Er-MOF Erbium Metal-Organic Framework ≥98% ATOMFAIR®

Price range: $261.00 through $502.00

Institutional Procurement & Supply Compliance: As a verified US supplier, Atomfair accepts formal institutional Purchase Orders (POs), contract billing schedules, and custom procurement loops for university and national laboratories, and corporate R&D departments globally.

Research-grade Er-MOF powder with ≥98 wt% purity, 100–500 nm particles, 1–2 nm and >10 nm pores, and BET surface area ≤50 m²/g for advanced research. Order now.

SKU: AFMSUXCG916
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Er-MOF (AF-MO-D-ERMF-F140-F140)

RESEARCH GRADE MATERIAL

Product Overview

This premium research-grade Er-MOF (Model: KAR-F14) is an erbium-based metal-organic framework supplied as a high-purity light pink powder. Engineered with a distinct large pore volume configuration and optimized surface characteristics, it offers highly robust thermal stability and structured coordination pathways. This porous framework material is specifically developed to provide precision phase control for advanced laboratory research across gas adsorption matrices, molecule separations, and hazardous gas storage application testing.

Technical Specifications

PARAMETER DETAILS
1. Core Device & Material Profiles
Product Name Er-MOF (Erbium Metal-Organic Framework)
SKU / System Code AF-MO-D-ERMF-F140-F140
Appearance Light Pink Powder
Material Purity ≥98 wt%
Particle Size 100 – 500 nm
Specific Surface Area (BET) ≤50 m²/g
Pore Size Distribution 1 – 2 nm and >10 nm
2. Performance & Research Validation Metrics
Gas Management Profiles High-efficiency porous trapping for specialized gas adsorption, multi-component gas separation, and target molecule storage testing
Electrochemical Interconnectivity Optimized framework configuration for ion-exchange kinetics, electrocatalytic coordination, and membrane separation studies
Advanced Sensor Applications Lanthanide electronic matrix properties suited for magnetic materials, specialized optical materials, and biochemical sensing arrays
Biomedical Research Suitability Engineered porous topography accommodating molecular drug delivery vehicles, biomedical imaging markers, and molecular recognition pathways

Key Features & Advantages

  • Large Pore Volume Topography: Distinct dual-pore diameter profile provides excellent steric trapping and enhanced target gas accommodation properties.
  • High Thermal Tolerance Matrix: Specifically synthesized to maintain structural integrity and prevent phase degradation during elevated temperature testing regimes.
  • SCI-Grade Analytical Quality: Rigidly processed batch consistency guaranteeing exceptional purity baselines to preserve uncompromised laboratory data reproducibility.

APPLICATION SCOPE: Validated for carbon capture optimization, multi-phase industrial gas separations, membrane substrate construction, sensor design, and biomedical molecular tracking configurations.
STORAGE CONDITIONS: Maintained under ambient, dry, and dark conditions inside tightly sealed containers. Material quality is backed by a 12-month standard validation shelf life when original seals remain intact.
IMPORTANT NOTICE: This product is highly sensitive to ambient exposure. Keep containers tightly sealed or handle exclusively within an anhydrous inert gas environment to prevent phase contamination or structural degradation before thermal validation.

This material is highly sensitive to ambient moisture and oxygen, requiring handling exclusively in an anhydrous inert gas environment to prevent phase contamination and structural degradation. Storage must be in a tightly sealed container under ambient, dry, and dark conditions, with a validated shelf life of 12 months when seals remain intact.

  • Environmental Sensitivity: Exposure to ambient atmosphere can cause phase contamination or structural degradation before thermal validation.
  • Inert Gas Handling Requirement: All handling must be performed within an anhydrous inert gas environment such as a glovebox.
  • Storage Conditions: Store in a tightly sealed container under dry, dark, ambient conditions to maintain material stability.
  • Shelf Life: The material is backed by a 12-month standard validation shelf life when original seals remain intact.
  • Thermal Validation: Thermal validation procedures must be conducted under inert conditions to prevent degradation.

How does the dual-pore size distribution of Er-MOF (KAR-F14) affect its gas adsorption selectivity?

The Er-MOF features a dual-pore diameter profile of 1–2 nm and >10 nm, providing distinct steric trapping and enhanced target gas accommodation. This bimodal distribution enables selective adsorption based on molecular size, making it suitable for multi-component gas separations and hazardous gas storage testing as described in the product specifications.

What are the handling and storage requirements for Er-MOF to prevent structural degradation during thermal validation?

The product 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 structural degradation before thermal validation. Storage requires ambient, dry, dark conditions with a 12-month shelf life when original seals remain intact.

What infrastructure is required to process Er-MOF for biomedical molecular tracking configurations?

The material's engineered porous topography accommodates molecular drug delivery vehicles and biomedical imaging markers. However, due to its sensitivity to ambient exposure, processing for biomedical applications requires anhydrous inert gas environments to maintain purity and structural integrity. The specific surface area (≤50 m²/g) and particle size (100–500 nm) influence its suitability for these applications.

Er-MOF (KAR-F14) is a research-grade erbium metal-organic framework supplied as a light pink powder with dual-pore size distribution (1–2 nm and >10 nm) and high thermal stability, making it suitable for gas adsorption, separation, and biomedical research. However, the material is highly sensitive to ambient moisture and air, requiring anhydrous inert gas handling to prevent structural degradation, and has a 12-month shelf life under sealed storage.

Positive

  • Dual-pore architecture for gas trapping: The distinct pore size distribution (1–2 nm and >10 nm) provides large pore volume and steric trapping capability, enhancing target gas accommodation and separation performance.
  • High thermal stability matrix: Synthesized to maintain structural integrity and prevent phase degradation during elevated temperature testing regimes, enabling reliable high-temperature experiments.

Trade-offs

  • Anhydrous inert gas handling required: The material is highly sensitive to ambient exposure; containers must be kept tightly sealed or handled exclusively under anhydrous inert gas to prevent phase contamination or structural degradation.
  • Limited 12-month shelf life: Under ambient, dry, and dark conditions with original seals intact, the validated shelf life is 12 months, requiring careful inventory management.

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).

weight

2g, 10g