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Purity 99.99 Element Holmium Ho Magneto Optic Storage Material 7440-60-0

Purity 99.99 Element Holmium Ho Magneto Optic Storage Material 7440-60-0

Element Holmium Ho

Purity 99.99 Element Holmium

Purity 99.99 Holmium Ho

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Product Details
CAS #:
7440-60-0
Molecular Formula:
Ho
EC No.:
231-169-0
Purity:
99.9-99.99%
Molecular Weight:
164.93 G/mol
Appearance:
Silvery Metal
Melting Point:
1,474°C
Boiling Point:
2,695°C
Density:
8.795 G/cm³
Electrical Resistivity:
87.0 μΩ·cm @ 25°C
Electronegativity:
1.2 (Pauling Scale)
Heat Of Fusion:
4.10 Kcal/mol
Heat Of Vaporization:
67 Kcal/mol @ 2,695°C
Poisson's Ratio:
0.231
Specific Heat Capacity:
0.0393 Cal/(g·K) @ 25°C
Tensile Strength:
N/A
Thermal Conductivity:
0.162 W/(cm·K) @ 298.2 K
Thermal Expansion:
11.2 μm/(m·K) (poly, Rt)
Vickers Hardness:
481 MPa
Young's Modulus:
64.8 GP
Highlight:

Element Holmium Ho

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Purity 99.99 Element Holmium

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Purity 99.99 Holmium Ho

Payment & Shipping Terms
Minimum Order Quantity
500g
Packaging Details
0.5-1 kilogram per bottle, 50 kilograms per drum, 500 kilograms per pallet
Delivery Time
45-60 Workdays
Payment Terms
T/T
Supply Ability
1000 kg
Product Description

Holmium (Ho): NdFeB Magnet Additive, Magneto-Optic Storage Material, Terfenol-D Alloy Component

Holmium is a silvery-white metal with element symbol Ho, soft enough to be cut with a knife. It melts at 1474°C, boils at 2695°C, and has a density of 8.795 g/cm³; exhibiting superconductivity near absolute zero. Holmium remains relatively stable in air but oxidizes readily at high temperatures when exposed to air or water, forming holmium oxide.

 

Applications

  1. Used as additive in neodymium-iron-boron (NdFeB) permanent magnets
  2. Applicable as magneto-optical storage material
  3. Serves as one additive for preparing giant magnetostrictive terbium-dysprosium-iron alloys

 

Product Series

Product

Product Code

Safety Data

Technical Data

Holmium 99.9%

ET-HoM-01

Holmium.pdf

Holmium Metal 99.9.pdf

 

Holmium 99.99%

ET-HoM-02

Holmium Metal 99.99.pdf

 

 

Health and Safety Information

Signal Word Danger
Hazard Statements H228
Hazard Codes N/A
Precautionary Statements P210-P231+P232-P280-P240-P241-P233-P370+P378b-P335+P334-P402+P404-P501a
Flash Point Not applicable
Risk Codes N/A
Safety Statements N/A
RTECS Number N/A
Transport Information NONH
WGK Germany 3

 

 

Packaging Specifications

  • Standard packaging: 50 kg/drum, 500 kg/pallet, ton bags
  • Sample packaging: 500 g/bag, 1 kg/bottle

 

Production Method

After separating holmium from other rare earth elements via ion exchange or solvent extraction, metallic holmium can be prepared through metallothermic reduction. Unlike calcium reduction of rare earth chlorides, lithium reduction occurs in the vapor phase.

The lithium reduction reactor features two heating zones, combining reduction and distillation in one unit. Anhydrous holmium chloride is placed in the upper titanium crucible (also serving as HoCl₃ distillation chamber), while lithium metal reductant is loaded in the lower crucible. The stainless steel reaction vessel is evacuated to 7Pa before heating.

At 1000°C, maintained for a specific duration, HoCl₃ vapor fully reacts with lithium vapor. Reduced holmium metal particles deposit in the lower crucible. Post-reduction, only the lower crucible is heated to distill LiCl to the upper crucible. The complete reduction process typically requires about 10 hours.

For high-purity holmium :

  • Use 99.97% ultra-pure lithium reductant
  • Employ doubly distilled anhydrous HoCl₃

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