Metal-Organic Frameworks (MOFs)

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  1. Metal-organic Framework

    4',4''',4''''',4'''''''-(Ethene-1,1,2,2-tetrayl)tetrakis(3-fluoro-[1,1'-biphenyl]-4-carboxylicacid) is a metal-organic framework (MOF) designed for advanced material applications. This compound exhibits unique structural properties that enhance its performance in gas adsorption and separation processes. Research applications include studies in catalysis, drug delivery, and environmental remediation, making it a valuable tool for scientists investigating innovative uses of MOFs in various fields.
  2. Metal-organic Framework

    4,4'-(Diazene-1,2-diyl)diphthalic acid functions as a key building block for metal-organic frameworks (MOFs). This compound exhibits notable potential for application in gas adsorption, catalysis, and separation technologies. Its structural properties facilitate the formation of stable frameworks that can be tailored for various chemical applications in materials science and nanotechnology.
  3. Metal-organic Framework

    Tetrakis(4-(diphenylphosphaneyl)phenyl)silane functions as a precursor in the synthesis of metal-organic frameworks (MOFs). It exhibits significant potential for applications in gas storage, catalysis, and sensing due to its tunable structure and functional properties. This compound facilitates the development of advanced materials with enhanced performance for various chemical and environmental research applications.
  4. Metal-organic Framework

    5-Diethoxyphosphorylbenzene-1,3-dicarboxylic acid is a versatile compound utilized in the synthesis of metal-organic frameworks (MOFs). This reagent facilitates the formation of robust MOF structures, which are valuable for applications in gas storage, separation, and catalysis. Its unique molecular framework enhances porosity and stability, making it a key component in materials science and nanotechnology research.
  5. Metal-organic Framework

    4-(4-Pyridin-4-ylphenyl)benzoic acid is a versatile ligand utilized in the formation of metal-organic frameworks (MOFs). This compound exhibits strong coordination properties, facilitating the assembly of MOFs with tunable structural and functional characteristics. It plays a significant role in various biological and chemical research applications, including catalysis, gas adsorption studies, and drug delivery systems.
  6. Metal-organic Framework

    4,4',4'',4'''-((Benzene-1,2,4,5-tetrayltetrakis(methylene))tetrakis(oxy))tetrabenzoic acid serves as a key building block in the synthesis of metal-organic frameworks (MOFs). This compound exhibits significant potential for applications in gas storage, catalysis, and sensor development due to its tunable porosity and functionalized surface. Researchers utilizing this reagent can explore the structural properties and reactivity of novel MOF materials in various chemical and environmental studies.
  7. Metal-organic Framework

    2,4,6-Tri(pyrimidin-2-yl)-1,3,5-triazine primarily functions as a ligand in the construction of metal-organic frameworks (MOFs). This compound displays significant potential in complexing metal ions, which facilitates the formation of stable and highly porous structures. Research applications include gas storage, catalysis, and sensing, making it useful in various fields such as materials science and environmental chemistry.
  8. Metal-organic Framework

    3,6-Di(pyridin-4-yl)-9H-carbazole serves as a key building block in metal-organic frameworks (MOFs). This compound exhibits significant potential for applications in gas storage, separation, and catalysis due to its ability to form stable coordination networks. Its unique structural properties make it suitable for research in material science and nanotechnology, particularly in the development of advanced porous materials.
  9. Metal-organic Framework

    4-(1H-Benzo[d][1,2,3]triazol-1-yl)-1-methylpyridin-1-ium iodide acts as a ligand in metal-organic frameworks (MOFs), facilitating the coordination of metal ions. This compound can enhance the stability and functionality of MOFs, making it valuable for applications in gas storage, catalysis, and environmental remediation. Its unique structural properties enable effective interactions with various metal centers, contributing to the development of advanced materials in chemical research.
  10. Metal-organic Framework

    3,3'-(Acridine-2,7-diyl)dibenzoic acid functions as a ligand in the formation of metal-organic frameworks (MOFs). This compound exhibits significant potential for applications in gas adsorption, separation technologies, and catalysis due to its structure and affinity for metal ions. Its ability to complex with various metals enhances the stability and functionality of MOFs, making it a valuable reagent for researchers in materials science and environmental studies.
  11. Metal-organic Framework

