锡酸钾 三水合物

CAS: 12125-03-0 货号: P106147 分子式: K2SnO3 ·3H2O 分子量: 298.94 EC号: 682-903-5
有货
级别和纯度: ≥99.5% metals basis
别名
锡酸钾 | 氧化钾锡(IV)三水合物 | 锡(IV)酸钾三水合物
储存条件
室温
运输条件
常规运输
★
规格
库存
价格
数量
50g
P106147-50g
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¥56.90
250g
P106147-250g
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¥224.90
1kg
P106147-1kg
现货 Stock Image
¥698.90
5kg
P106147-5kg
期货 Stock Image
¥2,504.90
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为什么选择此级别

提供 ≥99.5% 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。常规运输 。请查阅批次 COA 获取详细规格。

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质量文档

SDS、COA、产品数据表及规格说明书均可下载。可通过批号查询获取批次 COA。

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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 28 篇同行评审文献引用。

概述

易溶于水,不溶于醇、丙酮,极少溶于氢氧化钾。在碱性镀锡溶液中比其它锡盐能产生较高的阴极效率及导电率,提高表面光亮度、附着力及抗腐蚀。如用于汽车制造,电子行业,食品罐装食品盒等电镀。还可用于媒染剂、陶瓷等。


规格

别名
锡酸钾 | 氧化钾锡(IV)三水合物 | 锡(IV)酸钾三水合物
英文别名
Potassium tin oxide trihydrate (K2SnO3.3H2O) | POTASSIUM STANNATE TRIHYDRATE [MI] | dipotassium;dioxido(oxo)tin;trihydrate | MFCD00150391 | diPotassium stannate trihydrate | POTASSIUMSTANNATETRIHYDRATE | UNII-R38Y86O4SY | Potassium stannate trihydrate | P
规格或纯度
≥99.5% metals basis
英文名称
Potassium stannate trihydrate
应用
在碱性镀锡溶液中比其它锡盐能产生较高的阴极效率及导电率,提高表面光亮度、附着力及抗腐蚀。如用于汽车制造,电子行业,食品罐装食品盒等电镀。还可用于媒染剂、陶瓷等。
储存条件
室温
运输条件
常规运输
纯度
≥99.5% metals basis
名称和识别符
PubChem SID
分子类型
小分子
IUPAC Name
dipotassium;dioxido(oxo)tin;trihydrate
INCHI
1S/2K.3H2O.3O.Sn/h;;3*1H2;;;;/q2*+1;;;;;2*-1;
InChi Key
HTHDWDSBYOUAFF-UHFFFAOYSA-N
Smiles
O.O.O.[O-][Sn](=O)[O-].[K+].[K+]
Isomeric SMILES
O.O.O.[O-][Sn](=O)[O-].[K+].[K+]
分子量
298.94
Reaxy-Rn
27649922
Reaxys-RN link address
https://www.reaxys.com/reaxys/secured/hopinto.do?context=S&query=IDE.XRN=27649922&ln=

技术文档

📋 安全数据表 (SDS)

全面的危险、操作、储存及法规合规文件。

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✅ 分析证书 (COA)

批次质量数据。输入批号以获取对应 COA。

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📊 产品数据表

产品规格和应用的快速参考摘要。

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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) 碱金属含氧阴离子化合物
亚类(Subclass) 碱金属锡酸盐
中间层级节点(Intermediate Tree Nodes) 暂无
直接上位类(Direct Parent) 碱金属锡酸盐
其他上位类(Alternative Parents) 无机锡盐  无机氧化物  
分子骨架(Molecular Framework) 暂无
取代基(Substituents) 碱金属锡酸盐 - 无机氧化物 - 无机盐 - 无机锡盐
描述(Description) 该化合物属于无机化合物中的碱金属锡酸盐类。这类化合物中最大的氧阴离子为锡酸根,且非氧阴离子中的最重原子为碱金属。
外部描述符(External Descriptors) 暂无
三维结构
交互式化学结构模型





