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Merck
CN

804169

Molybdenum disulfide

greener alternative

nanopowder, 90 nm diameter (APS), 99% trace metals basis

别名:

二硫化钼

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关于此项目

经验公式(希尔记法):
MoS2
化学文摘社编号:
分子量:
160.07
NACRES:
NA.23
PubChem Substance ID:
UNSPSC Code:
12352302
EC Number:
215-263-9
MDL number:
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产品名称

硫化钼 (IV), nanopowder, 90 nm diameter (APS), 99% trace metals basis

InChI key

CWQXQMHSOZUFJS-UHFFFAOYSA-N

InChI

1S/Mo.2S

SMILES string

S=[Mo]=S

assay

99% trace metals basis

form

nanopowder
powder

greener alternative product characteristics

Design for Energy Efficiency
Learn more about the Principles of Green Chemistry.

sustainability

Greener Alternative Product

diameter

90 nm (APS)

density

5.06 g/mL at 25 °C (lit.)

greener alternative category

Quality Level

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Application

MoS2 是一种重要的化合物,适用于电池、 润滑油 和氢气生产。 MoS2的分层结构可使其单层化合物用作类似于石墨烯的2D纳米片。

General description

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存储类别

11 - Combustible Solids

wgk

nwg

flash_point_f

Not applicable

flash_point_c

Not applicable


历史批次信息供参考:

分析证书(COA)

Lot/Batch Number

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Jonathan N Coleman et al.
Science (New York, N.Y.), 331(6017), 568-571 (2011-02-05)
If they could be easily exfoliated, layered materials would become a diverse source of two-dimensional crystals whose properties would be useful in applications ranging from electronics to energy storage. We show that layered compounds such as MoS(2), WS(2), MoSe(2), MoTe(2)
Thomas F Jaramillo et al.
Science (New York, N.Y.), 317(5834), 100-102 (2007-07-07)
The identification of the active sites in heterogeneous catalysis requires a combination of surface sensitive methods and reactivity studies. We determined the active site for hydrogen evolution, a reaction catalyzed by precious metals, on nanoparticulate molybdenum disulfide (MoS2) by atomically
Exfoliated MoS2 Nanocomposite as an Anode Material for Lithium Ion Batteries.
Xiao J, et al.
Chemistry of Materials, 22(16), 4522-4524 (2010)
Synthesis and application of inorganic nanoparticles as lubricant components - A review.
Bakunin VN, et al.
Journal of Nanoparticle Research, 6(2-3), 273-284 (2004)

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Catalytic water splitting produces hydrogen crucial for renewable energy, petroleum refining, and chemical industry applications like methanol production.

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