    6-(4-Carboxy-2-methylphenyl)nicotinic acid serves as a precursor for the synthesis of metal-organic frameworks (MOFs). This compound exhibits significant potential for applications in gas adsorption, catalysis, and drug delivery. Its structural properties enable the formation of stable frameworks that can be tailored for various purposes in chemical and material sciences.
  12. Metal-organic Framework

    2-((2,4-Dichlorobenzyl)amino)-1,1-bis(4-fluorophenyl)ethanol functions as a metal-organic framework (MOF) with potential applications in catalysis, gas storage, and environmental remediation. This compound exhibits enhanced stability and functional diversity, making it a versatile choice for research in material science and nanotechnology. Its unique structure allows for exploration in areas such as drug delivery and sensor development.
  13. Metal-organic Framework

    Diethyl [2,2':6',2''-terpyridin]-4'-ylphosphonate is a metal-organic framework (MOF) that exhibits unique metal coordination properties. This compound serves as a versatile ligand, enabling the formation of MOFs with tunable architecture and functionality. It is utilized in research applications involving catalysis, gas storage, and sensor development, contributing to advancements in materials science and nanotechnology.
  14. Metal-organic Framework

    Rel-(1R,2R)-cyclohex-4-ene-1,2-dicarboxylic acid, also known as trans-1,2,3,6-Tetrahydrophthalic acid, serves as a crucial building block for metal-organic frameworks (MOFs). Its structural attributes facilitate the design and synthesis of advanced MOF materials, which exhibit unique properties for gas storage, separation, and catalysis applications. This compound is instrumental in research focusing on innovative materials for environmental and energy-related technologies.
  15. Metal-organic Framework

    3-Methyl-4,4'-bi-1H-pyrazole is a ligand that facilitates the formation of metal-organic frameworks (MOFs). Its unique structure allows for the coordination to various metal centers, enhancing the stability and porosity of MOFs. This compound is useful in research applications involving gas adsorption, catalysis, and sensing technologies.
  16. Metal-organic Framework

    5,5′-[1,4-Phenylenebis(oxy)]bis[1,3-benzenedicarboxylic acid] serves as a coordinating ligand in the synthesis of metal-organic frameworks (MOFs). Its structural properties enable the formation of robust frameworks suitable for applications in gas storage, catalysis, and separation processes. This compound is of interest for researchers focused on designing advanced materials for environmental and industrial applications.
  17. Metal-organic Framework

    Tris(4-(1H-pyrazol-4-yl)phenyl)amine primarily targets metal-organic frameworks (MOFs) and serves as a versatile building block in their synthesis. This compound exhibits notable structural stability and functionalization potential, making it valuable for various applications, including gas storage and separation, catalysis, and sensing technologies. Its unique molecular configuration enhances the interaction with metal ions, facilitating the formation of highly ordered porous structures that are essential in advanced material science research.
  18. Metal-organic Framework

    2',5'-Bis(trifluoromethyl)-[1,1':4',1"-terphenyl]-3,3",5,5"-tetracarboxylic acid serves as a key ligand in the formation of metal-organic frameworks (MOFs). This compound exhibits significant coordination properties, allowing for the stabilization of various metal centers. Its unique structural features make it suitable for applications in gas storage, catalysis, and sensing technologies. Researchers can utilize this compound to develop advanced materials with tailored functionalities in materials science.
  19. Metal-organic Framework

    4,8-Diaminonaphthalene-2,6-dicarboxylic acid is a key precursor for the synthesis of metal-organic frameworks (MOFs). This compound exhibits significant potential for constructing highly porous materials with tailored properties. Its applications include gas storage, separation processes, and catalysis in various chemical reactions. Researchers utilize this reagent to develop novel MOF structures and investigate their functionalities in advanced materials science and nanotechnology.
  20. Metal-organic Framework

    Tetramethyl naphthalene-1,4,5,8-tetracarboxylate serves as a key ligand in the formation of metal-organic frameworks (MOFs). This compound is utilized in materials science and catalysis research due to its ability to coordinate with metal centers, facilitating the development of porous structures with tunable properties. Its unique structural features make it beneficial for applications in gas storage, separation processes, and heterogeneous catalysis.
  21. Metal-organic Framework