化学和物理性质
溶解性
Soluble in water.
密度
3.197
熔点
140°C
分子量
298.950 g/mol
XLogP3
氢键供体数Hydrogen Bond Donor Count
3
氢键受体数Hydrogen Bond Acceptor Count
6
可旋转键计数Rotatable Bond Count
0
精确质量Exact Mass
299.846 Da
单同位素质量Monoisotopic Mass
299.846 Da
拓扑极表面积Topological Polar Surface Area
66.200 Ų
重原子数Heavy Atom Count
9
形式电荷Formal Charge
0
复杂度Complexity
18.800
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
6
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)
C of A & Other Certificates(BSE/TSE, COO):
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找到16个结果

批号(Lot Number) 证书类型 货号
I2609146 分析证书 P106147
I2202651 分析证书 P106147
I2202721 分析证书 P106147
I2202722 分析证书 P106147
J2121216 分析证书 P106147
I2010016 分析证书 P106147
B2526024 分析证书 P106147
D2627015 分析证书 P106147
E2411035 分析证书 P106147
E2521028 分析证书 P106147
E2615160 分析证书 P106147
K2517258 分析证书 P106147
D2423024 分析证书 P106147
E2326293 分析证书 P106147
H2323043 分析证书 P106147
K2412291 分析证书 P106147

