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HomeSolar Materials Tin(IV) oxide, ≥99.99% trace metals basis – Sigma-Aldrich
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Tin(IV) oxide, ≥99.99% trace metals basis – Sigma-Aldrich

RM898.00 – RM3,219.00Price range: RM898.00 through RM3,219.00

Brand:

Sigma-Aldrich

Synonyms
Stannic dioxide, Tin dioxide, Stannic oxide

Cas No.
18282-10-5

General description
Tin(IV) oxide, also known as stannic oxide, is a yellow-green powder that crystallizes in the rutile structure. It is a wide bandgap (3.6 eV) semiconductor with high transparency in the visible range of the electromagnetic spectrum and relatively high electronic conductivity. Its chemical stability and high purity of ≥99.99% trace metals basis make it suitable for use in demanding conditions, such as semiconductor and biomedical applications, where it is widely used in medical imaging devices, biosensors, and diagnostic tools. It is also utilized in battery technologies, including lithium-ion batteries, as a conversion-type anode material due to its high energy storage capacity and stability and a precursor for making tin compounds and complex metal oxides.
We are committed to bringing you Greener Alternative Products, which belong to one of the four categories of greener alternatives. Tin oxide enhances lithium-ion batteries with high energy density, improved cycling stability, and efficient charge/discharge rates, supporting more sustainable energy storage. Click here for more information.

Application
Fluorinated Cation-Based 2D Perovskites for Efficient and Stable 3D/2D Heterojunction Perovskite Solar Cells.: This research explores the application of tin(IV) oxide in creating efficient and stable perovskite solar cells, focusing on the improvement of the solar cells′ overall performance (Shaw PE et al., 2023).
Tin(IV) Oxide Electron Transport Layer via Industrial-Scale Pulsed Laser Deposition for Planar Perovskite Solar Cells.: The study discusses the use of tin(IV) oxide as an electron transport layer applied through industrial-scale pulsed laser deposition, enhancing the functionality and efficiency of planar perovskite solar cells (Bolink HJ et al., 2023).
Periodic Acid Modification of Chemical-Bath Deposited SnO2 Electron Transport Layers for Perovskite Solar Cells and Mini Modules.: This paper presents a methodology for the modification of SnO2 electron transport layers, used to increase the efficiency of perovskite solar cells and mini-modules (Lin H et al., 2023).
Zwitterion-Functionalized SnO2 Substrate Induced Sequential Deposition of Black-Phase FAPbI3 with Rearranged PbI2 Residue.: Research on enhancing the deposition of black-phase FAPbI3 on zwitterion-functionalized SnO2 substrates, focusing on perovskite solar cell improvements (Zhao Y et al., 2022).
Improved stability and efficiency of polymer-based selenium solar cells through the usage of tin(iv) oxide in the electron transport layers and the analysis of aging dynamics.: The study investigates the role of tin(IV) oxide in enhancing the stability and efficiency of polymer-based selenium solar cells (Zhang Q et al., 2020).

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Description
Product Code Description Packaging Size Assay Form
204714-5G Tin(IV) oxide 5G ≥99.99% trace metals basis Powder and chunks
204714-25G Tin(IV) oxide 25G ≥99.99% trace metals basis Powder and chunks
Additional information
Dimensions N/A
Brand

Sigma

Estimated Delivery Time

2-6 weeks

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Tin(IV) oxide, ≥99.99% trace metals basis - Sigma-Aldrich

Tin(IV) oxide, ≥99.99% trace metals basis – Sigma-Aldrich

RM898.00 – RM3,219.00Price range: RM898.00 through RM3,219.00 Select options
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Add to wishlist