    2-(n-(Carboxymethyl)sulfamoyl)terephthalic acid functions as a key ligand in the formation of metal-organic frameworks (MOFs). This compound facilitates the coordination of metal ions, enhancing the stability and functionality of MOF structures. Its unique properties make it suitable for applications in gas storage, catalysis, and chemical sensing within materials science and nanotechnology research.
  22. Metal-organic Framework

    2,5-Di-1H-pyrazol-4-ylpyridine is a ligand commonly employed in the formation of metal-organic frameworks (MOFs). This compound facilitates the coordination of metal ions, forming stable and porous structures suitable for applications in gas storage, catalysis, and separation processes. Its unique structure and properties make it valuable in materials science and nanotechnology research.
  23. Metal-organic Framework

    2-(Trifluoromethyl)-[1,1'-biphenyl]-4,4'-dicarboxylic acid serves as a critical building block for the synthesis of metal-organic frameworks (MOFs). This compound exhibits unique structural properties that enhance the stability and functionality of MOFs, making it suitable for applications in gas storage, catalysis, and separation processes. Its trifluoromethyl group contributes to electronic tuning, further broadening its potential in advanced material science research.
  24. Metal-organic Framework

    5,5'-(Ethyne-1,2-diyl)bis(2-aminobenzoic acid) serves as a building block for metal-organic frameworks (MOFs). This compound facilitates the assembly of coordination polymers, offering unique structural properties and enhancing functional versatility. It is primarily utilized in studies focused on gas storage, catalysis, and separation processes within MOF research.
  25. Metal-organic Framework

    1,1-Bis(4-chlorophenyl)-2-((4-fluorobenzyl)amino)ethanol functions as a metal-organic framework (MOF), exhibiting versatility in applications such as gas storage, separation, and catalysis. Its unique structure enhances structural stability and adsorption properties, making it an important reagent for studies involving metal coordination and framework synthesis. This compound is essential for researchers exploring innovative materials in the fields of materials science and nanotechnology.
  26. Metal-organic Framework

    4,4',4''-(2,4,6-Trimethylbenzene-1,3,5-triyl)tripyridine is a metal-organic framework (MOF) designed for advanced materials research. This compound exhibits robust structural integrity and high porosity, making it suitable for applications in gas storage, catalysis, and separation processes. Its unique pyridine-functionalized framework enables enhanced interactions for various chemical reactions, contributing to innovative developments in material science and catalysis.
  27. Metal-organic Framework

    3,3',3''-((Benzene-1,3,5-tricarbonyl)tris(azanediyl))tribenzoic acid acts as a ligand in the formation of metal-organic frameworks (MOFs). This compound facilitates the coordination with metal ions, enabling the design and synthesis of novel MOFs with tailored properties. Key biological activities include potential applications in gas storage, separation processes, and catalysis, making it valuable for research in materials science and nanotechnology.
  28. Metal-organic Framework

    1,4-Bis(1H-benzo[d]imidazol-2-yl)benzene functions as a key building block in the formation of metal-organic frameworks (MOFs). This compound exhibits significant potential for applications in gas storage, catalysis, and separation processes. Its unique structural features facilitate the design of porous materials for advanced functionalization and enhanced chemical activity in various research settings.
  29. Metal-organic Framework

    4'-([1,1'-Biphenyl]-4-yl)-2,2':6',2''-terpyridine is a metal-organic framework (MOF) characterized by its unique terpyridine structure. This compound exhibits significant potential for selective metal ion coordination, making it a valuable tool in the development of advanced materials for catalysis and gas storage. Its applications extend to environmental science and material engineering, where it can be utilized in the capture and conversion of small molecules.
  30. Metal-organic Framework

    Zn-ZIF-62 is a metal-organic framework characterized by its unique coordination of zinc ions and organic linkers, primarily benzimidazole and imidazole derivatives. This compound displays exceptional porosity and stability, making it suitable for gas adsorption and separation applications. Its versatility in catalysis and storage of hydrogen and carbon dioxide highlights its potential in environmental and energy research. Zn-ZIF-62 serves as a valuable tool for scientists exploring the properties and functionalities of MOFs in various fields.
  31. Metal-organic Framework

