钨酸铵

CAS: 11140-77-5 货号: A475152 分子式: (NH4)10H2(W2O7)6 分子量: 3059.6 EC号: 628-957-5
有货
级别和纯度: PrimorTrace™ ? PrimorTrace™ —— 阿拉丁的痕量金属分析系列,金属背景极低。适用于污染须极小的 ICP/AAS 痕量金属工作。 ≥99.99% metals basis
储存条件
室温
★
规格
库存
价格
数量
1g
A475152-1g
现货 Stock Image
¥279.90
5g
A475152-5g
现货 Stock Image
¥1,099.90
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为什么选择此级别

PrimorTrace™ 级 提供 ≥99.99% metals basis 纯度,适用于对基线干扰要求严格的色谱和分析工作流程。

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储存与运输

室温。 。请查阅批次 COA 获取详细规格。

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质量文档

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文献证明

在色谱分析、有机合成和交叉偶联反应领域已被 31 篇同行评审文献引用。

概述

外形

可溶型

应用:
与Fe3O4@ SiO2纳米颗粒结合的烷基钨酸铵 :该研究详细考察了用于对称硫化物氧化的高效催化剂的合成,该催化剂对各种化学合成都非常关键 。

Ammonium tungstate, also called ammonium paratungstate or APT is a white crystalline salt with a chemical formula either written (NH4)10H2(W2O7)6 or (NH4)10(H2W12O42). APT is extracted from tungsten ores and is the critical raw material for the production of tungsten metal. Additionally, it is employed in the manufacturing of catalysts, pigments, and specialty chemicals. Its applications extend to the electronics industry, where it is utilized in the production of electronic components and semiconductor materials due to its excellent thermal and electrical properties. It is also a key material in the field of energy storage, particularly in the development of advanced batteries and energy-efficient devices.

Product Application:

Ammonium Paratungstate is used as a source for high-purity tungsten oxides, tungsten metal powders, carbides, or as a laboratory reagent. Other applications are in the fields of absorbent gels, coloring agent in the porcelain industry, and the catalyst industry.

规格

英文别名
PUBCHEM_71306883 | Azane;5,7,9,11,13,15,17,19,21,23-decahydroxy-2,4,6,8,10,12,14,16,18,20,22,24,25,26,27,28,29,30,31-nonadecaoxa-1lambda6,3lambda6,5lambda6,7lambda6,9lambda6,11lambda6,13lambda6,15lambda6,17lambda6,19lambda6,21lambda6,23lambda6-dodecatungs
规格或纯度
PrimorTrace™, ≥99.99% metals basis
英文名称
Ammonium tungstate
储存条件
室温
纯度
≥99.99% metals basis
名称和识别符
PubChem SID
EC号
628-957-5
分子类型
小分子
IUPAC Name
azane;5,7,9,11,13,15,17,19,21,23-decahydroxy-2,4,6,8,10,12,14,16,18,20,22,24,25,26,27,28,29,30,31-nonadecaoxa-1λ6,3λ6,5λ6,7λ6,9λ6,11λ6,13λ6,15λ6,17λ6,19λ6,21λ6,23λ6-dodecatungstaoctacyclo[21.1.1.11,3.13,5.17,9.111,13.115,17.119,21]hentriacontane 1,3,5,7,9,11,13,15,17,19,21,23-dodecaoxide
INCHI
1S/10H3N.10H2O.31O.12W/h10*1H3;10*1H2;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;/q;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;10*+1/p-10
InChi Key
LMAJGSPZJYEENT-UHFFFAOYSA-D
Smiles
N.N.N.N.N.N.N.N.N.N.O[W]12(=O)O[W]3(O)(=O)O[W](O)(=O)(O3)O[W]4(O)(=O)O[W](O)(=O)(O4)O[W]5(O)(=O)O[W]6(=O)(O5)O[W]7(=O)(O[W](O)(=O)(O[W]8(O)(=O)O[W](O)(=O)(O[W](O)(=O)(O1)O2)O8)O7)O6
Isomeric SMILES
N.N.N.N.N.N.N.N.N.N.O[W]12(=O)O[W]3(=O)(O[W](=O)(O3)(O[W]4(=O)(O[W](=O)(O4)(O[W]5(=O)(O[W]6(=O)(O5)O[W]7(=O)(O6)O[W](=O)(O7)(O[W]8(=O)(O[W](=O)(O8)(O[W](=O)(O1)(O2)O)O)O)O)O)O)O)O)O
分子量
3059.6
Reaxy-Rn
14735991
Reaxys-RN link address
https://www.reaxys.com/reaxys/secured/hopinto.do?context=S&query=IDE.XRN=14735991&ln=

