KAR-F36 DUT-67 ZIRCONIUM BASED METAL ORGANIC FRAMEWORKRESEARCH GRADE MATERIAL
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TAILORED SOLUTIONS FOR RESEARCH
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This Zirconium-based MOF requires strict control of ambient exposure to prevent phase contamination or degradation. Handling must be performed exclusively under anhydrous inert gas conditions with containers tightly sealed until thermal validation.
- Ambient Exposure Sensitivity: The material is highly sensitive to ambient moisture and oxygen, which can cause irreversible degradation.
- Inert Atmosphere Handling: All handling must be conducted within an anhydrous inert gas environment to maintain structural integrity.
- Container Sealing: Containers must remain tightly sealed when not in use to prevent atmospheric contamination.
- Thermal Validation Precaution: Exposure to ambient conditions should be avoided until the material undergoes thermal validation to prevent degradation.
How does the pore structure of DUT-67 (KAR-F36) influence its performance in gas separation and catalytic applications?
The DUT-67 framework features a pore size of 0.3–2.0 nm and a specific surface area of ≥800 m²/g, which together provide high capacity for selective adsorption of CO₂, H₂, and CH₄, as well as efficient substrate access for catalytic reactions. This microporous architecture supports both gas mixture separation and metal nanoparticle catalyst support for hydrogen generation from formic acid decomposition.
Can KAR-F36 DUT-67 be used as a catalyst support for hydrogen generation from formic acid?
Yes, the product specifications explicitly state that DUT-67 acts as a catalyst support for metal nanoparticles in formic acid decomposition to generate hydrogen. It also directly catalyzes organic acid-base and redox reactions and forms composites for photocatalytic hydrogen evolution, making it suitable for hydrogen production research.
What handling precautions are required for KAR-F36 DUT-67 to prevent degradation before use?
KAR-F36 DUT-67 is highly sensitive to ambient exposure. Containers must be kept tightly sealed and handled exclusively within an anhydrous inert gas environment to prevent phase contamination or degradation before thermal validation. This is critical to maintain the material's structural integrity and performance in adsorption or catalytic experiments.
The DUT-67 (KAR-F36) Zr-based MOF delivers high specific surface area (≥800 m²/g) and excellent chemical/thermal stability, enabling reproducible performance in gas adsorption, catalysis, and environmental remediation. However, strict inert gas handling is required to prevent ambient degradation.
Positive
- High Specific Surface Area and Porosity: With a specific surface area ≥800 m²/g and pore sizes of 0.3–2.0 nm, this MOF provides abundant active sites for gas adsorption, catalysis, and heavy metal ion capture, enhancing reaction kinetics and separation efficiency.
- Exceptional Chemical and Thermal Stability: The framework maintains structural integrity under harsh conditions, enabling reproducible performance in multi-cycle adsorption, thermal energy systems, and redox catalytic reactions.
Trade-offs
- Ambient Sensitivity Requires Inert Handling: The material is highly sensitive to moisture and air; it must be stored in sealed containers and handled exclusively in an anhydrous inert gas environment to prevent phase contamination or degradation before use.
Every advanced material, component, equipment, and instrument in our catalog is backed by rigorous testing. We maintain strict internal quality management frameworks and align with CE conformity metrics to deliver transparent, reproducible performance data via our public open-science repository.
To request raw batch performance data, submit formal vendor registration paperwork, or execute a fast-turnaround R&D manufacturing loop, contact us at inquiry@atomfair.com.
Item is dispatched under the Atomfair Shipping & Delivery Framework (Free worldwide shipping on orders over $59 USD excl. heavy equipment). Return is governed by the Atomfair Return & Refund Policy (7-day technical return window).






