氢氧化铜

CAS: 20427-59-2 货号: C105403 分子式: Cu(OH)2 分子量: 97.56 EC号: 243-815-9
有货
级别和纯度: 化学纯(CP) ? 化学纯(CP)—— 纯度高于工业级、低于分析级的中等纯度。适用于对超低杂质无严格要求的常规实验反应。 ≥94%
储存条件
室温,充氩
运输条件
常规运输
★
规格
库存
价格
数量
100g
C105403-100g
现货 Stock Image
¥45.90
500g
C105403-500g
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¥145.90
2.5kg
C105403-2.5kg
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¥566.90
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为什么选择此级别

化学纯(CP) 级 提供 ≥94% 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,充氩。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 32 篇同行评审文献引用。

概述

其稳定性随制造方法不同而异,放置或加热能分解成黑色氧化铜,能溶于酸类及氨水,其新制品能溶于碱,几乎不溶于水。

用 X 射线衍射法测定了氢氧化铜晶体的正交性。 氢氧化铜在末端炔烃的选择性氧化交叉偶联反应中可作为非均相催化剂,生成相应的的炔酰胺类化合物。
应用:
氢氧化铜单晶可用于合成氢氧化铜基单晶干凝胶。这种金属有机框架 (MOFs) 的潜在应用包括气体储存、分离、药物输送和生物医学。负载 Cu (OH) x 可作为催化剂用于苯硫醇与环酰胺的有氧交叉脱氢偶联反应,生成 N-酰基磺酰胺。

The orthorhombic nature of copper hydroxide crystals was determined by X ray diffraction. Copper hydroxide can act as a heterogeneous catalyst in the selective oxidative cross coupling of terminal alkynes to yield their corresponding ynamides.

规格

英文别名
Copper dihydroxide | Hydrated cupric oxide | Cupric hydroxide
规格或纯度
化学纯(CP), ≥94%
英文名称
Copper hydroxide
储存条件
室温,充氩
运输条件
常规运输
纯度
≥94%
名称和识别符
PubChem SID
EC号
243-815-9
分子类型
小分子
IUPAC Name
copper;dihydrate
INCHI
1S/Cu.2H2O/h;2*1H2
InChi Key
AEJIMXVJZFYIHN-UHFFFAOYSA-N
Smiles
O.O.[Cu]
Isomeric SMILES
O.O.[Cu]
分子量
97.56
Reaxy-Rn
31846435
Reaxys-RN link address
https://www.reaxys.com/reaxys/secured/hopinto.do?context=S&query=IDE.XRN=31846435&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) 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) 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 - 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,且与氧原子键合的原子中,最重的原子为过渡金属。
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
Slightly soluble in waterSoluble in acids, ammonium hydroxide, dilute hydrochloric acid, concentrated alkali and potassium cyanide. Insoluble in water, ethanol, and acetone.
密度
3.37
敏感性
易吸潮;对湿度敏感;对空气敏感;对热敏感
熔点
229 °C
分子量
99.580 g/mol
XLogP3
氢键供体数Hydrogen Bond Donor Count
2
氢键受体数Hydrogen Bond Acceptor Count
2
可旋转键计数Rotatable Bond Count
0
精确质量Exact Mass
98.9507 Da
单同位素质量Monoisotopic Mass
98.9507 Da
拓扑极表面积Topological Polar Surface Area
2.000 Ų
重原子数Heavy Atom Count
3
形式电荷Formal Charge
0
复杂度Complexity
2.800
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
3
安全和危险性(GHS)
象形图
GHS05,   GHS06,   GHS07,   GHS09
信号词
危险
危险声明

