NH2-MIL-101(Fe) Powder MOFs from China Suppliers - Advanced Catalysis and Sensing Solutions from Our Factory
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| Product Name | NH2-MIL-101(Fe) |
| Particle size | 0.8~1.0 μm |
| Specific surface area | ≥260㎡/g |
| Pore size | ≈2.1nm |
Catalytic Applications
NH2-MIL-101(Fe) serves as a support for Au-Cu nanoalloys, enhancing nitrogen fixation efficiency by improving N2 adsorption and reducing the energy barrier for N2 bond cleavage, achieving a notable NH3 yield of 161.07 μg h−1 mg-1cat. and a Faradaic efficiency of 58.86%.
The framework facilitates multi-site catalysis, activating both N2 and H2 under mild conditions, which is crucial for sustainable ammonia production.
Sensing Applications
NH2-MIL-101(Fe) nanoparticles have been integrated into sensors for simultaneous detection of caffeic acid and acetaminophen, demonstrating high sensitivity with detection limits of 29 nM and 24 nm, respectively.
Functionalized NH2-MIL-101(Fe) has been developed as a fluorescent biosensor for lead ions, achieving a detection limit of 9.51 ppb, showcasing its potential in environmental monitoring.
While NH2-MIL-101(Fe) exhibits remarkable capabilities, challenges remain in optimizing its performance for large-scale applications and ensuring stability under various operational conditions.
NH2-MIL-101(Fe) features a particle size of 0.8~1.0 μm, a specific surface area of ≥260㎡/g, and a pore size of approximately 2.1nm.
It serves as a support for Au-Cu nanoalloys, which improves N2 adsorption and reduces the energy barrier for N2 bond cleavage, leading to an NH3 yield of 161.07 μg h−1 mg-1cat. and a Faradaic efficiency of 58.86%.
Yes. The framework enables multi-site catalysis that activates both N2 and H2 under mild conditions, supporting sustainable ammonia synthesis.
It can be integrated into sensors for the simultaneous detection of caffeic acid and acetaminophen, with low detection limits of 29 nM and 24 nm, respectively.
Yes, functionalized NH2-MIL-101(Fe) works as a fluorescent biosensor for detecting lead ions, achieving a highly sensitive detection limit of 9.51 ppb.
The main challenges include optimizing its performance for large-scale industrial applications and maintaining long-term stability under diverse operational conditions.

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