技术文档

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🔬 规格说明书

该级别的完整质量属性和验收标准。

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高级数据

系统学分类

分类树(Taxonomy Tree)

界(kingdom) 无机化合物
超类(Superclass) 混合金属/非金属化合物
类(Class) 过渡金属有机物
亚类(Subclass) 过渡金属氧化物
中间层级节点(Intermediate Tree Nodes) 暂无
直接上位类(Direct Parent) 过渡金属氧化物
其他上位类(Alternative Parents) 金属杂环化合物  无机盐  无机氧化物  
分子骨架(Molecular Framework) 暂无
取代基(Substituents) 无机氧化物 - 无机盐 - 金属杂环化合物 - 钼酸盐
描述(Description) 该化合物属于过渡金属氧化物类无机化合物。这类化合物含有氧化态为-2的氧原子,且与氧原子键合的最重原子为过渡金属。
外部描述符(External Descriptors) 暂无
化学和物理性质
溶解性
可溶于温水
熔点
> 300 °C
分子量
3042.400 g/mol
XLogP3
氢键供体数Hydrogen Bond Donor Count
20
氢键受体数Hydrogen Bond Acceptor Count
51
可旋转键计数Rotatable Bond Count
0
精确质量Exact Mass
3041.55 Da
单同位素质量Monoisotopic Mass
3043.55 Da
拓扑极表面积Topological Polar Surface Area
593.000 Ų
重原子数Heavy Atom Count
63
形式电荷Formal Charge
0
复杂度Complexity
2660.000
同位素原子数Isotope Atom Count
0
定义的原子立体中心计数Defined Atom Stereocenter Count
0
未定义的原子立体中心计数Undefined Atom Stereocenter Count
0
定义的键立体中心计数Defined Bond Stereocenter Count
0
未定义的键立体中心计数Undefined Bond Stereocenter Count
0
所有立体化学键的总数The total count of all stereochemical bonds
0
共价键合单元计数Covalently-Bonded Unit Count
11
安全和危险性(GHS)
象形图
信号词
警告
危险声明

H315: 引起皮肤刺激

H319: 引起严重眼睛刺激

H335: 可能引起呼吸道刺激

预防措施声明

P261: 避免吸入灰尘/烟雾/气体/雾/蒸汽/喷雾

P264: 处理后要彻底洗手。

P271: 仅在室外或通风良好的地方使用。

P280: 戴防护手套/穿防护服/戴防护眼罩/戴防护面具。

P321: 特殊处理(请参阅此标签上的...)。

P302+P352: 如皮肤沾染:用水充分清洗。

P304+P340: 如误吸入:将人转移到空气新鲜处,保持呼吸舒适体位。

P305+P351+P338: 如进入眼睛:用水小心冲洗几分钟。如戴隐形眼镜并可方便地取出,取出隐形眼镜。继续冲洗。

P362+P364: 脱掉沾污的衣服,清洗后方可重新使用。

P405: 密闭存放

P403+P233: 存放在通风良好的地方。保持容器密闭。

P501: 将内容物/容器处理到。。。

P264+P265: 处理后彻底洗手[和…]。不要触摸眼睛。

P337+P317: 如果眼睛刺激持续:寻求医疗帮助。

P332+P317: 如果出现皮肤刺激:请寻求医疗帮助。

P319: 如果你感到不适,请寻求医疗帮助。

质检证书(CoA,COO,BSE/TSE 和分析图谱)
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批号(Lot Number) 证书类型 货号
I2614255 分析证书 A475152
I2614254 分析证书 A475152
I2519162 分析证书 A475152
I2519161 分析证书 A475152
H2613058 分析证书 A475152
G2531205 分析证书 A475152
G2531220 分析证书 A475152
E2520200 分析证书 A475152
E2520238 分析证书 A475152
L2409019 分析证书 A475152
L2409018 分析证书 A475152
A2513289 分析证书 A475152
D2424110 分析证书 A475152
A2402323 分析证书 A475152
A2402322 分析证书 A475152
A2402321 分析证书 A475152
A2402316 分析证书 A475152