    5-(4,4,5,5-Tetramethyl-1,3,2-dioxaborolan-2-yl)isobenzofuran-1,3-dione, also known as phthalic anhydride-4-boronic acid pinacol ester, serves as a precursor in the synthesis of metal-organic frameworks (MOFs). This compound exhibits versatile chemical properties that enable its use in the fabrication of intricate porous materials. MOFs synthesized with this reagent are valuable for applications in gas storage, separation processes, and catalysis research.
  32. Metal-organic Framework

    2-(4-Pyridinyl)-1H-imidazole-4,5-dicarboxylic acid serves as a key building block in the formation of metal-organic frameworks (MOFs). Its unique structural characteristics enable the development of highly porous materials with applications in gas storage, separation, and catalysis. This compound's ability to coordinate with various metal centers enhances the stability and tunability of MOFs, making it valuable for research in materials science and environmental applications.
  33. Metal-organic Framework

    1,2-Bis((1H-1,2,4-triazol-1-yl)methyl)benzene primarily functions as a building block for metal-organic frameworks (MOFs). This compound enables the stabilization of metal ions through coordination and enhances the structural integrity of the MOF. Its unique triazole functionalities contribute to potential applications in gas storage, catalysis, and sensing. Researchers can leverage its properties to explore new materials with tailored functionalities for various chemical processes.
  34. Metal-organic Framework

    5-(1,2,2-Triphenylvinyl)isophthalic acid serves as a key building block in the synthesis of metal-organic frameworks (MOFs). This compound demonstrates unique structural features that facilitate the formation of robust frameworks, enhancing their thermal stability and gas adsorption capabilities. It is valuable for applications in gas storage, separation technologies, and catalysis research.
  35. Metal-organic Framework

    5-(4-Carboxyphenyl)pyrimidine-2-carboxylic acid is a ligand used in the synthesis of metal-organic frameworks (MOFs). It exhibits significant structural versatility, enabling the formation of coordination complexes with metal ions. This compound is applicable in areas such as gas storage, catalysis, and the development of functional materials, contributing to advances in materials science and nanotechnology.
  36. Metal-organic Framework

    [4,2':5',4''-Terpyridine]-4'-carbonitrile functions as a ligand in metal-organic frameworks (MOFs), facilitating the coordination of metal ions. This compound exhibits significant potential for gas adsorption and storage applications, making it valuable for research in catalysis and environmental science. Its structural versatility allows it to be utilized in synthesizing novel materials with tailored properties for various scientific applications.
  37. Metal-organic Framework

    6-(4-Carboxyphenoxy)-2-naphthoic acid is a synthesis precursor for metal-organic frameworks (MOFs). This compound exhibits the ability to coordinate with metal ions, forming stable MOF structures suitable for gas storage, separation, and catalysis. Its application in materials science and environmental research highlights its significance in developing advanced functional materials.
  38. Metal-organic Framework

    4,4'-Azanediyldibenzoic acid, also known as 4,4'-Iminodibenzoic acid, serves as a versatile ligand in the synthesis of metal-organic frameworks (MOFs). This compound facilitates the formation of stable networks by coordinating with various metal ions, thereby enhancing the structural integrity and functionality of the resulting materials. Its application in MOF research includes gas storage, separation processes, and catalysis, making it a valuable reagent for advancing materials science and environmental applications.
  39. Metal-organic Framework

    3,6-Di(pyridin-2-yl)-1,4-dihydro-1,2,4,5-tetrazine is a compound with significant potential as a building block for metal-organic frameworks (MOFs). It exhibits unique structural properties that facilitate the coordination of metal ions, enabling the formation of stable and functionalized MOFs. This compound is suitable for research applications in gas storage, catalysis, and drug delivery systems, contributing to advancements in material science and nanotechnology.
  40. Metal-organic Framework

    meso-Tetrakis(4-chlorophenyl)porphyrin-Mn(III)chloride is a metal-organic framework (MOF) consisting of a manganese(III) chloride center coordinated by a tetrakis(4-chlorophenyl)porphyrin ligand. This compound exhibits unique structural and electronic properties, making it suitable for applications in catalysis and as a sensor material. It may also serve as a platform for the study of metal coordination chemistry and porphyrin-based systems in biological contexts.
  41. Metal-organic Framework