H302: 吞食有害

H318: 造成严重的眼睛损伤

H330: 吸入致命

H400: 对水生生物有剧毒

H410: 对水生生物有剧毒并具有长期持续影响

预防措施声明

P260: 不要吸入灰尘/烟雾/气体/雾/蒸汽/喷雾。

P264: 处理后要彻底洗手。

P270: 使用本产品时,请勿进食、饮水或吸烟。

P271: 仅在室外或通风良好的地方使用。

P273: 避免释放到环境中。

P280: 戴防护手套/穿防护服/戴防护眼罩/戴防护面具。

P284: 如果通风不良,请佩戴呼吸防护装置。

P320: 迫切需要特殊治疗(请参阅此标签上的...)。

P330: 漱口

P391: 收集溢出物

P304+P340: 如误吸入:将人转移到空气新鲜处,保持呼吸舒适体位。

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。

P301+P317: 如果被吞咽:请寻求医疗帮助。

P305+P354+P338: 如果进入眼睛:立即用水冲洗几分钟。取下隐形眼镜(如果有的话),并且操作简单。继续冲洗。

P317: 寻求紧急医疗救助。

P316: 立即寻求紧急医疗救助。

WGK Germany
3
RTECS
GL7600000
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18个结果

批号(Lot Number) 证书类型 货号
F2611174 分析证书 C105403
K2102170 分析证书 C105403
F2223189 分析证书 C105403
F2223263 分析证书 C105403
F2524099 分析证书 C105403
F2524158 分析证书 C105403
E2520115 分析证书 C105403
C2201453 分析证书 C105403
B2109137 分析证书 C105403
A2506282 分析证书 C105403
B2328805 分析证书 C105403
B2328811 分析证书 C105403
K2102227 分析证书 C105403
K2102171 分析证书 C105403
F2223266 分析证书 C105403
C2201454 分析证书 C105403
C2201430 分析证书 C105403
B2109135 分析证书 C105403

