所有图片(4)
About This Item
线性分子式:
Na2MoO4 · 2H2O
CAS号:
分子量:
241.95
EC 号:
MDL编号:
UNSPSC代码:
12352302
PubChem化学物质编号:
NACRES:
NA.21
方案:
≥99%
等级:
ACS reagent
表单:
powder or crystals
推荐产品
等级
ACS reagent
质量水平
方案
≥99%
表单
powder or crystals
反应适用性
reagent type: catalyst
core: molybdenum
杂质
≤0.005% insolubles
pH值(酸碱度)
7.0-10.5 (25 °C, 5%)
mp
100 °C (dec.) (lit.)
痕量阴离子
chloride (Cl-): ≤0.005%
phosphate (PO43-): ≤5 ppm
sulfate (SO42-): ≤0.015%
痕量阳离子
Fe: ≤0.001%
NH4+: ≤0.001%
heavy metals (as Pb): ≤5 ppm
SMILES字符串
O.O.[Na+].[Na+].[O-][Mo]([O-])(=O)=O
InChI
1S/Mo.2Na.2H2O.4O/h;;;2*1H2;;;;/q;2*+1;;;;;2*-1
InChI key
FDEIWTXVNPKYDL-UHFFFAOYSA-N
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一般描述
钼酸钠二水合物(Na2MoO4.2H2O)为碱性化合物。其晶体属于正交晶系统和空间群 Pbca。
应用
- 用于通过FRET机制灵敏检测食品样品中姜黄素的荧光二硫化钼量子点。:本研究探讨了使用二水合钼酸钠合成二硫化钼量子点。这些量子点应用于基于 FRET 的传感器中,用于检测食品中的姜黄素,展示了食品安全和质量监测中的一种新方法(Wang S等人,2024年)。
- 安德森-埃文斯型多金属氧酸盐的合成与表征,抗菌性能:二水合钼酸钠用于合成安德森-埃文斯型多金属氧酸盐。这项研究的重点是它们的潜在抗菌应用,有助于开发新的抗菌剂(Avci Özbek H,2023年)。
- 在莲花线装置上修饰二维MoS(2)纳米片以增强疏水性和抗菌活性。:在这项创新研究中,二水合钼酸钠用于增强MoS(2)纳米片的性能,展示了其在创造疏水和抗菌表面方面的效用,这可以有多种实际应用(Selvam GS等人,2022年)。
储存分类代码
13 - Non Combustible Solids
WGK
WGK 1
闪点(°F)
Not applicable
闪点(°C)
Not applicable
Emericella astellata, a new producer of aflatoxin B1, B2 and sterigmatocystin.
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The Crystal Structure of Sodium Molybdate Dihydrate, Na2MoO4?2H2O.
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Diabetes mellitus is a disease, which virtually affects all the systems in the body including the immune system. Bacterial infections are important causes of increased morbidity and mortality in diabetic patients. In the present study, we assessed the effect of
S W Ball et al.
Canadian journal of physiology and pharmacology, 80(3), 205-209 (2002-05-07)
A focus of current diabetes research is the development of insulinomimetic compounds for oral treatment of diabetes and its associated cardiac complications. Screening compounds for their potential insulinomimetic effects usually involves the use of radioactive isotopes. The focus of this
Akira Sakakura et al.
Chemical communications (Cambridge, England), (30)(30), 3561-3563 (2008-07-26)
Efficient total syntheses of fluvibactin and vibriobactin have been achieved via molybdenum(VI) oxide-catalyzed dehydrative cyclization, Sb(OEt)(3)-catalyzed ester-amide transformation, and WSCI and HOAt-promoted dehydrative amide formation.
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