

Antimony (III) Iodide Powder (SbI3) provided by Stanford Advanced Materials is a chemical compound used in semiconductor applications, photovoltaics, and as a precursor in the synthesis of other antimony-based materials.
Related Products: Titanium Disulfide Powder (TiS2), Indium Telluride Powder (InTe)
Antimony (III) Iodide Powder (SbI3) provided by Stanford Advanced Materials is a chemical compound used in semiconductor applications, photovoltaics, and as a precursor in the synthesis of other antimony-based materials.
Related Products: Titanium Disulfide Powder (TiS2), Indium Telluride Powder (InTe)
Antimony (III) Iodide Powder (SbI3) is a red crystalline compound with significant semiconductor properties. It features a relatively low melting point and dissolves readily in specific organic solvents. SbI3 is valued for its ability to form high-quality thin films, which is advantageous for optoelectronic applications like photodetectors and solar cells. It also displays good stability under controlled conditions, making it suitable as a precursor for synthesizing other antimony-based compounds. Its distinctive properties further support its use in chemical sensing and catalytic applications.
Material |
Antimony (III) Iodide |
Molecular Formula |
SbI3 |
Molecular Weight |
502.16 |
Melting Point |
170℃ |
Boiling Point |
401℃ |
Appearance |
Red Crystalline Powder |
Purity |
99.99% |
Semiconductor Devices: SbI3 is utilized in producing thin films for semiconductor applications, particularly in photodetectors, solar cells, and other optoelectronic devices, due to its semiconducting characteristics.
Photovoltaic Cells: As a precursor material, SbI3 is applied in solar cell fabrication, especially for thin-film photovoltaic technologies, to enhance energy conversion efficiency.
Chemical Sensing: SbI3 is sensitive to environmental changes, making it suitable for chemical sensors used in detecting gases or vapors.
Catalysis: SbI3 serves as a catalyst or catalyst precursor in specific chemical reactions, particularly in organic synthesis and materials science.
Synthesis of Antimony-based Compounds: SbI3 is frequently used as a starting material in synthesizing other antimony compounds for various industrial applications.
Optoelectronics: Due to its interaction with specific light wavelengths, SbI3 is also employed in optoelectronic devices, such as LEDs and infrared detectors.
Our Antimony (III) Iodide Powder (SbI3) is carefully handled during storage and transportation to preserve the quality of our product in its original condition.
Q1: What are the primary uses of Antimony (III) Iodide Powder (SbI3)?
A1: SbI3 is mainly used in semiconductor applications, including photodetectors, solar cells, and optoelectronic devices. It also acts as a precursor for synthesizing other antimony compounds and is used in chemical sensing and catalysis.
Q2: What are the essential properties of Antimony (III) Iodide Powder?
A2: SbI3 is a yellow to orange crystalline powder with semiconductor properties, high solubility in organic solvents, and stability under controlled conditions, making it suitable for thin-film technologies, energy conversion, and chemical sensing.
Q3: What is the particle size of Antimony (III) Iodide Powder?
A3: SbI3 powder typically comes in fine powder form suitable for thin-film deposition, although custom particle sizes are available upon request.