool in the development and study of advanced materials in chemical research. -
Metal-organic Framework
2-Methyl-1,3-di(pyridin-4-yl)-2H-isoindole is a compound designed for the synthesis of metal-organic frameworks (MOFs). This versatile building block can facilitate the creation of robust materials with potential applications in gas storage, catalysis, and separation processes. Its unique structural properties allow for effective metal coordination, enhancing the stability and functionality of resultant MOFs in various research settings. -
Metal-organic Framework
4,4',4'',4''',4'''',4'''''-(Dipyrazino[2,3-f:2',3'-h]quinoxaline-2,3,6,7,10,11-hexayl)hexabenzoic acid serves as a precursor for constructing metal-organic frameworks (MOFs). This compound facilitates the integration of metal ions with organic ligands, resulting in highly porous materials with tunable properties. Its applications extend to gas storage, catalysis, and sensing, making it a valuable reagent for researchers focused on advanced material development and nanotechnology. -
Metal-organic Framework
2,6-Difluoroterephthalic acid serves as a key building block for the synthesis of metal-organic frameworks (MOFs). It is characterized by its ability to form stable coordination bonds with metal ions, facilitating the development of porous materials. This compound exhibits significant potential in applications such as gas storage, catalysis, and environmental remediation, making it valuable for researchers in material science and nanotechnology. -
Metal-organic Framework
1-(4,4-Bis(4-fluorophenyl)butyl)-4-(4-chloro-3-(trifluoromethyl)phenyl)piperidin-4-ol acetate primarily functions as a precursor for the synthesis of metal-organic frameworks (MOFs). This compound exhibits significant potential in the development of porous materials for applications in gas storage, catalysis, and separation processes. Its unique structural properties make it a valuable reagent for researchers focusing on advanced materials and nanotechnology. -
Metal-organic Framework
MOF-5 is a metal-organic framework (MOF) composed of zinc-based nodes and organic linkers. It exhibits high porosity and chemical stability, making it suitable for applications in gas storage, separation, and catalysis. MOF-5 is widely studied for its potential in carbon capture and hydrogen storage, contributing to advancements in materials science and environmental research. -
Metal-organic Framework
9,9-Dimethyl-9H-fluorene-2,7-dicarboxylic acid serves as a building block for the synthesis of metal-organic frameworks (MOFs). This compound enhances the structural integrity and functional properties of MOFs, making it suitable for applications in gas storage, separation, and catalysis. Its unique structural characteristics facilitate the design of advanced materials for research in catalysis and environmental science. -
Metal-organic Framework
4,4'-(1,2-Phenylenebis(oxy))dibenzoic acid is a key building block for metal-organic frameworks (MOFs), owing to its dual carboxylic acid functionalities that facilitate coordination with metal ions. This compound exhibits significant structural integrity and tunable properties, making it suitable for applications in gas storage, separation technologies, and catalysis. Its ability to form stable networks enables researchers to explore advanced functional materials in various fields, including environmental science and energy storage. -
Metal-organic Framework
4,4'-((5-(4-(4H-1,2,4-Triazol-4-yl)phenoxy)-1,3-phenylene)bis(oxy))dibenzoic acid serves as a building block for metal-organic frameworks (MOFs). This compound exhibits significant potential in applications involving gas storage and separation due to its structural properties and porosity. Researchers utilize this material in the development of advanced materials for catalysis, sensing, and filtration technologies. Its unique triazole functionality may also enhance interactions with metal ions, facilitating the design of novel MOF architectures. -
Metal-organic Framework
4,4',4'',4'''-Methanetetrayltetrabenzenesulfonic acid serves as a key building block for metal-organic frameworks (MOFs). This compound facilitates the synthesis of MOFs that exhibit high surface area and porosity, making them suitable for various applications, including gas storage, separation processes, and catalysis. Its structural properties enable the formation of stable and versatile MOF structures for advanced materials research. -
Metal-organic Framework
