KETJENBLACK ECP-600JD Superconductive Carbon Black

SKU: ECP-600JD

KETJENBLACK ECP-600JD Superconductive Carbon Black is a high-structure conductive carbon black with documented 1400 m²/g BET surface area, high DBP absorption and a branched morphology for efficient conductive networks.

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KETJENBLACK ECP-600JD Superconductive Carbon Black

Material Type: Superconductive Carbon Black
Product Code: ECP-600JD
Brand: KETJENBLACK

Product Introduction

ECP-600JD is a high-performance superconductive carbon black with a documented branched morphology and high specific surface area. The supplied information describes efficient contact with active-material particles, formation of a conductive network at relatively low addition and reduced internal resistance in electrode systems.

Core Features

  • High-structure superconductive carbon black
  • BET surface area of 1400 m²/g
  • DBP oil absorption of 495 mL/100 g by the documented 15 g method
  • Branched morphology designed to form an efficient conductive network
  • Documented low-resistance performance at relatively low addition
  • Detailed trace-metal and particle-distribution data

Technical Specifications

Parameter Specification
Product Code ECP-600JD
Brand KETJENBLACK
Material Type Superconductive carbon black
CAS Number 1333-86-4
Appearance Freely flowing black powder
DBP Oil Absorption 495 mL/100 g (15 g method)
Iodine Adsorption 1050 mg/g
BET Surface Area 1400 m²/g
Apparent Specific Gravity 110 g/L
pH 9
Volatile Content 0.5 wt%
Moisture 0.2 wt%
Ash Content 0.02 wt%
Sieve Residue 10 wt ppm
Cobalt Content ≤1 wt ppm
Chromium Content ≤1 wt ppm
Copper Content ≤1 wt ppm
Iron Content 50 wt ppm
Nickel Content 2 wt ppm
Manganese Content ≤1 wt ppm
Vanadium Content ≤1 wt ppm
Sulfur Content 0.04 wt%
Particle Distribution, 200 Mesh >98%
Particle Distribution, 325 Mesh >80%

Material Comparison

Morphology and conductivity comparison of EC-600JD, acetylene black and graphitic carbon black
Morphology and conductivity comparison

Applications

  • Lithium-battery electrode conductive-additive formulations
  • EDLC and supercapacitor electrodes
  • Fuel-cell and storage-battery material research
  • Conductive-network and internal-resistance optimization

Note: The values are transcribed from the supplied grade-specific references. Confirm the formulation basis, test method and current-lot specifications for the intended application.

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