Zirconium propoxide solution - 70 wt. % in n-propanol , CAS No.23519-77-9

CAS: 23519-77-9 Cat. No.: Z106340 Peso molecular: 327.57 Beilstein Registry Number: 3679533 Número EC: 245-711-9 PubChem CID: 90139
Disponible para pedir
GRADE & PURITY 70 wt. % in n-propanol
Synonyms
zirconium tetrapropoxide | AKOS030228362 | ZIRCONIC ACID PROPYL ESTER | ZIRCONIUM TETRAKIS(1-PROPOXIDE) | XPGAWFIWCWKDDL-UHFFFAOYSA-N | Tetrapropyl zirconate | zirconium tetra propoxide | ZIRCONIUM(4+) PROPOXIDE | DTXSID6046975 | PROPYL ZIRCONATE | TETRAP
Storage
Room temperature,Argon charged
Shipped In
Normal
 ·  off list, applied to all prices below.
Size
Estado
Price
Qty
10g
Z106340-10g
3
9,90US$
25g
Z106340-25g
3
19,90US$
100g
Z106340-100g
3
54,90US$
500g
Z106340-500g
4
163,90US$
Enter a quantity for the sizes you want to add.
🧪

Why this grade

70 wt. % in n-propanol for sensitive chromatographic and analytical workflows requiring minimal baseline interference.

🌡

Storage & shipping

Room temperature,Argon charged Ships Normal Check lot-specific COA for exact specifications.

📋

Quality documents

SDS, COA, datasheet, and spec sheet available for download. Lot-specific COA accessible via lot number lookup.

📚

Literature proof

Cited in 102 peer-reviewed publications across chromatography, organic synthesis, and cross-coupling reactions.

Descripción general

Application

Zirconium(IV) n-propoxide is used as a precursor in the production of zirconia. It is also used to study the thermophysical properties like thermal conductivity and thermal effusivity of hybrid films and thereby adjusting optic properties of the films.

Specifications

Sinónimos
zirconium tetrapropoxide | AKOS030228362 | ZIRCONIC ACID PROPYL ESTER | ZIRCONIUM TETRAKIS(1-PROPOXIDE) | XPGAWFIWCWKDDL-UHFFFAOYSA-N | Tetrapropyl zirconate | zirconium tetra propoxide | ZIRCONIUM(4+) PROPOXIDE | DTXSID6046975 | PROPYL ZIRCONATE | TETRAP
Especificaciones y pureza
70 wt. % in n-propanol
Condiciones de almacenamiento de almacenamiento
Room temperature, Argon charged
Enviado en
Normal
Nombres e identificadores
Pubchem Sid504756014
Pubchem Sid Urlhttps://pubchem.ncbi.nlm.nih.gov/substance/504756014
Sonrisas canónicasCCC[O-].CCC[O-].CCC[O-].CCC[O-].[Zr+4]
IUPAC Namepropan-1-olate;zirconium(4+)
InChIKeyXPGAWFIWCWKDDL-UHFFFAOYSA-N
INCHI1S/4C3H7O.Zr/c4*1-2-3-4;/h4*2-3H2,1H3;/q4*-1;+4
Isómeros SMILES CCC[O-].CCC[O-].CCC[O-].CCC[O-].[Zr+4]
WGK Alemania 3
PubChem CID 90139
Número ONU 1993
Grupo de embalaje I
Peso molecular 327.57
Beilstein 3679533
Reaxy-Rn 3935210

Documentation

📋 Safety Data Sheet (SDS)

Comprehensive hazard, handling, storage, and regulatory compliance document.

Download SDS →

✅ Certificate of Analysis (COA)

Lot-specific quality data. Enter your lot number to retrieve the exact COA.

Look up COA →

📊 Datasheet

Quick-reference summary of product specifications and applications.

View datasheet →

🔬 Specification Sheet

Full quality attributes and acceptance criteria for this grade.