4,4''-Diformyl-[1,1':4',1''-terphenyl]-2',5'-dicarboxylic acid serves as a crucial building block for the synthesis of metal-organic frameworks (MOFs). Its unique structure enhances the formation of robust MOF networks, enabling efficient gas adsorption and separation applications. This compound is particularly relevant in research areas involving catalysis, sensing, and storage of gases, contributing to advancements in materials science and nanotechnology. -
Metal-organic Framework
4,4',4''-(1,3,5-Cyclohexanetriyl)Tris-pyridine targets the formation of metal-organic frameworks (MOFs) through its chelating properties. This compound demonstrates significant potential in various applications, including catalysis, gas storage, and separation processes. Its unique structural attributes make it a valuable tool for researchers exploring advanced materials in chemical and environmental science. -
Metal-organic Framework
[1,1':4',1''-Terphenyl]-2',3,3'',5,5''-pentacarboxylic acid serves as a key building block for metal-organic frameworks (MOFs). This compound exhibits notable properties for the incorporation of metal ions, facilitating the formation of stable and porous structures. Its versatility makes it valuable for applications in gas storage, separation processes, and catalysis research, contributing to advancements in materials science and molecular engineering. -
Metal-organic Framework
4-(1-Methyl-1H-pyrazol-4-yl)pyridine acts as a ligand in metal-organic frameworks (MOFs), facilitating the formation of highly structured three-dimensional networks. Its unique coordination properties contribute to the stability and porosity of MOFs, making it valuable in gas storage and separation applications. This compound is significant in materials science research, particularly in the development of advanced materials for catalysis and environmental remediation. -
Metal-organic Framework
4,4'-(1-(Pyridin-4-ylmethyl)-1H-1,2,4-triazole-3,5-diyl)dipyridine primarily targets the formation of metal-organic frameworks (MOFs). This compound exhibits significant potential for encapsulating metal ions and facilitating the construction of porous materials with high surface areas. Its unique structural properties make it suitable for applications in gas storage, separation, and catalysis research. -
Metal-organic Framework
(1R,2R,3S,4S)-Cyclobutane-1,2,3,4-tetracarboxylic acid serves as a key ligand in the synthesis of metal-organic frameworks (MOFs). Its unique tetracarboxylic structure facilitates the formation of robust coordination bonds with metal ions, enabling the creation of intricate porous materials. This compound is utilized in various research applications, including gas storage, separation processes, and catalysis studies within the field of materials science. -
Metal-organic Framework
4,4',4''-(Benzene-1,3,5-triyltris(oxy))triphthalic acid serves as a precursor for the synthesis of metal-organic frameworks (MOFs). This compound exhibits the ability to coordinate with metal ions, facilitating the formation of stable MOF structures. Its applications extend to gas storage, separation processes, and catalysis in chemical research. This versatile reagent is essential for studies focused on material science and functional nanomaterials. -
Metal-organic Framework
1,4-Bis((E)-2-(pyridin-4-yl)vinyl)benzene serves as a key component in metal-organic frameworks (MOFs). This compound features dual vinylpyridine functionalities that enhance coordination with metal ions, facilitating the formation of structurally robust frameworks. Its unique properties render it suitable for applications in gas storage, separation processes, and catalysis in chemical research. -
Metal-organic Framework
4,4'-(2,3,5,6-Tetramethyl-1,4-phenylene)dipyridine serves as a versatile ligand for metal-organic frameworks (MOFs). This compound is known for its ability to coordinate with various metal centers, facilitating the synthesis of stable and functional MOFs. Its unique structural properties enable a range of applications in gas storage, catalysis, and as sensors, making it a valuable tool for researchers investigating advanced materials and nanotechnology. -
Metal-organic Framework
4-Methoxy-N-(4-(methylthio)phenyl)aniline functions as a versatile ligand in metal-organic frameworks (MOFs). Its structural properties facilitate the formation of coordinated complexes, making it valuable in the synthesis of advanced materials. This compound is instrumental in research applications involving adsorption, catalysis, and drug delivery within the context of MOF development. -
Metal-organic Framework