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此产品的引用文献
引用文献
1. Shiming Zhang, Songyu Fan, Ting Liang, Jingwen Wei, Tingting Zhu, Yuxiang Shen, Zebin Yu, Hongxiang Zhu, Shuangfei Wang, Yanping Hou.  (2023)  Sn and dual-oxygen-vacancy in the Z-scheme Bi2Sn2O7/Sn/NiAl-layered double hydroxide heterojunction synergistically enhanced photocatalytic activity toward carbon dioxide reduction.  JOURNAL OF COLLOID AND INTERFACE SCIENCE,  [PMID:37657213] [10.1016/j.jcis.2023.08.145]
2. Junpeng Sun, Jiaqun Du, Xiaobang Liu, Jinyu An, Yingqiao Li, Yanan Yu, Minghui Li, Li Zheng, Chao Wu, Lili Hu.  (2023)  Preparation of chitosan-coated hollow tin dioxide nanoparticles and their application in improving the oral bioavailability of febuxostat.  International Journal of Pharmaceutics-X,  [PMID:37521247] [10.1016/j.ijpx.2023.100199]
3. Yu Ji, Shuang He, Yang Chen, Pei Zhang, Jing Sun, Ya Li, Kaida Kuang, Nengqin Jia.  (2023)  A sensitive dual-signal electrochemiluminescence immunosensor based on Ru(bpy)32+@HKUST-1 and Ce2Sn2O7 for detecting the heart failure biomarker NT-proBNP.  Journal of Materials Chemistry B,  11  (12): (2754-2761).  [PMID:36880334] [10.1039/D2TB02555H]
4. Yifan Huang, Xue Zhang, Sanhu Liu, Rongguo Wang, Jinhong Guo, Yidi Chen, Xing Ma.  (2023)  Wireless food-freshness monitoring and storage-time prediction based on ammonia-sensitive MOF@SnS2 PN heterostructure and machine learning.  CHEMICAL ENGINEERING JOURNAL,  [10.1016/j.cej.2023.141364]
5. Kungang Chai, Shizhao Zhang, Hongjie Liu, Shaopeng Wang, Zhenghua Chen, Kefu Yu, Liwei Wang.  (2022)  Validation of synergistic effect in NC@SnO2 hollow nano-microspheres through interfacial chemical bonding for boosting electrochemical sensing.  APPLIED SURFACE SCIENCE,  [10.1016/j.apsusc.2022.154300]
6. Chen Jiepeng, Luo Chen, Huang Yun, Liu Jiapin, Li Chengwei, Zhao Zhixing, Xu Xi, Zheng He, Tang Zhaomin, Li Xing, Wang Mingshan, Lin Yuanhua, Cao Haijun.  (2022)  Hydroxypropyl methyl cellulose-based gel polymer electrolyte provides a fast migration channel for sodium-ion batteries.  JOURNAL OF MATERIALS SCIENCE,  57  (6): (4311-4322).  [10.1007/s10853-022-06920-7]
7. Yanxin Yao, Zengyue Wang, Zhejun Li, Yi-Chun Lu.  (2021)  A Dendrite-Free Tin Anode for High-Energy Aqueous Redox Flow Batteries.  ADVANCED MATERIALS,  33  (15): (2008095).  [PMID:33694199] [10.1002/adma.202008095]
8. J. Zhu, C. Shang, X. Wang, G. Zhou.  (2021)  Co2P/Sn4P3 particle encapsulated in N, P codoped carbon nanocubes for efficient sodium storage.  Materials Today Chemistry,  [10.1016/j.mtchem.2020.100389]
9. Lijuan Yang, Siyu Wang, Hong Yuan, Hai Liu.  (2019)  Preparation of mesoporous double-layer carbon microsphere-based solid acid catalyst by hydrothermal method and its application in catalytic transesterification of waste frying oil.  JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY,  94  (11): (3538-3547).  [10.1002/jctb.6156]
10. Zhilong Xu, Lei Fan, Xiangying Ni, Jie Han, Rong Guo.  (2019)  Sn-encapsulated N-doped porous carbon fibers for enhancing lithium-ion battery performance.  RSC Advances,  9  (16): (8753-8758).  [PMID:35517654] [10.1039/C8RA10201E]
11. Xiaojuan Zhao, Xiang Lv, Hongda Cui, Tianhe Wang.  (2017)  Preparation of bismuth stannate/silver@silver chloride film samples with enhanced photocatalytic performance and self-cleaning ability.  JOURNAL OF COLLOID AND INTERFACE SCIENCE,  [PMID:28802193] [10.1016/j.jcis.2017.07.041]
12. Ying Wang, Zhenting Zhao, Yongjiao Sun, Pengwei Li, Jianlong Ji, Yong Chen, Wendong Zhang, Jie Hu.  (2016)  Fabrication and gas sensing properties of Au-loaded SnO2 composite nanoparticles for highly sensitive hydrogen detection.  SENSORS AND ACTUATORS B-CHEMICAL,  [10.1016/j.snb.2016.09.024]
13. Liu Lingmei, Sun Wuzhu, Yang Weiyi, Li Qi, Shang Jian Ku.  (2016)  Post-illumination activity of SnO2 nanoparticle-decorated Cu2O nanocubes by H2O2 production in dark from photocatalytic “memory”.  Scientific Reports,  6  (1): (1-11).  [PMID:26879006] [10.1038/srep20878]
