Metal-Organic Frameworks (MOFs)

Items 1251-1300 of 2973

Page
per page
Set Descending Direction
Catalog No.
Product Name
Application
Product Information
Citations
  1. Metal-organic Framework

    1,1'-[1,4-Phenylenebis(methylene)]bis(4,4'-bipyridinium) dibromide functions as a metal-organic framework (MOF) with notable structural properties. This compound demonstrates significant potential in gas adsorption and separation applications, making it valuable for research in materials science and catalysis. Its unique framework allows for the exploration of new avenues in storage and conversion of energy materials.
  2. Metal-organic Framework

    Bicyclo[3.1.1]heptane-1,5-dicarboxylic acid serves as a key building block in the synthesis of metal-organic frameworks (MOFs). Its unique bicyclic structure facilitates the formation of stable coordination complexes with metal ions, enhancing the structural integrity and functionality of MOFs. This compound is significant in research applications related to gas storage, catalysis, and separation processes in material science.
  3. Metal-organic Framework

    Benzo[1,2-b:4,5-b']dithiophene-2,6-dicarboxylic acid functions as a crucial building block for metal-organic frameworks (MOFs). Due to its unique structural properties, it offers enhanced stability and functionality in various catalytic and gas storage applications. This compound is essential for research in materials science, specifically in the development of novel MOF architectures that exhibit superior performance for gas adsorption and separation.
  4. Metal-organic Framework

    1,1'-(Oxybis(ethane-2,1-diyl))bis(1H-imidazole) serves as a building block in the construction of metal-organic frameworks (MOFs). This compound facilitates coordination with metal ions, enabling the formation of porous structures suitable for gas storage, separation, and catalysis applications. Its unique properties make it valuable for studies in materials science and nanotechnology.
  5. Metal-organic Framework

    5'-Methyl-[1,1':3',1''-terphenyl]-3,3'',5,5''-tetracarboxylic acid is a versatile building block for the synthesis of metal-organic frameworks (MOFs). This compound serves as a ligand, facilitating the formation of highly ordered porous structures valuable for gas storage, separation, and catalysis. Its unique structural properties enable innovative applications in materials science and environmental remediation research.
  6. Metal-organic Framework

    5-(4-Carboxyphenyl)nicotinic acid is a derivative of nicotinic acid that serves as a crucial building block for the synthesis of metal-organic frameworks (MOFs). This compound exhibits unique coordination properties, enabling the formation of porous structures with potential applications in gas storage, catalysis, and drug delivery. Its ability to interact with various metal ions makes it a valuable reagent for researchers exploring advanced materials in the field of chemistry and materials science.
  7. Metal-organic Framework

    5-[4,2′:6′,4′′-Terpyridin]-4′-yl-1,3-benzenedicarboxylic acid serves as a ligand in the formation of metal-organic frameworks (MOFs). This compound facilitates coordination with metal ions, enabling the synthesis of porous materials with tunable properties. Its unique structure supports applications in gas storage, separation processes, and catalysis, making it a valuable reagent for research in material science and coordination chemistry.
  8. Metal-organic Framework

    5,5′-[2,2′-Bipyridine]-5,5′-diylbis[1,3-benzenedicarboxylic acid] acts as a ligand in the formation of metal-organic frameworks (MOFs). This compound is instrumental in the synthesis and stabilization of MOFs, showcasing potential in gas adsorption and separation applications. Its design facilitates coordination with various metal ions, making it valuable in material science research and catalytic studies.
  9. Metal-organic Framework

    2′-Methyl[1,1′-biphenyl]-3,4′,5-tricarboxylic acid acts as a ligand for the construction of metal-organic frameworks (MOFs). This compound is characterized by its tricarboxylic acid functional groups, which facilitate metal coordination, enhancing the stability and porosity of the resulting frameworks. Its potential applications include gas storage, catalysis, and separation processes in materials science and nanotechnology research.
  10. Metal-organic Framework

    5,5'-Methylenebis(2-hydroxybenzoic acid), also known as 5,5'-Methylenedisalicylic acid, serves as a key component in the formation of metal-organic frameworks (MOFs). This compound exhibits significant coordination properties, enabling the synthesis of structures with potential applications in gas storage, catalysis, and environmental remediation. Its ability to facilitate metal-ion coordination makes it a valuable reagent for researchers in materials science and chemical engineering.
  11. Metal-organic Framework