    4-(1H-Imidazol-1-yl)pyridine functions as a ligand in metal-organic frameworks (MOFs). Its unique structural characteristics facilitate the formation of stable coordination bonds with metal ions, making it a valuable reagent in the synthesis of MOF materials. This compound is primarily utilized in research applications focused on gas storage, catalysis, and sensing technologies.
  42. Metal-organic Framework

    Pyrido(1,2-a)quinolinylium bromide acts as a precursor in the synthesis of metal-organic frameworks (MOFs). Its unique chemical structure enables the formation of porous materials with adjustable properties, making it suitable for applications in gas storage, catalysis, and separation processes. This compound serves as a valuable tool in the development of advanced materials for various fields in chemical research.
  43. Metal-organic Framework

    5,5'-(Anthracene-9,10-diylbis(ethyne-2,1-diyl))diisophthalic acid functions as a ligand for the construction of metal-organic frameworks (MOFs). This compound exhibits remarkable structural versatility, making it suitable for applications in gas storage, catalysis, and sensing technologies. Its strong π–π stacking interactions contribute to the stability and functionality of the resulting MOFs, enabling the study of their properties for various chemical and environmental research applications.
  44. Metal-organic Framework

    5,5'-(Diazene-1,2-diyl)bis(benzene-1,2,3-tricarboxylic acid) functions as a building block in metal-organic frameworks (MOFs). It exhibits key properties that facilitate the formation of highly porous materials suitable for gas storage and separation applications. This compound is of particular interest in the development of advanced materials for catalysis and environmental remediation research. Its unique structural characteristics enable the design of tailored MOFs with specific functionality.
  45. Metal-organic Framework

    2,4,6-Tris(4-(1H-tetrazol-5-yl)phenyl)-1,3,5-triazine functions as a ligand in the formation of metal-organic frameworks (MOFs). This compound exhibits significant binding affinity for various metal ions, facilitating the synthesis of MOFs with tailored properties. Its unique structure allows for the incorporation of versatile functionalities, making it suitable for applications in gas storage, catalysis, and chemical sensing. Researchers can leverage this reagent to explore innovative materials with enhanced performance in materials science and environmental chemistry studies.
  46. Metal-organic Framework

    5,5',5'',5'''-((Ethene-1,1,2,2-tetrayltetrakis(benzene-4,1-diyl))tetrakis(ethyne-2,1-diyl))tetraisophthalic acid serves as a versatile building block for metal-organic frameworks (MOFs). This compound exhibits significant potential for gas storage and separation applications due to its high surface area and tunable porosity. Researchers utilize this MOF in studies related to catalysis, sensing, and environmental remediation, making it a valuable tool in advanced material science investigations.
  47. Metal-organic Framework

    1,4-Di([2,2'-bipyridin]-4-yl)benzene serves as a key building block for the development of metal-organic frameworks (MOFs). This compound exhibits unique coordination properties with metal ions, facilitating the formation of stable and porous structures. Its applications in catalysis, gas storage, and sensor technology make it a valuable reagent for researchers exploring advanced materials and molecular engineering.
  48. Metal-organic Framework

    4,4'-(Carbonylbis(azanediyl))dibenzoic acid serves as a versatile building block for metal-organic frameworks (MOFs). This compound exhibits strong coordination properties, facilitating the formation of stable frameworks with various metal ions. Its unique structural features enable applications in gas storage, separation processes, and catalysis research. Researchers engage this compound to explore the design and synthesis of advanced MOFs for a range of technological applications.
  49. Metal-organic Framework

    1,1',1''-((2,4,6-Trimethylbenzene-1,3,5-triyl)tris(methylene))tris(1H-benzo[d]imidazole) is a metal-organic framework (MOF) characterized by its intricate structure and robust stability. This compound demonstrates significant potential for gas adsorption and separation applications due to its high surface area and tunable porosity. Research utilizing this MOF includes studies in catalysis, environmental remediation, and storage of small molecules.
  50. Metal-organic Framework

    5-(Pyridin-3-yl)isophthalic acid is a key building block for the synthesis of metal-organic frameworks (MOFs). This compound serves as a versatile ligand that coordinates with metal centers to create well-defined porous structures. MOFs synthesized with 5-(Pyridin-3-yl)isophthalic acid exhibit significant potential for applications in gas storage, separation, and catalysis in various fields of chemical research.

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