14. Mei Lei, Wei Wu, Shuanglei Yang, Xingang Zhang, Zhuo Xing, Feng Ren, Xiangheng Xiao, Changzhong Jiang.  (2016)  Design of Enhanced Catalysts by Coupling of Noble Metals (Au,Ag) with Semiconductor SnO2 for Catalytic Reduction of 4-Nitrophenol.  PARTICLE & PARTICLE SYSTEMS CHARACTERIZATION,  33  (4): (212-220).  [10.1002/ppsc.201500128]
15. Mei Lei, Wei Wu, Lingling Sun, Qingyong Tian, Changzhong Jiang, Xiangheng Xiao.  (2015)  Controlled preparation of hollow SnO2@M (M = Au, Ag) heterostructures through template-assist method for enhanced photocatalysis.  COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS,  [10.1016/j.colsurfa.2015.06.018]
16. Chengnan Wang, Pei Zhao, Shantang Liu.  (2015)  PdO/SnO2 hollow nanospheres for carbon monoxide detection.  PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE,  212  (8): (1789-1794).  [10.1002/pssa.201431892]
17. Qingyong Tian, Wei Wu, Lingling Sun, Shuanglei Yang, Mei Lei, Juan Zhou, Ying Liu, Xiangheng Xiao, Feng Ren, Changzhong Jiang, Vellaisamy A. L. Roy.  (2014)  Tube-Like Ternary α-Fe2O3@SnO2@Cu2O Sandwich Heterostructures: Synthesis and Enhanced Photocatalytic Properties.  ACS Applied Materials & Interfaces,  [PMID:24991983] [10.1021/am5029439]
18. Wei Wu, Lei Liao, Shaofeng Zhang, Juan Zhou, Xiangheng Xiao, Feng Ren, Lingling Sun, Zhigao Dai, Changzhong Jiang.  (2013)  Non-centrosymmetric Au–SnO2 hybrid nanostructures with strong localization of plasmonic for enhanced photocatalysis application.  Nanoscale,  5  (12): (5628-5636).  [PMID:23685533] [10.1039/C3NR00985H]
19. Haiting Lu, Sheng Yu, Yang Fan, Chunpeng Yang, Dongli Xu.  (2012)  Nonenzymatic hydrogen peroxide electrochemical sensor based on carbon-coated SnO2 supported Pt nanoparticles.  COLLOIDS AND SURFACES B-BIOINTERFACES,  [PMID:22796779] [10.1016/j.colsurfb.2012.05.033]
20. Haiting Lu, Yang Fan, Ping Huang, Dongli Xu.  (2012)  SnO2 nanospheres supported Pd catalyst with enhanced performance for formic acid oxidation.  JOURNAL OF POWER SOURCES,  [10.1016/j.jpowsour.2012.05.003]
21. Xianhong Wang, Jiuying Cui, Qinghua Gong, Lu Zheng, Dandan Liu, Guangming Nie.  (2024)  A multiple signal amplification electrochemiluminescence sensor for Hg2+ detection based on Ce2Sn2O7/poly(5-formylindole) nanocomposites.  TALANTA,  [PMID:39561617] [10.1016/j.talanta.2024.127227]
22. Jinghua Li, Pengshan Guo, Shegan Gao, Jianping Wang, Ji Cheng, Wenxuan Fan, Xiaoran Liu, Xiaozhi Zhang, Kun Lei.  (2024)  Cu2O-SnO2-PDA heterozygous nanozyme doped hydrogel mediated conglutinant microenvironment regulation for wound healing therapy.  INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES,  [PMID:39307489] [10.1016/j.ijbiomac.2024.135852]
23. Jing Xu, Rui Wang, Huizi Songtian, Tianli Han, Huigang Zhang, Jinyun Liu.  (2024)  Engineering tin dioxide quantum dots-coated iron oxide nanorods as sulfur host for polysulfides-immobile lithium-sulfur battery.  JOURNAL OF ALLOYS AND COMPOUNDS,  [10.1016/j.jallcom.2024.176942]
24. Haidong Luo, Shengjiang Zhang, Fozia Batool, Suhang Chen, Fengqi Zhao, Kangzhen Xu.  (2024)  Rational design of Bi2Sn2O7/Bi5O7I S-scheme heterojunction for visible photocatalytic oxidation of emerging pollutants.  JOURNAL OF COLLOID AND INTERFACE SCIENCE,  [PMID:38198934] [10.1016/j.jcis.2024.01.016]
25. Jiapeng Lu, Lingling Wang, Xin Min, Ya Chen, Wei Wang, Zhaohui Huang, Minghao Fang.  (2025)  Sn@C Composite Architecture for Improved Stability and Performance in Lithium-Ion Battery Anodes.  JOURNAL OF THE ELECTROCHEMICAL SOCIETY,  172  (2): (020502).  [10.1149/1945-7111/adada6]
26. Yang Yang, Yan Xiang, Yuewen Yang, Xian Xie, Faheem Mushtaq, Ruiqin Zhang, Walid A. Daoud.  (2024)  Urea Induces Uniform Tin Deposition for Long Cycle-Life Tin-based Redox Flow Battery.  ADVANCED FUNCTIONAL MATERIALS,  [10.1002/adfm.202413685]
27. Junjie Tang, Shiyu Peng, Guizhi Tang, Yuxue Mo, Chen Wang.  (2025)  Sea Urchin-Like GC-SnO2 Microsphere Composite as Anode for High-Performance Lithium-Ion Battery.  ChemistrySelect,  10  (27): (e01763).  [10.1002/slct.202501763]
28. Yixin Liu, Wenyu Dong, Tao Wang, Jianwei Zhao, Peng Li.  (2025)  Synergistic design of 3D porous lithiophilic Cu-Sn alloy current collectors for high-rate and stable graphite anodes.  ELECTROCHIMICA ACTA,  [10.1016/j.electacta.2025.147778]
溶液计算器