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此产品的引用文献
引用文献
1. Zhen Fang, Zhongmin Tang, Senming Lin, Runhua Li, Xiaomei Cheng, Jiakang Tian, Lijiang Liu, Jiaheng Peng, Shuai Liu, Benwei Fu, Jianbo Wu, Tao Deng.  (2023)  Doped TiO2-Supported IrO2 Electrocatalyst with High Activity and Durability toward the Acidic Oxygen Evolution Reaction.  CRYSTENGCOMM,  [10.1039/D3CE01036H]
2. Jiajun Zhang, Kai Feng, Zhengwen Li, Bin Yang, Binhang Yan, Kai Hong Luo.  (2023)  Defect-Driven Efficient Selective CO2 Hydrogenation with Mo-Based Clusters.  JACS Au,  [PMID:37885587] [10.1021/jacsau.3c00206]
3. Sang Xiong, Ruo-tian Wang.  (2022)  Tribological of Eu-doped WO3 coated with SiO2 transfer film formation on sliding surface.  SURFACE ENGINEERING,  [10.1080/02670844.2023.2172705]
4. Chi Zhang, Wei Xiong, Yi Li, Li Lin, Xinyi Zhou, Xinyan Xiong.  (2022)  Continuous inactivation of human adenoviruses in water by a novel g-C3N4/WO3/biochar memory photocatalyst under light-dark cycles.  JOURNAL OF HAZARDOUS MATERIALS,  [PMID:36155297] [10.1016/j.jhazmat.2022.130013]
5. Shi Xin-Wei, Zhang Sen, Zhou Qiang, Li Jing, Zhu Bai-Lin, Xu Liu-Jie, Gao Qi-Long.  (2022)  Effect of surface modification on thermal expansion of Zr2WP2O12/aromatic polyimides based composites.  Tungsten,  5  (1): (179-188).  [10.1007/s42864-022-00147-4]
6. Qinglin Han, Ximeng Zhao, Yuhong Luo, Lanlan Wu, Shujuan Sun, Jingde Li, Yanji Wang, Guihua Liu, Zhongwei Chen.  (2021)  Synergistic Binary Fe–Co Nanocluster Supported on Defective Tungsten Oxide as Efficient Oxygen Reduction Electrocatalyst in Zinc-Air Battery.  Advanced Science,  9  (4): (2104237).  [PMID:34850599] [10.1002/advs.202104237]
7. Onome Ejeromedoghene, Yi Ping Hu, Olayinka Oderinde, Fang Yao, Caroline Akinremi, Richard Akinyeye, Sheriff Adewuyi, Guodong Fu.  (2021)  Transparent and photochromic poly(hydroxyethyl acrylate–acrylamide)/WO3 hydrogel with antibacterial properties against bacterial keratitis in contact lens.  JOURNAL OF APPLIED POLYMER SCIENCE,  139  (12): (51815).  [10.1002/app.51815]
8. Onome Ejeromedoghene, Xiangyu Ma, Olayinka Oderinde, Fang Yao, Sheriff Adewuyi, Guodong Fu.  (2021)  Quaternary type IV deep eutectic solvent-based tungsten oxide/niobium oxide photochromic and reverse fading composite complex.  NEW JOURNAL OF CHEMISTRY,  45  (38): (18008-18018).  [10.1039/D1NJ02461B]
9. Yixuan Huang, Guangcai Zhang, Qinhui Zhang.  (2021)  Preparation of the WOX/MCM-41 Solid Acid Catalyst and the Catalytic Performance for Solketal Synthesis.  ACS Omega,  [PMID:33585766] [10.1021/acsomega.0c05671]
10. Rui Guo.  (2019)  Epitaxial growth of metastable phase α-Ag2MoO4 on WO3 surface: Visible light-driven photocatalysis, sterilization, and reaction mechanism.  JOURNAL OF ALLOYS AND COMPOUNDS,  [10.1016/j.jallcom.2019.152255]
11. Hong Yan, Zengwei Zhu, Yumei Long, Weifeng Li.  (2019)  Single-source-precursor-assisted synthesis of porous WO3/g-C3N4 with enhanced photocatalytic property.  COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS,  [10.1016/j.colsurfa.2019.123857]