    5,10,15-Trimethyl-10,15-dihydro-5H-diindolo[3,2-a:3',2'-c]carbazole functions as a metal-organic framework (MOF), exhibiting potential in gas storage and separation applications. This compound's unique structure allows for the incorporation of metal ions, enhancing its stability and versatility in various chemical environments. Researchers can utilize this MOF in the development of advanced materials for catalysis, sensing, and environmental remediation studies.
  12. Metal-organic Framework

    4',4''',4''''',4'''''''-(1,4-Phenylenebis(azanetriyl))tetrakis(([1,1'-biphenyl]-4-carboxylicacid)) functions as a metal-organic framework (MOF) designed to facilitate the storage and separation of gases. This compound exhibits significant structural stability and porosity, making it suitable for applications in gas capture, catalysis, and sensing. Its unique properties enable researchers to explore innovative solutions for environmental challenges and energy storage.
  13. Metal-organic Framework

    4,4'-(Phenazine-5,10-diyl)dibenzoic acid is a versatile ligand for the synthesis of metal-organic frameworks (MOFs). It features two carboxylic acid groups that facilitate coordination with metal ions, promoting the formation of robust and stable framework structures. This compound is valuable in research applications related to gas storage, catalysis, and drug delivery systems, making it a crucial component in the development of advanced materials for various chemical processes.
  14. Metal-organic Framework

    5,5'-(Anthracene-9,10-diyl)diisophthalic acid is a versatile organic ligand utilized in the synthesis of metal-organic frameworks (MOFs). This compound facilitates the formation of stable frameworks with significant structural integrity, enabling various applications in gas storage, catalysis, and drug delivery systems. Its unique anthracene moiety also provides photoluminescent properties, making it suitable for optoelectronic research applications.
  15. Metal-organic Framework

    5,5'-Dimethyl-diphenic acid is a dicarboxylic acid that serves as a key building block for metal-organic frameworks (MOFs). It facilitates the design and synthesis of porous materials with tunable properties for various applications in gas storage, separation, and catalysis. This compound is valuable in materials science research aimed at developing advanced functional materials.
  16. Metal-organic Framework

    2,6-Dimethyl-4,4'-bipyridine serves as a ligand for the construction of metal-organic frameworks (MOFs). This compound possesses an ability to coordinate with various metal ions, facilitating the formation of unique porous structures. Its applications span areas such as gas storage, catalysis, and separation technologies in chemical research.
  17. Metal-organic Framework

    1,4-Di(pyridin-4-yl)-5,6,7,8-tetrahydrophthalazine is a compound designed to facilitate the formation of metal-organic frameworks (MOFs). Its unique structure enables coordination with metal ions, enhancing the stability and porosity of the resulting framework. This compound is of significant interest in materials science research, particularly in applications related to gas storage, catalysis, and separation processes.
  18. Metal-organic Framework

    2,3-Dimethylfumaric acid is a key component in the synthesis of metal-organic frameworks (MOFs). Its unique chemical structure facilitates the formation of stable and porous materials with potential applications in gas storage, separation processes, and catalysis. Research involving 2,3-Dimethylfumaric acid contributes to advancements in materials science and environmental applications.
  19. Metal-organic Framework

    4,7-Di(1H-imidazol-1-yl)benzo[c][1,2,5]thiadiazole is a metal-organic framework (MOF) compound that primarily targets metal coordination sites. It exhibits significant potential for use in gas adsorption, storage, and separation applications due to its structural properties. This compound is valuable for research in materials science, catalysis, and environmental studies, enabling the development of advanced functional materials.
  20. Metal-organic Framework

    1,3-Di(1H-1,2,4-triazol-1-yl)propane functions as a linker in metal-organic frameworks (MOFs). This compound facilitates the synthesis of diverse MOF structures, enhancing their porosity and stability. Its unique properties make it a valuable reagent for applications in gas storage, separation processes, and catalysis research.
  21. Metal-organic Framework