4'-Phenyl-3,2':6',3''-terpyridine is a versatile ligand used in the synthesis of metal-organic frameworks (MOFs). This compound facilitates coordination with metal ions, enhancing the stability and functionality of the resulting MOFs. It is employed in research applications involving gas storage, catalysis, and sensing technologies. The unique structural properties of this terpyridine derivative contribute to the development of advanced materials for various chemical and environmental applications. -
Metal-organic Framework
5-(2-Hydroxyethoxy)isophthalic acid serves as a crucial building block for metal-organic frameworks (MOFs), facilitating the synthesis of sophisticated porous materials. Its primary mechanism involves coordination with metal ions, influencing the structural properties of the resulting MOF. This compound exhibits significant potential for applications in gas storage, separation processes, and catalysis, making it a valuable tool for researchers in material science and chemical engineering. -
Metal-organic Framework
3,3'-Dimethyl-1H,1'H-4,4'-bipyrazole is a building block for metal-organic frameworks (MOFs). This compound is utilized for the synthesis of advanced materials with potential applications in gas storage, separation, and catalysis. Its unique structural properties enhance the stability and functionality of the resulting MOFs, making it a valuable reagent in material science and nanotechnology research. -
Metal-organic Framework
1,3,5-Tris(4-(3,5-dicarboxyphenylethynyl)phenyl)benzene functions as a building block for metal-organic frameworks (MOFs). This compound exhibits significant potential for applications in catalysis, gas adsorption, and separation processes. Its structural properties and reactivity make it an ideal candidate for advanced material development in chemical research. -
Metal-organic Framework
Cyclohexane-1,3,5-tricarboxylic acid serves as a crucial building block for metal-organic frameworks (MOFs). This compound facilitates the construction of MOFs by providing structural stability and functional versatility. Its applications include gas storage, separation processes, and catalysis, making it an essential reagent for researchers in materials science and chemical engineering. -
Metal-organic Framework
5',5''''-Methylenebis(2'-amino-[1,1':3',1''-terphenyl]-4,4''-dicarboxylic acid) serves as a versatile building block in the formation of metal-organic frameworks (MOFs). This compound's unique structure enables its use in various catalytic, adsorption, and separation applications within chemical research. Its ability to coordinate with metal ions enhances the stability and functionality of the resulting MOFs, making it valuable for studies in environmental science, gas storage, and sensor development. -
Metal-organic Framework
9,10-Dihydro-9,10-[1,2]benzenoanthracene-9,10-dicarboxylic acid serves as a key building block for the construction of metal-organic frameworks (MOFs). This compound exhibits the ability to form stable coordination bonds with metal ions, facilitating the development of porous materials with tailored characteristics. Its primary applications include gas adsorption studies, catalysis, and drug delivery systems, making it a valuable reagent for researchers in materials science and nanotechnology. -
Metal-organic Framework
2,6-Diphenyl-4,4'-bipyridine is a versatile ligand utilized in the synthesis of metal-organic frameworks (MOFs). This compound exhibits strong chelating properties, enabling the formation of robust MOF structures with potential applications in gas storage, separation, and catalysis. Its ability to coordinate with various metal ions makes it valuable for research in materials science and chemical engineering. -
Metal-organic Framework
1,1'-(5'-(4-(1H-Imidazol-1-yl)phenyl)-[1,1':3',1''-terphenyl]-4,4''-diyl)bis(1H-imidazole) is a versatile metal-organic framework (MOF) designed for enhanced gas adsorption and separation properties. Its structural features facilitate the capture and release of various gases, making it suitable for applications in catalysis, environmental remediation, and energy storage. This compound is particularly valuable in the development of advanced materials for gas sensing and filtration technologies, enabling innovative approaches to addressing environmental challenges. -
Metal-organic Framework
[1,1':4',1'':4'',1'''-Quaterphenyl]-3,4'''5-tricarboxylic acid functions as a linker in the formation of metal-organic frameworks (MOFs). This compound plays a crucial role in designing materials with tunable porosity and surface chemistry, making it ideal for applications in gas storage, separation, and catalysis. Its structural properties enhance the stability and functionality of MOFs, facilitating advancements in areas such as environmental remediation and energy storage. -
