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MIL-88A(Fe) Powder Metal Organic Frameworks MOFs - China Suppliers and Factory for Environmental Remediation and Catalysis

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MIL-88A(Fe), made from FeCl3·6H2O and sodium fumarate, is a promising material widely recognized for its significant applications in environmental remediation and catalysis. As a leading product from reputable suppliers in China, our factory ensures that MIL-88A(Fe) meets the highest quality standards. This versatile compound offers innovative solutions for effective environmental solutions and advanced catalytic processes, making it an ideal choice for various industrial applications. Choose our MIL-88A(Fe) to enhance your projects with the reliability that only top-tier suppliers from China can provide

    Product Name MIL-88A(Fe)
    Particle size 0.1~0.2 μm
    Specific surface area ≥28 ㎡/g
    Pore size 0.4~2.0 nm

    MIL-88A(Fe), a brown powder form of Metal Organic Frameworks (MOFs), is synthesized using FeCl3·6H2O and sodium fumarate. This MOF has emerged as a promising material for environmental remediation and catalysis, showcasing its ability to activate hydrogen peroxide (H2O2) in photo-self Fenton systems. This activation is instrumental in the degradation of pollutants such as tetracycline and 2,4-dichlorophenoxyacetic acid (2,4-D) under visible light, achieving remarkable removal efficiencies and bacterial inactivation rates.

    Key Application: The integration of MIL-88A(Fe) with other materials, like V2CTx MXene, has been demonstrated to enhance its electrocatalytic properties, particularly for nitrogen reduction.

    This integration has led to improved yields and selectivity of ammonia, a critical component in various industrial processes and a key nutrient in agricultural fertilizers.

    KAR-F47 MIL-88A(Fe)

    Optimization of MIL-88A(Fe) synthesis through ultrasonic methods has been shown to expedite the synthesis process while maintaining high yields. This method is particularly beneficial in the production of biologically active compounds, such as benzoxazoles, which have potential applications in pharmaceuticals and agrochemicals.

    Physically, MIL-88A(Fe) is characterized by its particle size, with a width of 50 nm and a length ranging from 500 to 2000 nm. Despite its specific surface area being less than 100 ㎡/g, the MOF offers a versatile pore size range from 0.4 to 2.0 nm, accommodating a variety of applications that require different degrees of molecular sieving.

    MIL-88A(Fe) stands out as a sustainable and efficient catalyst with a broad spectrum of applicability in environmental and synthetic chemistry. Its multifunctional nature and the ongoing research into its properties and applications ensure that MIL-88A(Fe) will continue to be a significant player in the development of eco-friendly and high-performance materials for a wide range of industries.

    Frequently Asked Questions

    Q: What is MIL-88A(Fe) and how is it synthesized?

    MIL-88A(Fe) is a brown powder form of Metal Organic Frameworks (MOFs). It is synthesized using iron chloride hexahydrate (FeCl3·6H2O) and sodium fumarate.

    Q: What are the primary environmental applications of MIL-88A(Fe)?

    It is widely used in environmental remediation to activate hydrogen peroxide (H2O2) in photo-self Fenton systems. This process effectively degrades pollutants like tetracycline and 2,4-D under visible light, and assists in bacterial inactivation.

    Q: How does MIL-88A(Fe) perform in electrocatalytic applications?

    When integrated with materials like V2CTx MXene, MIL-88A(Fe) shows enhanced electrocatalytic properties, particularly for nitrogen reduction, resulting in improved yield and selectivity of ammonia.

    Q: What are the physical dimensions and pore properties of MIL-88A(Fe)?

    Physically, it has a particle width of 50 nm and a length of 500 to 2000 nm. It features a specific surface area of ≥28 ㎡/g and a versatile pore size range of 0.4 to 2.0 nm, suitable for molecular sieving.

    Q: How can the synthesis process of MIL-88A(Fe) be optimized?

    Ultrasonic methods can be used to optimize the synthesis, significantly expediting the production process while maintaining high yields. This is highly beneficial for producing biologically active compounds like benzoxazoles.