    2,5-Di(pyridin-4-yl)-1,3,4-thiadiazole is a compound that functions as a ligand in metal-organic frameworks (MOFs). This biomolecule exhibits significant potential in facilitating the formation of stable coordination complexes, making it valuable for various applications in material science and catalysis. Its unique structure allows for enhanced metal binding, supporting research into advanced porous materials for gas storage, separation, and as catalysts in chemical reactions.
  22. Metal-organic Framework

    Tetrakis(4-((4-bromophenyl)ethynyl)phenyl)methane functions as a metal-organic framework (MOF) with potential applications in gas storage and separation. Its unique structural properties enable the formation of highly porous materials suitable for capturing and storing gases. This compound is valuable for researchers investigating advanced materials for catalysis, environmental remediation, and sustainable energy solutions.
  23. Metal-organic Framework

    4,4',4",4'"-(Perylene-2,5,8,11-tetrayl)tetrabenzoic acid functions as a key building block in the synthesis of metal-organic frameworks (MOFs). This compound exhibits significant potential in applications such as gas storage, catalysis, and sensing due to its robust structural properties and high surface area. Its unique aromatic characteristics contribute to enhanced electronic and photonic properties, making it valuable for research in materials science and nanotechnology.
  24. Metal-organic Framework

    4,7-Di([1,1'-biphenyl]-4-yl)-1,10-phenanthroline is a ligand used in the synthesis of metal-organic frameworks (MOFs). This compound exhibits notable chelating properties, facilitating the coordination of metal ions and enhancing the stability and functionality of the resulting frameworks. Its unique structural characteristics make it suitable for a range of research applications, including catalysis, gas storage, and environmental remediation studies.
  25. Metal-organic Framework

    1,1-Bis(4-chlorophenyl)-2-((3,4-dichlorophenyl)thio)ethanol is a key component used in the synthesis of metal-organic frameworks (MOFs). This compound facilitates the formation of robust frameworks exhibiting high surface areas and tunable porosity. Research applications include gas storage, separation, and catalysis, making it valuable in fields such as materials science and chemical engineering.
  26. Metal-organic Framework

    (3,5-Di(pyridin-4-yl)phenyl)boronic acid serves as a key building block in the synthesis of metal-organic frameworks (MOFs). This compound facilitates the construction of intricate three-dimensional structures that exhibit significant porosity and surface area, making it valuable for applications in gas storage, separation, and catalysis. Research utilizing this boronic acid derivative contributes to advancements in materials science and the development of innovative MOF-based technologies.
  27. Metal-organic Framework

    Sodium tetra(4-sulfophenyl)porphinatocopper is a metal-organic framework (MOF) characterized by its copper-containing porphyrin structure. This compound exhibits significant biological activity, particularly in the areas of catalysis and photonics. Its unique properties make it suitable for various research applications, including drug delivery systems and sensor development, facilitating advancements in materials science and biochemistry.
  28. Metal-organic Framework

    3-(Pyridin-4-yl)benzoic acid serves as a fundamental building block for metal-organic frameworks (MOFs). This compound facilitates the synthesis of novel MOFs, contributing to advancements in material science, gas storage, and catalysis. Its unique structural properties enable exploration in various research applications, including environmental remediation and drug delivery systems.
  29. Metal-organic Framework

    2-(Hydroxymethyl)-2-(4H-1,2,4-triazol-4-yl)propane-1,3-diol functions as a key component in the development of metal-organic frameworks (MOFs). Its structure allows for the coordination of metal ions, facilitating the formation of stable frameworks that can be utilized in gas storage, catalysis, and sensor technologies. This compound serves as an important reagent for researchers investigating advanced materials and their applications in various fields, including environmental science and nanotechnology.
  30. Metal-organic Framework

    5'-Nitro-[1,1':3',1''-terphenyl]-4,4''-dicarboxylic acid serves as a key building block for the synthesis of metal-organic frameworks (MOFs). This compound is notable for its potential to form stable coordination bonds with metal centers, thereby facilitating the construction of porous structures. Its unique properties make it suitable for various research applications, including gas adsorption, catalysis, and the development of new materials for separation technologies.
  31. Metal-organic Framework

