Generic selectors
Exact matches only
Search in title
Search in content
Post Type Selectors

Calcium Sulfide Evaporation Materials, CaS

Material: Calcium Sulfide (CaS)
Chemical Formula: CaS
Catalog No.: TFM-EVM-0054
Purity: 99.9% ~ 99.95%
Shape: Powder/ Granule/ Custom-made

Calcium Sulfide (CaS) evaporation material is supplied by Thin Film Materials (TFM) for vacuum evaporation and thin-film deposition. Available form, size, purity, and packaging can be customized to suit research and production requirements.

Product Overview

Calcium Sulfide Evaporation Materials (CaS) is a chalcogenide evaporation material used in optical, infrared, semiconductor, thermoelectric, and phase-change thin-film research. Because sulfur-, selenium-, and tellurium-containing compounds can contain volatile constituents, evaporation may be incongruent and the deposited film can deviate from the nominal source composition. Deposition temperature, source heating profile, rate control, and film-composition analysis are therefore important when stoichiometry is critical.

Evaporation Behavior and Process Considerations

Chalcogenides often contain constituents with different vapor pressures, so the film composition may evolve during evaporation. Lower source temperatures and controlled rates can help reduce loss of volatile components, but the optimum method depends on the specific compound. When stoichiometry is critical, deposited-film composition should be verified rather than inferred only from the source label.

Technical Data

ParameterTypical Value / RangeImportance
Chemical FormulaCaSDefines material composition
Purity≥ 99.9% (3N)Ensures optical and electronic performance
FormGranules / Lumps / PowderSuitable for different evaporation methods
Particle Size1 – 6 mm (granules) / customAffects evaporation stability
Density~2.6 g/cm³ (bulk)Influences material loading
Melting Point~2525°CRelevant for e-beam evaporation
Evaporation MethodThermal / E-beamProcess compatibility
MaterialKey AdvantageTypical Application
CaSExcellent phosphor host, wide bandgapLuminescent coatings
ZnSHigh transparency, mature processingOptical coatings, displays
SrSStrong luminescence with dopantsElectroluminescent devices
BaSHigher density, stable sulfideSpecialized optical films
QuestionAnswer
Can CaS be doped for luminescent applications?Yes, CaS is commonly doped with rare earth elements such as europium to achieve strong luminescence.
Is CaS sensitive to moisture?Yes, it should be stored and handled in dry or inert environments to prevent degradation.
What evaporation method is recommended?Both thermal and electron beam evaporation can be used, depending on system configuration.
Can particle size be customized?Yes, different forms and particle sizes are available to suit specific deposition requirements.
What industries use CaS evaporation materials?Optoelectronics, display manufacturing, research institutions, and advanced coating industries.

Typical Thin-Film Applications

  • Infrared, optical, phase-change, semiconductor, and thermoelectric thin films
  • Compound semiconductor and chalcogenide multilayer research
  • Composition-sensitive R&D where volatile-element control is important

Source Form and Ordering Considerations

For quotation, provide the material or formula, purity, desired source form and size, quantity, evaporation method if known, and any crucible, boat, or e-beam hearth constraints. For compound materials, include the target film composition or application when possible so that source form and process risk can be reviewed together. TFM can supply pellets, pieces, granules, tablets, or other custom forms subject to material manufacturability.

Frequently Asked Questions

Can Calcium Sulfide evaporate incongruently?

Yes. Sulfur, selenium, and tellurium compounds can contain constituents with different vapor pressures, so the deposited film may not exactly match the nominal source composition.

How can volatile-component loss be reduced when evaporating Calcium Sulfide?

A controlled source temperature, stable deposition rate, and appropriate substrate temperature can help. The optimum conditions depend on the specific compound and should be confirmed by film analysis.

Is thermal or e-beam evaporation better for Calcium Sulfide?

The better method depends on vapor pressure, decomposition temperature, source form, and desired rate. Some chalcogenides can be thermally evaporated, while others are more controllable with localized e-beam heating.

Should Calcium Sulfide film composition be measured after deposition?

Yes when stoichiometry is important. Source composition alone does not guarantee film composition because preferential evaporation and re-evaporation can occur.

What source form can TFM supply for Calcium Sulfide?

Depending on the material, TFM can review pellets, pieces, granules, or other compact forms suitable for the customer’s evaporation source.

What should I include in a Calcium Sulfide RFQ?

Provide composition, purity, source form and size, quantity, evaporation method, and the film-composition or application requirements that matter to the project.

Reviews

There are no reviews yet.

Be the first to review “Calcium Sulfide Evaporation Materials, CaS”

Your email address will not be published. Required fields are marked *

FAQ

  • They are high‐purity substances (e.g. metals, alloys, or compounds) used in thermal or electron‐beam evaporation processes to form thin films on substrates.

  • Typically, they’re processed into a form (often ingots, pellets, or wires) that can be efficiently vaporized. Preparation emphasizes high purity and controlled composition to ensure film quality.

  • Thermal evaporation and electron-beam (e-beam) evaporation are the two main techniques, where material is heated (or bombarded with electrons) until it vaporizes and then condenses on the substrate.

  • Thermal evaporation heats the material directly (often using a resistive heater), while e-beam evaporation uses a focused electron beam to locally heat and vaporize the source material—each method offering different control and energy efficiency.

  • Key parameters include source temperature, vacuum level, deposition rate, substrate temperature, and the distance between the source and the substrate. These factors influence film uniformity, adhesion, and microstructure.

  • Evaporation generally produces high-purity films with excellent control over thickness, and it is especially suitable for materials with relatively low melting points or high vapor pressures.

  • Challenges include issues with step coverage (due to line-of-sight deposition), shadowing effects on complex topographies, and possible re-evaporation of material from the substrate if temperature isn’t properly controlled.

  • Common evaporation materials include noble metals (e.g., gold, silver), semiconductors (e.g., silicon, germanium), metal oxides, and organic compounds—each chosen for its specific optical, electrical, or mechanical properties.

  • Selection depends on desired film properties (conductivity, optical transparency, adhesion), compatibility with the evaporation process, and the final device application (semiconductor, optical coating, etc.).

  • Optimizing substrate temperature, deposition rate, and chamber vacuum are critical for ensuring that the film adheres well and forms the intended microstructure without defects.

  • Troubleshooting may involve checking the source material’s purity, ensuring stable source temperature, verifying the vacuum level, adjusting the substrate’s position or temperature, and monitoring deposition rate fluctuations.

While evaporation tends to yield very high purity films with excellent thickness control, it is limited by its line-of-sight nature. In contrast, sputtering can deposit films more uniformly on complex surfaces and is more versatile for a broader range of materials.

 

Shopping Cart
Scroll to Top