MIL-101(Fe) Powder Metal Organic Frameworks (MOFs) – Reliable China Suppliers & Factory for Adsorption and Catalysis
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| Product Name | MIL-101(Fe) |
| Particle size | 1-3 μm |
| Specific surface area | ≥1000㎡/g |
| Pore size | 0.3~2.0 nm |
MIL-101(Fe) is a metal-organic framework (MOF) primarily composed of iron (Fe) ions coordinated with organic ligands, specifically 1,4-benzenedicarboxylic acid (BDC). This structure provides high porosity and surface area, making it suitable for various applications, including pollutant remediation and energy storage.
The framework is based on iron ions (Fe3+) which are pivotal for its structural integrity and functionality (Chen et al., 2024). The BDC ligands form a robust coordination network with the iron ions, contributing to the stability and porosity of the MOF (Liu et al., 2024).
Effectively utilized for the simultaneous removal of heavy metals like Pb²⁺, Cd²⁺, and Cu²⁺ from contaminated water and soil, achieving low residual concentrations (Wang et al., 2025).
Serves as a photocatalyst for degrading crude oil in wastewater, demonstrating a remarkable 94.73% removal efficiency under optimized conditions (Wang et al., 2024).
Modified to create efficient electrocatalysts for rechargeable Zn-air batteries, showcasing high performance in oxygen evolution and reduction reactions (Hao et al., 2024).
Composites with iron nanoparticles have been developed for supercapacitor applications, achieving an impressive capacitance of 1305 F g⁻¹ (Mahajan et al., 2024).
While MIL-101(Fe) shows promise in these applications, challenges such as scalability and long-term stability in practical environments remain areas for further research.
MIL-101(Fe) is a metal-organic framework (MOF) primarily composed of iron (Fe³⁺) ions coordinated with 1,4-benzenedicarboxylic acid (BDC) organic ligands.
It features a particle size of 1-3 μm, a specific surface area of ≥1000 m²/g, and a pore size distribution of 0.3 to 2.0 nm, providing high porosity and structural stability.
It is used to simultaneously remove heavy metals (such as Pb²⁺, Cd²⁺, and Cu²⁺) from water and soil, and acts as a photocatalyst to degrade crude oil in wastewater with up to 94.73% efficiency.
It is modified to construct efficient electrocatalysts for rechargeable Zn-air batteries and developed into composites with iron nanoparticles for supercapacitors, achieving a high capacitance of 1305 F g⁻¹.
The main challenges for the practical implementation of MIL-101(Fe) are scalability for mass production and maintaining long-term stability in real-world operating environments.

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