    3-Fluoro-1,1'-biphenyl-4,4'-dicarboxylic acid primarily functions as a building block for metal-organic frameworks (MOFs). This compound possesses carboxylic acid functional groups, facilitating the coordination with metal ions to form stable crystalline structures. It is utilized in research applications involving gas storage, catalysis, and separation processes, contributing to advancements in materials science and nano-engineering.
  32. Metal-organic Framework

    5-(3,6-Bis(6-carboxynaphthalen-2-yl)-9H-carbazol-9-yl)isophthalic acid functions as a building block in the construction of metal-organic frameworks (MOFs). This compound exhibits significant potential for applications in gas storage, separation processes, and catalysis due to its structural diversity and tunable properties. Researchers can utilize this reagent to explore new applications in materials science and nanotechnology.
  33. Metal-organic Framework

    2′,3′′,5′′,6′-Tetramethyl[1,1′:4′,1′′:4′′,1′′′-quaterphenyl]-3,3′′′,5,5′′′-tetracarboxylic acid is a versatile ligand for the formation of metal-organic frameworks (MOFs). This compound demonstrates strong coordination properties with metal ions, facilitating the synthesis of highly ordered porous structures. Its unique tetracarboxylic acid functionality enhances the stability and surface area of the resulting MOFs, making them suitable for applications in gas storage, separation, and catalysis research.
  34. Metal-organic Framework

    2,6-Di(pyridin-2-yl)pyrrolo[3,4-f]isoindole-1,3,5,7(2H,6H)-tetraone is a versatile metal-organic framework (MOF) that exhibits significant coordination properties. This compound demonstrates potential for gas storage and separation applications due to its high surface area and tunable porosity. Its unique structural characteristics make it a valuable tool for researchers investigating materials for catalysis, sensing, and environmental remediation.
  35. Metal-organic Framework

    4,4'-(Naphthalene-1,4-diyl)bis(1-(4-isopropylphenyl)pyridin-1-ium)chloride serves as an effective metal-organic framework (MOF) designed for advanced materials research. This compound exhibits unique structural properties conducive to applications in gas storage, separation, and catalysis. Its integration into various experimental setups can facilitate the study of chemical interactions and material performance in catalysis and sensing technologies.
  36. Metal-organic Framework

    Tetrakis(4-(1H-imidazol-1-yl)phenyl)methane primarily acts as a ligand for the construction of metal-organic frameworks (MOFs). Its unique structure facilitates coordination with metal ions, enabling the formation of porous networks suitable for gas storage and separation applications. This compound is useful in materials science and catalysis research, offering insights into MOF design and functionality.
  37. Metal-organic Framework

    2-(4-Nitrophenyl)-1H-1,3-benzodiazole-6-carboxylic acid is a compound designed for use in metal-organic frameworks (MOFs). It exhibits unique structural properties that facilitate the formation of coordinated networks, making it valuable for applications in gas storage, separation, and catalysis. This reagent is instrumental in the synthesis of advanced materials for various research fields, including environmental science and chemical engineering.
  38. Metal-organic Framework

    4,4'-(Anthracene-9,10-diyl)bis(1-(4-isopropylphenyl)pyridin-1-ium)chloride functions as a robust metal-organic framework (MOF) with potential applications in gas storage and separation. Its unique structure facilitates the incorporation of metal ions, enhancing its stability and functionality. This compound can be exploited in fields such as catalysis, sensing, and environmental remediation, making it a valuable tool for chemical research and material science studies.
  39. Metal-organic Framework

    4,4',4"-Boranetriyltris(2,3,5,6-tetramethylbenzoic acid) functions as a metal-organic framework (MOF) structure. This compound exhibits significant potential in catalysis, gas storage, and separation due to its tunable porosity and high surface area. Its application in materials science research enables the exploration of new avenues for efficient energy storage and environmental remediation.
  40. Metal-organic Framework

    Iron azobenzene tetracarboxylic serves as a metal-organic framework (MOF) characterized by its unique iron coordination with an azobenzene structure. This compound demonstrates significant potential in gas storage and separation, catalysis, and sensing applications. Its structural properties and functionality make it an essential reagent for researchers exploring advanced materials and nanotechnology.
  41. Metal-organic Framework