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技术文档和文章
此产品的引用文献
引用文献
1. Jie Li, Xiuheng Liu.  (2023)  Coptisine inhibits the malignancy of bladder carcinoma cells and regulates XPO1 expression.  Chemical Biology & Drug Design,  [PMID:37442763] [10.1111/cbdd.14291]
2. Gang Li, Xuecheng Yu, Ruoyu Zhang, Qionglin Ouyang, Rong Sun, Liqiang Cao, Pengli Zhu.  (2023)  Facile Preparation of Monodisperse Cu@Ag Core–Shell Nanoparticles for Conductive Ink in Printing Electronics.  Micromachines,  14  (7): (1318).  [PMID:37512629] [10.3390/mi14071318]
3. Chan Li, Sheng Zhou, Chuncheng Chen, Lijun Zhu, Shijie Li, Zhuoyue Song, Jian Liang, Chunzhi Tang, Nenggui Xu, Tao Liu, Shihui Liu.  (2023)  DDTC-Cu(I) based metal-organic framework (MOF) for targeted melanoma therapy by inducing SLC7A11/GPX4-mediated ferroptosis.  COLLOIDS AND SURFACES B-BIOINTERFACES,  [PMID:36934611] [10.1016/j.colsurfb.2023.113253]
4. Lusheng Shi, Pengquan Yan, Zhihua Gao, Wei Huang.  (2022)  Effect of copper source on the structure–activity of CuAl2O4 spinel catalysts for CO hydrogenation.  Arabian Journal of Chemistry,  [10.1016/j.arabjc.2022.104464]
5. Wanwan Li, Jiao Liu, Chao Chen, Yidong Zhu, Nan Liu, Yuman Zhou, Siru Chen.  (2022)  High catalytic performance non-enzymatic H2O2 sensor based on Cu2O@Cu9S5 yolk-shell nanospheres.  APPLIED SURFACE SCIENCE,  [10.1016/j.apsusc.2022.152766]
6. Ying Zhang, Yangmei Li, Qiang Tan, Song Hong, Zhenyu Sun.  (2021)  Facile synthesis of two-dimensional copper terephthalate for efficient electrocatalytic CO2 reduction to ethylene.  Journal of Experimental Nanoscience,  [10.1080/17458080.2021.1957844]
7. Lei Chen, Huan Wang, Xiaohong Cao, Yue Feng, Zhibing Zhang, Youqun Wang, Yunhai Liu.  (2021)  Effects of different phosphorus sources on the adsorption of U(Ⅵ) by Zr(Ⅳ) organophosphate hybrids.  JOURNAL OF SOLID STATE CHEMISTRY,  [10.1016/j.jssc.2021.122434]
8. Li Pengfei, Zhang Hong, Gao Caiyun, Jiang Guoxiang, Li Zhicheng.  (2019)  Electrical property of Al/La/Cu modified ZnO-based negative temperature coefficient (NTC) ceramics with high ageing stability.  JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS,  30  (21): (19598-19608).  [10.1007/s10854-019-02333-6]
9. Zeng Yuan, Li Zhicheng, Shao Junming, Wang Xianchi, Hao Wenbin, Zhang Hong.  (2019)  Electrical properties of perovskite YFeO3 based ceramics modified by Cu/Nb ions as negative temperature coefficient thermistors.  JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS,  30  (15): (14528-14537).  [10.1007/s10854-019-01824-w]
10. Yu Zhang, Pengli Zhu, Gang Li, Zhen Cui, Chengqiang Cui, Kai Zhang, Jian Gao, Xin Chen, Guoqi Zhang, Rong Sun, Chingping Wong.  (2019)  PVP-Mediated Galvanic Replacement Synthesis of Smart Elliptic Cu–Ag Nanoflakes for Electrically Conductive Pastes.  ACS Applied Materials & Interfaces,  [PMID:30726050] [10.1021/acsami.8b16135]
11. Hao Yueyue, Zhang Nan, Luo Jing, Liu Xiaoya.  (2018)  Tannic acid stabilized antioxidation copper nanoparticles in aqueous solution for application in conductive ink.  JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS,  29  (24): (20603-20606).  [10.1007/s10854-018-0196-5]
12. Yufeng Zhou, Yali Yu, Longlong Gao, Yifan Fei, Ting Ye, Qiusha Li, Xiaoshun Zhou, Ning Gan, Yong Shao.  (2018)  Structuring polarity-inverted TBA to G-quadruplex for selective recognition of planarity of natural isoquinoline alkaloids.  ANALYST,  143  (20): (4907-4914).  [PMID:30238092] [10.1039/C8AN01561A]
13. Zhang Yu, Cui Chengqiang, Yang Bin, Zhang Kai, Zhu Pengli, Li Gang, Sun Rong, Wong Chingping.  (2018)  Size-controllable copper nanomaterials for flexible printed electronics.  JOURNAL OF MATERIALS SCIENCE,  53  (18): (12988-12995).  [10.1007/s10853-018-2564-1]
14. Cheng Chaoliang, Li Junjie, Shi Tielin, Yu Xing, Fan Jinhu, Liao Guanglan, Li Xiaoping, Cheng Siyi, Zhong Yan, Tang Zirong.  (2017)  A novel method of synthesizing antioxidative copper nanoparticles for high performance conductive ink.  JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS,  28  (18): (13556-13564).  [10.1007/s10854-017-7195-9]
