UIO-66 Derived Nanoporous Carbon 800–1200 m²/g ATOMFAIR®

Price range: $234.00 through $576.00

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 UIO-66 derived nanoporous carbon with 800–1200 m²/g BET surface area and 0.5–3 nm hierarchical pores for energy storage. Order now.

SKU: AFMSIIGN552
Category:
Brands:

UIO-66 Derived Nanoporous Carbon (AF-MO-D-UIO6-CARB-F300)

RESEARCH GRADE MATERIAL

Product Overview

This premium research-grade nanoporous carbon material is synthesized directly via the controlled thermal conversion of UIO-66 metal-organic frameworks. Featuring a highly stable hierarchical micro-mesoporous matrix, it balances high specific surface area with optimized pore structuring to deliver superior electrical conductivity and catalytic accessibility. Engineered for critical laboratory evaluation across electrochemical energy storage systems, surface modification research, and advanced environmental remediation matrices.

Technical Specifications

PARAMETER DETAILS
1. Core Device & Material Profiles
Product Name UIO-66 Derived Nanoporous Carbon Material
SKU / System Code AF-MO-D-UIO6-CARB-F300
Appearance Black Powder
Specific Surface Area (BET) 800 – 1200 m²/g
Pore Structure Type Hierarchical Micro-Mesoporous Structure
Pore Size Distribution 0.5 – 3 nm
2. Performance & Operational Profiles
Electrical Conductivity High electron transfer kinetics within interconnected carbon matrices
Catalytic Activity Inherent surface active sites optimized for multi-phase reaction profiles
Thermal & Chemical Stability Excellent long-term validation integrity under aggressive chemical environments and high temperatures
Surface Modification Capability Highly adaptable framework for co-doping with foreign elements and surface functional group tuning

Key Features & Advantages

  • Controllable Porosity Matrix: Designed with an engineered hierarchical pore layout that facilitates uniform ion/molecule diffusion paths.
  • Enhanced Electron Kinetics: Specifically processed to retain a graphitic framework segment, significantly minimizing internal parasitic resistance.
  • Versatile Doping Framework: Microstructure provides an ideal foundation for heteroatom incorporation (such as nitrogen or sulfur) during downstream processing.

APPLICATION SCOPE: Validated for environmental remediation workflows, advanced battery cell formulations, double-layer supercapacitor optimization, and electrocatalyst substrate screening.
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 nanoporous carbon material requires strict anhydrous inert gas handling to prevent moisture and oxygen contamination that can degrade its structural integrity. Storage must be in tightly sealed containers under inert atmosphere until thermal validation or use.

  • Ambient Exposure Sensitivity: Exposure to ambient atmosphere can cause phase contamination and structural degradation of the nanoporous carbon matrix.
  • Inert Atmosphere Handling: All handling and transfer operations must be performed within an anhydrous inert gas environment, such as an argon-filled glovebox.
  • Pre-Thermal Validation Storage: The material must be stored under inert atmosphere and in sealed containers until thermal validation is performed to prevent degradation.

What is the typical specific surface area and pore size distribution of UIO-66 derived nanoporous carbon, and how does the hierarchical micro-mesoporous structure influence ion transport in supercapacitor electrodes?

This material exhibits a specific surface area of 800–1200 m²/g (BET) with a pore size distribution of 0.5–3 nm, forming a hierarchical micro-mesoporous structure. The combination of micropores for charge storage and mesopores for rapid ion diffusion facilitates optimized ion transport, reducing diffusion resistance and enhancing rate capability in double-layer supercapacitor optimization.

Can this nanoporous carbon be used directly in aqueous electrolyte systems, or does it require specific pre-treatment or inert handling?

The material is validated for double-layer supercapacitor optimization, which commonly uses aqueous or organic electrolytes, but it is highly sensitive to ambient moisture and oxygen. It must be stored and handled exclusively under anhydrous inert gas (e.g., argon or nitrogen) to prevent phase contamination or structural degradation before thermal validation. Pre-treatment under inert atmosphere is recommended before use in any electrolyte system.

What are the critical storage and handling requirements for UIO-66 derived nanoporous carbon to maintain its structural integrity?

The product is highly sensitive to ambient exposure. Containers must be kept tightly sealed and handled exclusively within an anhydrous inert gas environment (e.g., glovebox) to prevent phase contamination or structural degradation. This is especially critical before thermal validation steps, as moisture or oxygen can compromise the hierarchical pore structure and surface active sites.

UIO-66-derived nanoporous carbon evaluated as a high-surface-area (800–1200 m²/g), hierarchical micro-mesoporous (0.5–3 nm) conductive powder with retained graphitic domains for electrochemical and catalytic research; its sensitivity to ambient exposure mandates anhydrous inert handling before downstream thermal validation.

Positive

  • High surface area with hierarchical porosity: The 800–1200 m²/g BET surface area combined with 0.5–3 nm hierarchical micro-mesopores supports uniform ion/molecule diffusion and accessible catalytic sites in electrochemical energy storage and electrocatalyst screening.
  • Conductive graphitic framework for fast kinetics: Retained graphitic framework segments minimize internal parasitic resistance and enable high electron transfer kinetics, making the material suitable for battery formulations and double-layer supercapacitor optimization.

Trade-offs

  • Moisture-sensitive; anhydrous inert handling required: The material is highly sensitive to ambient exposure; containers must be kept tightly sealed or handled exclusively under an anhydrous inert gas atmosphere to prevent phase contamination or structural degradation before thermal validation.

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

1g, 2g, 10g