View spec sheet →

Advanced Data

Taxonomic Classification

Taxonomy Tree

KingdomOrganic compounds
SuperclassOrganic salts
ClaseOrganic metal salts
SubclassOrganic transition metal salts
Intermediate Tree Nodes Not available
Direct ParentOrganic transition metal salts
Alternative Parents Organic zwitterions  Organic oxides  Hydrocarbon derivatives  Alkoxides  
Molecular FrameworkNot available
Substituents Organic transition metal salt - Organic oxygen compound - Organic oxide - Hydrocarbon derivative - Organic zwitterion - Alkoxide - Organooxygen compound - Aliphatic acyclic compound
DescripciónThis compound belongs to the class of organic compounds known as organic transition metal salts. These are organic salt compounds containing a transition metal atom in its ionic form.
External Descriptors Not available
Estructura 3D
Modelo de Estructura Química Interactiva





Certificados (CoA, COO, BSE/TSE y tabla de análisis)
C of A & Other Certificates(BSE/TSE, COO):
Analytical Chart:

Find and download the COA for your product by matching the lot number on the packaging.

75 results found

Lot NumberCertificate TypeFechaArticulo
D2615536Certificate of AnalysisMar 25, 2026 Z106340
D2615592Certificate of AnalysisMar 25, 2026 Z106340
D2615548Certificate of AnalysisMar 25, 2026 Z106340
D2615538Certificate of AnalysisMar 25, 2026 Z106340
D2615537Certificate of AnalysisMar 25, 2026 Z106340
B2628749Certificate of AnalysisFeb 09, 2026 Z106340
B2628751Certificate of AnalysisFeb 09, 2026 Z106340
B2628748Certificate of AnalysisFeb 09, 2026 Z106340
B2628750Certificate of AnalysisFeb 09, 2026 Z106340
B2628743Certificate of AnalysisFeb 09, 2026 Z106340
K2525503Certificate of AnalysisNov 19, 2025 Z106340
K2525502Certificate of AnalysisNov 19, 2025 Z106340
K2525501Certificate of AnalysisNov 19, 2025 Z106340
K2525500Certificate of AnalysisNov 19, 2025 Z106340
K2525493Certificate of AnalysisNov 19, 2025 Z106340
K2505680Certificate of AnalysisOct 27, 2025 Z106340
K2505598Certificate of AnalysisOct 27, 2025 Z106340
K2505679Certificate of AnalysisOct 27, 2025 Z106340
K2505681Certificate of AnalysisOct 27, 2025 Z106340
K2505682Certificate of AnalysisOct 27, 2025 Z106340
H2521661Certificate of AnalysisAug 14, 2025 Z106340
H2521660Certificate of AnalysisAug 14, 2025 Z106340
H2521659Certificate of AnalysisAug 14, 2025 Z106340
H2521572Certificate of AnalysisAug 14, 2025 Z106340
H2521571Certificate of AnalysisAug 14, 2025 Z106340
C2504503Certificate of AnalysisFeb 24, 2025 Z106340
C2504510Certificate of AnalysisFeb 24, 2025 Z106340
C2504511Certificate of AnalysisFeb 24, 2025 Z106340
C2504512Certificate of AnalysisFeb 24, 2025 Z106340
C2504513Certificate of AnalysisFeb 24, 2025 Z106340
L2411639Certificate of AnalysisNov 23, 2024 Z106340
L2411630Certificate of AnalysisNov 23, 2024 Z106340
L2411631Certificate of AnalysisNov 23, 2024 Z106340
L2411632Certificate of AnalysisNov 23, 2024 Z106340
L2411635Certificate of AnalysisNov 23, 2024 Z106340
J2430751Certificate of AnalysisOct 18, 2024 Z106340
J2430579Certificate of AnalysisOct 18, 2024 Z106340
J2430578Certificate of AnalysisOct 18, 2024 Z106340
J2430577Certificate of AnalysisOct 18, 2024 Z106340
J2430560Certificate of AnalysisOct 18, 2024 Z106340
H2419465Certificate of AnalysisAug 10, 2024 Z106340
H2419464Certificate of AnalysisAug 10, 2024 Z106340
F2428063Certificate of AnalysisApr 23, 2024 Z106340
E2413503Certificate of AnalysisApr 23, 2024 Z106340
E2413516Certificate of AnalysisApr 23, 2024 Z106340
E2413517Certificate of AnalysisApr 23, 2024 Z106340
E2413518Certificate of AnalysisApr 23, 2024 Z106340
G2429036Certificate of AnalysisApr 23, 2024 Z106340
G2429018Certificate of AnalysisApr 23, 2024 Z106340
B2428301Certificate of AnalysisFeb 01, 2024 Z106340
B2428302Certificate of AnalysisFeb 01, 2024 Z106340
B2428303Certificate of AnalysisFeb 01, 2024 Z106340
B2428304Certificate of AnalysisFeb 01, 2024 Z106340
A2411044Certificate of AnalysisAug 18, 2023 Z106340
H2328626Certificate of AnalysisAug 18, 2023 Z106340
H2328625Certificate of AnalysisAug 18, 2023 Z106340
H2328623Certificate of AnalysisAug 18, 2023 Z106340
C2308275Certificate of AnalysisFeb 18, 2023 Z106340
C2308277Certificate of AnalysisFeb 18, 2023 Z106340
C2308281Certificate of AnalysisFeb 18, 2023 Z106340
C2308282Certificate of AnalysisFeb 18, 2023 Z106340
H2229749Certificate of AnalysisJul 16, 2022 Z106340
A2309417Certificate of AnalysisJul 16, 2022 Z106340
H2229530Certificate of AnalysisJul 16, 2022 Z106340
H2229531Certificate of AnalysisJul 16, 2022 Z106340
H2229532Certificate of AnalysisJul 16, 2022 Z106340
H2229533Certificate of AnalysisJul 16, 2022 Z106340
E2210151Certificate of AnalysisJan 20, 2022 Z106340
E2210153Certificate of AnalysisJan 20, 2022 Z106340
E2210154Certificate of AnalysisJan 20, 2022 Z106340
E2210158Certificate of AnalysisJan 20, 2022 Z106340
C2202285Certificate of AnalysisJan 20, 2022 Z106340
C2202281Certificate of AnalysisJan 20, 2022 Z106340
C2202280Certificate of AnalysisJan 20, 2022 Z106340
C2202274Certificate of AnalysisJan 20, 2022 Z106340