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16. Zhongchao Bai, Yuwen Zhang, Yaohui Zhang, Chunli Guo, Bin Tang.  (2015)  A large-scale, green route to synthesize of leaf-like mesoporous CuO as high-performance anode materials for lithium ion batteries.  ELECTROCHIMICA ACTA,  [10.1016/j.electacta.2015.01.188]
17. Lihua Zhang, Hua Liu, Yong Shao, Clement Lin, Huan Jia, Gang Chen, Danzhou Yang, Ying Wang.  (2014)  Selective Lighting Up of Epiberberine Alkaloid Fluorescence by Fluorophore-Switching Aptamer and Stoichiometric Targeting of Human Telomeric DNA G-Quadruplex Multimer.  ANALYTICAL CHEMISTRY,  [PMID:25429435] [10.1021/ac503730j]
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19. Danish Iqbal, Waqar Iqbal, Raza Ullah, Renhai Zhao, Naveed Iqbal, Xin Ning.  (2025)  Cuprammonium cellulose nanomembranes for sustainable antibiotic removal from water.  Journal of Water Process Engineering,  [10.1016/j.jwpe.2025.107076]
20. Danish Iqbal, Raza Ullah, Renhai Zhao, Yuejie Dou, Di Yan, Xin Ning.  (2024)  Dye adsorption and antimicrobial performances of composite nanofiber membranes containing cuprammonium cellulose.  SEPARATION AND PURIFICATION TECHNOLOGY,  [10.1016/j.seppur.2024.126677]
21. Danish Iqbal, Raza Ullah, Muhammad Ilyas Sarwar, Renhai Zhao, Xin Ning.  (2024)  Fabrication and adsorption characteristics of cuprammonium cellulose-based membranes for removing anionic and cationic dyes.  COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS,  [10.1016/j.colsurfa.2024.135692]
22. Jianbo Xin, Yue Gao, Chenghao Zhang, Le Yang, Sushi Liu, Ke Li, Minghao Zhou, Yang Liu, Jing Zhang, William Cai.  (2024)  High performance Cu sintering joint for power devices enabled by in-situ generation of Cu particles with multi-level hierarchical structures.  JOURNAL OF MATERIALS PROCESSING TECHNOLOGY,  [10.1016/j.jmatprotec.2024.118435]
23. Jieqiong Ding, Jie Tan, Xiaohang Peng, Liyuan Cheng, Weiling Huang, Binhua Luo.  (2024)  Ursolic acid loaded tri-block copolymer nanoparticles based on triphenylphosphine for mitochondria-targeted cancer therapy.  Biomedical Materials,  19  (3): (035013).  [PMID:38422539] [10.1088/1748-605X/ad2ecf]
24. Liangyuan Chen, Jiangfeng Liu, Jitao Shang, Jin-Xiu Liu, Zhaofu Zhang, Xiaolin Liu, Du Wang, Yan Zhao.  (2025)  Zn/Cu Co-Deposition Enables Dynamic Interfacial Reconstruction for Stable Zinc-Metal Batteries.  ADVANCED FUNCTIONAL MATERIALS,  [10.1002/adfm.202516803]
25. Lijun Meng, Lihan Liu, Senjian Han, Xuan Zhou, Jiayi Luan, Lina Xu, Shiqiang Wang, Tianlong Deng.  (2025)  Acid-base in situ reaction enhanced dispersion of copper ferrocyanide on modified polyacrylonitrile membrane for efficient Cs removal.  Journal of Environmental Chemical Engineering,  [10.1016/j.jece.2025.116528]
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27. Siqi Wang, Yazhou Wang, Yonggang Ji, Zhenye Li, Yueli Dai.  (2025)  Preparation of 2-Methylfuran by Hydrodeoxygenation of Furfural Over Cu3P Catalysts.  ChemistrySelect,  10  (20): (e01019).  [10.1002/slct.202501019]
28. Juan Huang, Mingjing Yang, Xingyu Zhou, Jigang Luo, Xiaoxia Yan, Guanghui Lin, Shijie Li, Shihui Liu, Zhuoyue Song, Chunzhi Tang, Nenggui Xu, Tao Liu, Jian Liang.  (2025)  DDTC-Cu(I) Nano-MOF Induces Ferroptosis by Targeting SLC7A11/GPX4 Signal in Colorectal Cancer.  ACS Biomaterials Science & Engineering,  [PMID:40491359] [10.1021/acsbiomaterials.5c00680]
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30. Waqar Iqbal, Rashda, Hongzhen Cai, Jiankang Zhang, Keyan Yang, Xiangsheng Han, Shanshan Xu.  (2025)  Synergistic integration of ZIF-8 and cuprammonium cellulose for enhanced antibiotic removal and microbial disinfection.  INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES,  [PMID:41187854] [10.1016/j.ijbiomac.2025.148648]
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32. Deng Chuheng, Qin Yufeng, Shen Yi, Rao Longshi, Wang Shuangxi.  (2026)  Preparation of Strong-Adhesion and High-Conductivity Copper Films on Al2O3 Ceramic Substrates via Low-Temperature Pressureless Sintering.  JOM,  [10.1007/s11837-026-08517-w]
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