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39467-17-9

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39467-17-9 Usage

Description

Zinc stannate, also known as zinc tin oxide, is a chemical compound composed of zinc, tin, and oxygen. It is recognized for its flame retardant properties, transparency, and good UV absorption capabilities, making it a versatile material for various applications.

Uses

Used in Polymer and Plastic Industry:
Zinc stannate is used as a flame retardant additive for enhancing the fire safety of polymers and plastics. It helps to reduce flame spread and inhibit smoke production, thereby improving the overall safety of these materials.
Used in Solar Energy Industry:
As a transparent conductive oxide, zinc stannate is utilized in thin-film solar cells to improve their efficiency and performance.
Used in Ceramic and Rubber Industry:
Zinc stannate serves as a filler in ceramics and rubber products, enhancing their physical and chemical properties.
Used in Cosmetics Industry:
Due to its good UV absorption properties, zinc stannate is used in sunscreen and other cosmetic products to provide protection against harmful ultraviolet radiation.
Used in Chemical Industry:
Zinc stannate is employed as a catalyst in various chemical reactions, facilitating and enhancing the process efficiency.
Used in Paints and Coatings Industry:
As a pigment, zinc stannate is incorporated into paints and coatings to provide specific color and properties, such as improved durability and resistance to environmental factors.

Check Digit Verification of cas no

The CAS Registry Mumber 39467-17-9 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 3,9,4,6 and 7 respectively; the second part has 2 digits, 1 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 39467-17:
(7*3)+(6*9)+(5*4)+(4*6)+(3*7)+(2*1)+(1*7)=149
149 % 10 = 9
So 39467-17-9 is a valid CAS Registry Number.

39467-17-9SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 19, 2017

Revision Date: Aug 19, 2017

1.Identification

1.1 GHS Product identifier

Product name ZINC STANNATE

1.2 Other means of identification

Product number -
Other names -

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:39467-17-9 SDS

39467-17-9Downstream Products

39467-17-9Relevant articles and documents

Influence of SnO2 addition on the thermoelectric properties of Zn1 - xSnxO (0.01 ≤ x ≤ 0.05)

Park,Seong,Kwon,Nahm,Cho

, p. 54 - 61 (2008)

The grain size and the density of the Zn1 - xSnxO (0 ≤ x ≤ 0.05) samples decreased with increasing SnO2 content. The addition of a small amount of SnO2 (x ≤ 0.01) to ZnO led to an increase in both the electrical conductivity and the absolute value of the Seebeck coefficient, resulting in a significant increase in the power factor. The thermoelectric power factor was maximized to a value of 1.25 × 10-3 Wm-1 K-2 at 1073 K for the Zn0.99Sn0.01O sample.

Gold-tin co-sensitized ZnO layered porous nanocrystals: enhanced responses and anti-humidity

Yao, Ming-Shui,Cao, Lin-An,Hou, Guo-Lin,Cai, Min-Lan,Xiu, Jing-Wei,Fang, Chen-Hao,Yuan, Fang-Li,Chen, Yun-Fa

, p. 20273 - 20280 (2017)

High responses and good selectivity are key sensing properties of metal oxide (MOX) gas sensors. However, it is still a major challenge for a single MOX gas sensor to achieve both of them. Specially, the research in the field of high performance gas sensors has been hindered by negative effects of the typical interference, relative humidity (RH). In this paper, we report the successful preparation of gold-tin co-sensitized ZnO layered porous nanocrystals (Au-5Sn-ZLPCs) via a sequential solvothermal reaction and deposition-reduction method. Based on Sn dopants sensitized ZLPCs, the introduction of Au decoration can act as a secondary sensitized element on the crystal surfaces of ZnO. The special synergy between noble metals and oxides can introduce additional catalytic effects to further improve sensing properties. As a result of Au-Sn co-sensitization, sensing properties of sensors towards reducing VOC gas were significantly enhanced, while those towards oxidizing ozone gas were different to each other. Besides the typical sensing properties including responses, operating temperature, response & recovery properties, etc., Au-Sn co-sensitized samples significantly reduced negative effects of RH on responses to both reducing and oxidizing gases (good anti-humidity).

A novel type heterojunction photodiodes formed junctions of Au/LiZnSnO and LiZnSnO/p-Si in series

Aydin, H.,Yakuphanoglu, F.,Tatarolu, A.,Al-Ghamdi, Ahmed A.,El-Tantawy, Farid,Farooq, W. A.

, p. 18 - 25 (2015/03/03)

Lithium-zinc-tin-oxide thin films were prepared by sol gel method. The structural and optical properties of the films were investigated. The optical band gaps of the LiZnSnO films were found to be 3.78 eV for 0 at.% Li, 3.77 eV for 1 at.% Li, 3.87 eV for 3 at.% Li and 3.85 eV for 5 at.% Li, respectively. Au/LiZnSnO/p-Si/Al photodiodes were fabricated using a lithium-zinc-tin-oxide (LZTO, Li-Zn-Sn-O) layer grown on p-Si semiconductor. The electrical characteristics of the photodiodes were analyzed by current-voltage, capacitance-voltage and conductance-voltage measurements. The reverse current of the diodes increases with both the increasing illumination intensity and Li content. It was found that the Li-doped ZTO photodiodes exhibited a better device performance than those with an undoped ZTO.

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