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Propiedades químicas y físicas
SolubilidadSoluble in alcohol, toluene
SensibilidadMoisture sensitive.
Índice de refracción1.451
Punto de inflamación (°F)83°F
Punto de inflamación (°C)28℃
Punto de ebullición (°C)208°C
Peso molecular327.570 g/mol
XLogP3
Hydrogen Bond Donor Count0
Hydrogen Bond Acceptor Count4
Rotatable Bond Count4
Exact Mass326.103 Da
Monoisotopic Mass326.103 Da
Topological Polar Surface Area92.200 Ų
Heavy Atom Count17
Formal Charge0
Complexity7.200
Isotope Atom Count0
Defined Atom Stereocenter Count0
Undefined Atom Stereocenter Count0
Defined Bond Stereocenter Count0
Undefined Bond Stereocenter Count0
The total count of all stereochemical bonds0
Covalently-Bonded Unit Count5
Preguntas frecuentes y artículos
Citations of This Product
Referencias
1. Yuelong Fu, Zhangwei Chen, Gang Xu, Yen Wei, Changshi Lao.  (2019)  Preparation and stereolithography 3D printing of ultralight and ultrastrong ZrOC porous ceramics.  JOURNAL OF ALLOYS AND COMPOUNDS,      [PMID:] [10.1016/j.jallcom.2019.03.026]
2. Zhen Xu, Fan Wu, Kai Pan, Yalong Liao, Fei Wang, Longdi Cheng, Jianyong Yu, Yi-Tao Liu, Bin Ding.  (2023)  Ceramic aerogels constructed from dense, non-porous ceramic nanofibers with robust and elastic properties up to 1300 °C.  CERAMICS INTERNATIONAL,      [PMID:] [10.1016/j.ceramint.2023.11.373]
3. Xiaoxia Ye, Rixin Huang, Zhihong Zheng, Juan Liu, Jie Chen, Yuancai Lv.  (2023)  Anti-abrasion collagen fiber-based membrane functionalized by UiO-66-NH2 with ultra-high efficiency and stability for oil-in-water emulsions separation.  CHINESE JOURNAL OF CHEMICAL ENGINEERING,      [PMID:] [10.1016/j.cjche.2023.11.003]
4. Jing Jiang, Xueyu Yuan, Xi He, Shengjie Guan, Qian Wu, Ming Liu, Li Liu, Yudong Huang.  (2023)  Effects of cross-linking degree and steric hindrance on the thermal degradation behavior of novel hybrid zirconium-silicone resin.  POLYMER,      [PMID:] [10.1016/j.polymer.2023.126306]
5. Jian-Li Chen, Xiao-Hui Jia, Xinyue Xia, Xuan Wu, Yan-Neng Xu, Gang Yuan, Ze-Yun Gu, Kathy Qian Luo, Ming-Heng Yuan, Ruibin Jiang, Jianfang Wang, Xiao-Ming Zhu.  (2023)  Codelivery of vorinostat and chloroquine by autophagy-inhibitory hollow ZrO2 nanoshells for synergistic combination chemotherapy.  CHEMICAL ENGINEERING JOURNAL,      [PMID:] [10.1016/j.cej.2023.144740]