12. Fuhang Mai, Zhe Wen, Yunfei Bai, Zewei Ma, Kai Cui, Kai Wu, Fei Yan, Hong Chen, Yongdan Li.  (2019)  Selective Conversion of Enzymatic Hydrolysis Lignin into Alkylphenols in Supercritical Ethanol over a WO3/γ-Al2O3 Catalyst.  INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH,  [10.1021/acs.iecr.9b01593]
13. Meizhen Lu, Libo Peng, Qinglong Xie, Yong Nie, Xuejun Liu, Xianghong Lu, Jianbing Ji.  (2018)  Oxidative Cleavage of Methyl 9,10-Epoxystearate over WO3/MCM-41 for Methyl 9-Oxononanoate Production.  EUROPEAN JOURNAL OF LIPID SCIENCE AND TECHNOLOGY,  120  (7): (1700415).  [10.1002/ejlt.201700415]
14. Yuanyuan Wu, Guo-Dong Li, Yipu Liu, Lan Yang, Xinran Lian, Tewodros Asefa, Xiaoxin Zou.  (2016)  Overall Water Splitting Catalyzed Efficiently by an Ultrathin Nanosheet-Built, Hollow Ni3S2-Based Electrocatalyst.  ADVANCED FUNCTIONAL MATERIALS,  26  (27): (4839-4847).  [10.1002/adfm.201601315]
15. Zhanwei Ma, Wenyan Wang, Ying Wu, Yiming He, Tinghua Wu.  (2014)  Oxidative Degradation of Chitosan to the Low Molecular Water-Soluble Chitosan over Peroxotungstate as Chemical Scissors.  PLoS One,  9  (6): (e100743).  [PMID:24971631] [10.1371/journal.pone.0100743]
16. Juncong Zou, Xiang Li, Shanying He, Qiuya Niu, Shaohua Wu, Chunping Yang.  (2024)  Atomically Permeated MoP-WOx Core-Shell Catalysts for Efficient and Selective Oxidation of Thiophenic Sulfides in Fuels via Direct Electron Transfer Mechanism.  ADVANCED FUNCTIONAL MATERIALS,  [10.1002/adfm.202415558]
17. Wang Ding, Qin Rui-Jie, Yu Jie-Jie, Hu Jin-Wu, Zhang Wen-Hui, Xu Hui, Xu Jing-Cheng, Liao Qiao-Bo, Li Hui-Jun, Wang Xu-Hui.  (2025)  Bilayer cascade of WO3 nanofibers/Ag@CeO2 nanosheets for ppb-level xylene detection under the catalysis-gas sensitivity synergistic mechanism.  RARE METALS,  [10.1007/s12598-025-03286-y]
18. Na Rishun, Ma Yongbo, Chao Luomeng.  (2024)  Density functional theory and experimental study on the optical properties of calcium tungsten bronze.  JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS,  35  (33): (1-8).  [10.1007/s10854-024-13883-9]
19. Weishan Qin, Ting Su, Guodong Chai, Xinhong Wang, Weichao Qin, Hongbin Yu.  (2025)  Enhanced acetaminophen degradation by photoelectro-persulfate system with 3D nanostructured PbO2/Sb-SnO2//blue-TiO2//WO3 bifacial photoanode and Mo-CuFeO2/CF cathode.  SEPARATION AND PURIFICATION TECHNOLOGY,  [10.1016/j.seppur.2025.132542]
20. Ting Su, Yunhe Gong, Xue Cui, Xinhong Wang, Yanan Zhang, Hongbin Yu.  (2024)  In situ enhanced chlorine oxide radical generation on a novel space-confined photoanode and its application for ammonia oxidation: Structure, performance, and mechanism.  CHEMICAL ENGINEERING JOURNAL,  [10.1016/j.cej.2024.155036]
21. Lechen Diao, Pingping Wang, Guozhou Feng, Biao Zhang, Zhichao Miao, Li-ping Xu, Jin Zhou.  (2024)  Interface-Engineered 3D porous MoS2–ReS2 in-plane heterojunction as efficient hydrogen evolution reaction electrocatalysts.  JOURNAL OF COLLOID AND INTERFACE SCIENCE,  [PMID:38330667] [10.1016/j.jcis.2024.02.056]
