American Elements
Tin Pellets
Sn
7440-31-5
Product
Product Code
Order or Specifications
99% Tin Pellets
SN-M-02-P
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99.9% Tin Pellets
SN-M-03-P
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99.99% Tin Pellets
SN-M-04-P
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99.999% Tin Pellets
SN-M-05-P
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American Elements specializes in producing high purity uniform shaped Tin Pellets with the highest possible density and smallest possible average grain sizes for use in semiconductor, Chemical Vapor Deposition (CVD) and Physical Vapor Deposition (PVD) processes including Thermal and Electron Beam (E-Beam) Evaporation, Low Temperature Organic Evaporation, Atomic Layer Deposition (ALD), Metallic-Organic and Chemical Vapor Deposition (MOCVD). Our standard Pellet sizes range from 1/8" x 1/8" to 1/4" x 1/4" and 3 mm diameter. We can also provide Pellets outside this range. Materials are produced using crystallization, solid state and other ultra high purification processes such as sublimation. American Elements specializes in producing custom compositions for commercial and research applications and for new proprietary technologies. American Elements also casts any of the rare earth metals and most other advanced materials into rod, bar or plate form, as well as other machined shapes and through other processes such as nanoparticles (See also application discussion at Nanotechnology Information and at Quantum Dots) and in the form of solutions and organometallics.. See research below. We also produce Tin as rod, ingot, powder, pieces, disc, granules, wire, and in compound forms, such as oxide. Other shapes are available by request.

Tin is a Block P, Group 14, Period 5 element. The electronic configuration is [Kr] 4d10 5s2 5p2. In its elemental form tin's CAS number is 7440-31-5. The tin atom has a radius of 140.5.pm and it's Van der Waals radius is 217.pm.

Formula CAS No. Appearance Molecular Weight Density Melting Point Boiling Point
Sn 7440-31-5 Yellow 118.69 7310 kg/m³ 231.93 °C 2602 °C
CATALOGUE PRODUIT Submicroniques et nanopoudres Tolling Ultra haute pureté Sputtering Public Crystal Growth Rod, Plate, poudre, etc.
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Recent Research & Development for Tin Metal

  • Syntheses and X-ray Diffraction, Photochemical, and Optical Characterization of Cu(2)Si(x)()Sn(1-)(x)()S(3) (0.4 </= x </= 0.6) for Photovoltaic Applications.
    Inorg Chem. 2007 Jan 24; [Epub ahead of print]

  • Intramolecular Chalcogen-Tin Interactions in (o-MeE-C(6)H(4))CH(2)SnPh(3)(-)(n)()Cl(n)() (E = S, O; n = 0, 1, 2), Characterized by X-ray Diffraction and (119)Sn Solution and Solid-State NMR.
    Inorg Chem. 2007 Jan 24; [Epub ahead of print]

  • Tin-free and catalytic radical cyclizations.
    J Am Chem Soc. 2007 Jan 31;129(4):770-1.

  • Spatial-temporal variation and comparative assessment of water qualities of urban river system: a case study of the river Bagmati (Nepal).
    Environ Monit Assess. 2007 Jan 23; [Epub ahead of print]

  • Determination of lead in sediments and sewage sludge by on-line hydride-generation axial-view inductively-coupled plasma optical-emission spectrometry using slurry sampling.
    Anal Bioanal Chem. 2007 Jan 23; [Epub ahead of print]

  • Raman spectroscopic analysis of the enigmatic Comper pigments.
    Anal Bioanal Chem. 2007 Jan 23; [Epub ahead of print]

  • Modeling of hydrocarbon sensors based on p-type semiconducting perovskites.
    Phys Chem Chem Phys. 2007 Feb 7;9(5):635-42. Epub 2006 Dec 7.

  • Modification of indium-tin oxide electrodes with thiophene copolymer thin films: optimizing electron transfer to solution probe molecules.
    Langmuir. 2007 Jan 30;23(3):1530-42.

  • Continuous polyelectrolyte adsorption under an applied electric potential.
    Proc Natl Acad Sci U S A. 2007 Jan 23;104(4):1140-5. Epub 2007 Jan 17.

  • Tin Protoporphyrin Induces Intestinal Chloride Secretion By Inducing Light-Oxidation Processes.
    Am J Physiol Cell Physiol. 2007 Jan 10; [Epub ahead of print]

 

 

 

 

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