Metal-organic Framework
5,5'-Dimethyl-2,2'-bipyrimidine serves as a ligand in the synthesis of metal-organic frameworks (MOFs). This compound is integral in coordinating with metal ions to form stable structures, which exhibit significant porosity and high surface area. Its ability to facilitate the creation of advanced materials makes it suitable for applications in gas storage, catalysis, and environmental remediation research. -
Metal-organic Framework
Zn(II)Phthalocyaninetetrasulfonic acid serves as a metal-organic framework (MOF) that features a zinc ion coordinated with phthalocyanine and multiple sulfonate groups. This compound is known for its photoactive properties and potential applications in catalysis, sensing, and drug delivery systems. The unique structural characteristics of Zn(II)Phthalocyaninetetrasulfonic acid make it a valuable tool for researchers exploring the intersection of materials science and nanotechnology. -
Metal-organic Framework
2′,3′-Dimethyl[1,1′:4′,1′′-terphenyl]-4,4′′-dicarboxylic acid acts as a versatile ligand in the formation of metal-organic frameworks (MOFs). This compound demonstrates significant potential for applications in gas storage, separation processes, and catalysis due to its ability to coordinate with various metal ions. Its structural features facilitate the creation of frameworks with tunable porosity and functionalization, making it an invaluable tool for materials science and chemical research. -
Metal-organic Framework
DUT-8(Cu) is a copper-based metal-organic framework (MOF) characterized by its unique porous structure. This compound demonstrates significant potential in gas adsorption and separation applications, making it valuable for research in environmental science and catalysis. Its design allows for enhanced stability and tunability, facilitating studies in materials science and nanotechnology. -
Metal-organic Framework
Difluorodi(pyridin-2-yl)methane is a versatile ligand that forms metal-organic frameworks (MOFs) through coordination with metal ions. This compound exhibits significant potential in applications such as gas storage, separation processes, and catalysis. Its unique structural properties make it valuable for research into advanced materials and the development of functionalized MOFs for environmental and energy-related studies. -
Metal-organic Framework
[2,2':6',2''-Terpyridin]-4'-ylboronic acid serves as a versatile building block for metal-organic frameworks (MOFs). This compound facilitates the coordination of metal ions, enabling the synthesis of various MOF structures with tailored properties. Its unique boronic acid functionality allows for the formation of stable linkages, making it suitable for applications in gas storage, catalysis, and sensor technology. Researchers can utilize this reagent to explore novel MOF designs and their potential in advanced material science applications. -
Metal-organic Framework
5,5′,5′′-[(2,4,6-Trimethyl-1,3,5-benzenetriyl)tri-2,1-ethynediyl]tris[1,3-benzenedicarboxylic acid] functions as a versatile building block for metal-organic frameworks (MOFs). This compound exhibits significant potential in gas storage and separation applications, offering enhanced structural stability and porosity. Its unique architecture allows for the incorporation of various metal ions, enabling the design of tailored materials for catalysis, sensing, and drug delivery. -
Metal-organic Framework
4-((Tert-butoxycarbonyl)oxy)benzoic acid serves as a crucial building block for the synthesis of metal-organic frameworks (MOFs). This compound facilitates the formation of porous structures, enabling applications in gas storage, separation, and catalysis. Its unique properties make it an essential reagent for researchers investigating advanced materials and their innovative uses in various fields, including environmental science and energy storage. -
Metal-organic Framework
2,4,6-Tris(3-Pyridyl)-1,3,5-triazine serves as a key building block for metal-organic frameworks (MOFs). Its structural features enable the formation of robust networks that can encapsulate metal ions, making it suitable for various applications in catalysis, gas storage, and separation processes. This compound is particularly valuable for research focused on the development of advanced materials with tailored porosity and functionality.

