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913804

Sigma-Aldrich

Tin(II) iodide

AnhydroBeads, 99.99% trace metals basis, (Perovskite grade)

Synonyme(s) :

Stannous iodide, Tin diiodide

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About This Item

Formule linéaire :
SnI2
Numéro CAS:
Poids moléculaire :
372.52
Numéro MDL:
Code UNSPSC :
12352302

Gamme de produits

AnhydroBeads

Niveau de qualité

Pureté

99.99% trace metals basis

Forme

powder

Taille des particules

-10 mesh

Point d'ébullition

714 °C (lit.)

Pf

320 °C (lit.)

Densité

5.28 g/mL at 25 °C (lit.)

Chaîne SMILES 

I[SnH2]I

InChI

1S/2HI.Sn/h2*1H;/q;;+2/p-2

Clé InChI

JTDNNCYXCFHBGG-UHFFFAOYSA-L

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Application

Tin iodide finds application in synthesis of perovskites based photovoltaic materials. Our perovskite grade SnI2 can readily be dissolved in DMF to yield 1M solution.
Tin(II) iodide can serve as a starting material or precursor for tin-based perovskite absorber layers in perovskite solar cells. Tin(II) iodide perovskite-based structures can be employed in sensitizers, photodetectors, and sensors due to their tunable bandgap, high absorption coefficient, and efficient charge carrier transport. These properties make them suitable for applications in light sensing and detection. Tin(II) iodide perovskite structures show promise as materials for energy harvesting and conversion.

Conditionnement

Packed in ampules

Informations légales

AnhydroBeads is a trademark of Sigma-Aldrich Co. LLC

Pictogrammes

Health hazardCorrosionExclamation mark

Mention d'avertissement

Danger

Classification des risques

Acute Tox. 4 Inhalation - Acute Tox. 4 Oral - Eye Dam. 1 - Met. Corr. 1 - Skin Corr. 1B - Skin Sens. 1 - STOT RE 2 - STOT SE 3

Organes cibles

Cardio-vascular system,hematopoietic system, Respiratory system

Code de la classe de stockage

8A - Combustible corrosive hazardous materials

Classe de danger pour l'eau (WGK)

WGK 3

Point d'éclair (°F)

Not applicable

Point d'éclair (°C)

Not applicable


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Certificats d'analyse (COA)

Lot/Batch Number

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Consulter la Bibliothèque de documents

Semiconducting tin and lead iodide perovskites with organic cations: phase transitions, high mobilities, and near-infrared photoluminescent properties
Stoumpos C C, et al.
Inorganic Chemistry, 52(15), 9019-9038 (2013)
Low-dimensional perovskite interlayer for highly efficient lead-free formamidinium tin iodide perovskite solar cells.
Chen K, et al.
Nano Energy, 49, 411-418 (2018)

Articles

To achieve net-zero emissions by 2050, renewable power contributions must triple. Photovoltaic stations provide vital utility power, achieved primarily through third- and fourth-generation technology. Promising trends include recycling and revolutionary, ultra-lightweight, flexible, and printable solar cells.

To achieve net-zero emissions by 2050, renewable power contributions must triple. Photovoltaic stations provide vital utility power, achieved primarily through third- and fourth-generation technology. Promising trends include recycling and revolutionary, ultra-lightweight, flexible, and printable solar cells.

To achieve net-zero emissions by 2050, renewable power contributions must triple. Photovoltaic stations provide vital utility power, achieved primarily through third- and fourth-generation technology. Promising trends include recycling and revolutionary, ultra-lightweight, flexible, and printable solar cells.

To achieve net-zero emissions by 2050, renewable power contributions must triple. Photovoltaic stations provide vital utility power, achieved primarily through third- and fourth-generation technology. Promising trends include recycling and revolutionary, ultra-lightweight, flexible, and printable solar cells.

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