22. Wang Wei, Chen Jun-Yu, Ouyang Jie, Yin Hong, Li Ao-Jie, Chen Liang, Huang Jun-Lin, Zhu Yu-Can, Li Gang-Yong, Hou Zhao-Hui.  (2024)  Spray pyrolysis-derived W-doped MoSe2/rGO paper-like microspheres: optimization of microstructure and mesostructure for enhanced lithium storage.  RARE METALS,  [10.1007/s12598-024-02662-4]
23. Yunping Wu, Shuwen Niu, Zhengyu Wei, Lingzhe Meng, Wei Wei.  (2024)  Steric construction and modulation of Co–Nx single-atom electrocatalysts via polyoxometalate clusters integration.  APPLIED CATALYSIS B-ENVIRONMENTAL,  [10.1016/j.apcatb.2024.124014]
24. Shanshan Deng, Qingfeng Chang, Donglai Li, Boyu Wang, Haibo Jin, Jingbo Li.  (2022)  W-VO2/Cs0.32WO3 Composite Flexible Films: Promoted Metal–Insulator Transition and Enhanced Near-Infrared Shielding.  ACS Applied Energy Materials,  [10.1021/acsaem.1c03685]
25. XinWei Shi, Hong Lian, XiaoSheng Yan, Ruiqiong Qi, Ning Yao, Tao Li.  (2016)  Fabrication and properties of polyimide composites filled with zirconium tungsten phosphate of negative thermal expansion.  MATERIALS CHEMISTRY AND PHYSICS,  [10.1016/j.matchemphys.2016.05.011]
26. Haidong Wang, Yongxin Jiao, Guanghui Zhang, Zexi Zhang, Weiguang Ma, Chenghua Sun, Xu Zong.  (2024)  Superaerophobic Ni3N/Ni@W2N3 multi-heterointerfacial nanoarrays for efficient alkaline electrocatalytic hydrogen evolution reaction.  CHEMICAL ENGINEERING JOURNAL,  [10.1016/j.cej.2024.154776]
27. Zhan Zhao, Tao Shi, Jia Liang, Kelei Huang, Xiangchao Meng.  (2025)  In situ controllable reconstruction of hydrogen spillover channel towards ampere-level hydrogen evolution in alkaline media.  Journal of Energy Chemistry,  [10.1016/j.jechem.2025.07.018]
28. Boxiang Gao, Yan Yan, Shuai Zhang, Zenghui Wu, You Meng, Yuxuan Zhang, Weijun Wang, Yi Shen, Siliang Hu, Bowen Li, He Shao, Pengshan Xie, SenPo Yip, Johnny C. Ho.  (2025)  Precise p-Type Substitutional Doping Enables WS2 p-n Anti-Ambipolar Homojunction Phototransistor Arrays.  ADVANCED FUNCTIONAL MATERIALS,  [10.1002/adfm.202425884]
29. Yang Sun, Fan Yang, Kexin Wei, Siyuan Sun, Li Sun, Junpu An, Chunhui Yu, Qing Guo, Conghan Zhang, Guang Ma, Hongchen Liu, Yongfeng Li.  (2025)  Construction of a built-in electric field in Mo-doped Ni/WO3 to enhance asymmetric charge distribution for efficient overall water splitting.  Chemical Science,  [PMID:41358019] [10.1039/D5SC06522D]
30. Manwen Hu, Jiejie Yu, Ruijie Qin, Jinwu Hu, Jingcheng Xu, Hui-jun Li, Hui Xu, Jingbo Chen, Ding Wang.  (2025)  PtPd/CeO2 catalytic enhanced WO3 nanofibers bilayer gas sensor for ppb-level xylene detection.  JOURNAL OF HAZARDOUS MATERIALS,  [PMID:41380269] [10.1016/j.jhazmat.2025.140742]
31. Qiaochu Zhou, Yiyang Wang, Zhe Zhang, Chi Zhang, Fang Li, Qiming Li.  (2026)  Investigation of transition metal doping on catalytic activity of Co3O4 catalysts in hydrogen generation from NaBH4 hydrolysis.  Journal of Environmental Chemical Engineering,  [10.1016/j.jece.2026.122386]
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