    4,4'-Bi-4H-1,2,4-triazole functions as a ligand in metal-organic frameworks (MOFs). Its structural properties allow for the effective coordination with metal ions, facilitating the synthesis of MOFs with enhanced stability and porosity. This compound is instrumental in applications such as gas storage, catalysis, and sensing, making it a valuable reagent for research in materials science and nanotechnology.
  42. Metal-organic Framework

    6,6'-Bis(bromomethyl)-2,2'-bipyridine is a versatile ligand used in the synthesis of metal-organic frameworks (MOFs). Its ability to coordinate with transition metals enables the formation of robust and stable structures. This compound is significant for applications in gas storage, catalysis, and drug delivery, offering potential for innovative research in materials science and nanotechnology.
  43. Metal-organic Framework

    Tetrahydrofuran-2,5-dicarboxylic acid is a versatile building block for metal-organic frameworks (MOFs). Its carboxylic acid groups promote strong interactions with metal ions, facilitating the formation of stable and porous structures. This compound is essential in the synthesis of MOFs used in applications such as gas storage, separation processes, and catalysis.
  44. Metal-organic Framework

    4′-[4,2′:6′,4′′-Terpyridin]-4′-yl[1,1′-biphenyl]-4-carboxylic acid functions as a building block for metal-organic frameworks (MOFs). This compound is characterized by its ability to coordinate with metal ions, facilitating the formation of porous structures with high surface areas. Its unique structural properties make it suitable for various applications, including gas storage, separation processes, and catalysis research, contributing valuable insights into material science and nanotechnology.
  45. Metal-organic Framework

    4,4'-((2,3,5,6-Tetramethyl-1,4-phenylene)bis(ethyne-2,1-diyl))dipyridine acts as a ligand in metal-organic frameworks (MOFs). This compound exhibits significant potential for various applications, including gas storage, separation, and catalysis due to its unique structural properties. Its incorporation into MOF designs enables enhanced stability and functionality, making it valuable for materials science and environmental research.
  46. Metal-organic Framework

    5',5''''-(Buta-1,3-diyne-1,4-diyl)bis(([1,1':3',1''-terphenyl]-4,4''-dicarboxylic acid)) serves as a versatile building block for the synthesis of metal-organic frameworks (MOFs). Its intricate structure promotes high porosity and tunable surface chemistry, making it suitable for applications in gas storage, catalysis, and sensing. This compound enables researchers to explore new avenues in materials science and nanotechnology.
  47. Metal-organic Framework

    4-(4-(2,2-Bis(4-methoxyphenyl)-1-phenylvinyl)phenyl)pyridine is a compound that serves as a building block in metal-organic frameworks (MOFs). Its unique structural properties enable the formation of highly porous matrices, making it suitable for applications in gas storage, separation, and catalysis. This reagent is useful for researchers exploring the design and synthesis of advanced MOFs with tailored functionalities.
  48. Metal-organic Framework

    3,5-Di(pyridin-3-yl)-4H-1,2,4-triazol-4-amine is a versatile ligand primarily utilized in the construction of metal-organic frameworks (MOFs). This compound exhibits significant coordination abilities due to its triazole and pyridine functional groups, enabling effective metal binding. Its unique structural features make it suitable for applications in gas storage, separation processes, and catalysis research, contributing to advancements in materials science and molecular engineering.
  49. Metal-organic Framework

    1,3,5-Tris(2-pyridyl)benzene serves as a versatile ligand in the formation of metal-organic frameworks (MOFs). Its structure facilitates coordination with various metal ions, enabling the synthesis of porous materials with potential applications in gas storage, catalysis, and separation technologies. This compound is instrumental for researchers exploring advanced materials in the field of inorganic chemistry and material science.
  50. Metal-organic Framework

    [1,1':3',1''-Terphenyl]-4,4'',5'-tricarboxylic acid acts as a versatile building block in the formation of metal-organic frameworks (MOFs). This compound's carboxyl groups facilitate the coordination with metal ions, enabling the creation of robust and porous structures. It is suitable for applications such as gas storage, catalysis, and drug delivery, making it a valuable reagent for researchers in materials science and chemistry.

Items 1251-1300 of 2973

Page
per page
Set Descending Direction