6. Zhuoli Xu, Fuping Li, Yan Zhang, Sixuan Zhang, Kang Zhao, Yufei Tang.  (2023)  Ultralight ZrB2/ZrC nanofiber aerogels with excellent elasticity and ultra-low thermal conductivity.  MATERIALS LETTERS,      [PMID:] [10.1016/j.matlet.2023.134393]
7. Di Zhang, Hongli Hu, Ji-an Wei, Xin Xu, Lei Chen, Xiaohui Wu, Qianqian Yu, Bo-xing Zhang, LinGe Wang.  (2023)  Zr-doped TiO2 ceramic nanofibrous membranes for enhancing photocatalytic organic pollutants degradation and antibacterial activity.  COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS,      [PMID:] [10.1016/j.colsurfa.2023.131231]
8. Jinfeng Tian, Liwei Yan, Hao Zhang, Yuan Wang, Yuanbo Cai, Yisen Huang, Zhaohui Lu, Shuang Xia, Yang Chen, Zhengguang Heng, Huawei Zou, Mei Liang.  (2023)  Enhanced flexibility and ablative performance of silicone rubber by constructing an interpenetrating zirconium-containing polysiloxane double network.  POLYMER,      [PMID:] [10.1016/j.polymer.2023.125749]
9. Bohan Wang, Wenjun Yu, Le Fu.  (2022)  Bioactive porous ZrO2-based ceramics with a hierarchical porosity for artificial bone scaffolds.  CERAMICS INTERNATIONAL,      [PMID:] [10.1016/j.ceramint.2022.12.253]
10. Le Fu, Bohan Wang, Ying Deng, Guofu Xu, Jiwu Huang, Håkan Engqvist, Wei Xia.  (2022)  Liquid-phase sintering of ZrO2-based nanocrystalline glass–ceramics achieved by multielement co-doping.  JOURNAL OF THE AMERICAN CERAMIC SOCIETY,  106  (4): (2702-2715).  [PMID:] [10.1111/jace.18945]
11. Shuai Wang, Leilei Song, Shengkai Liu, Xiaoyuan Pei, Yufen Zhao, Chunying Min, Ruiqi Shao, Tianshuai Ma, Yue Yin, Zhiwei Xu, Chunhong Wang.  (2022)  Metal-organic framework nanoparticles as a free radical scavenger improving the stability of epoxy under high dose gamma irradiation.  POLYMER DEGRADATION AND STABILITY,      [PMID:] [10.1016/j.polymdegradstab.2022.110231]
12. Rui Huang, Hongye Wang, Cheng Tao, Hua Hao, Zhonghua Yao, Hanxing Liu, Minghe Cao.  (2022)  Multivariant Me ions design of Bi(Ni0.5Zr0.5)O3 amorphous thin film with high energy storage capability.  SCRIPTA MATERIALIA,      [PMID:] [10.1016/j.scriptamat.2022.115194]
13. Wei-Lian Xie, Xiao-Min Li, Jiao-Min Lin, Long-zhang Dong, Yu Chen, Ning Li, Jing-Wen Shi, Jing-Jing Liu, Jiang Liu, Shun-Li Li, Ya-Qian Lan.  (2022)  Keeping Superprotonic Conductivity over a Wide Temperature Region via Sulfate Hopping Sites-Decorated Zirconium-Oxo Clusters.  Small,  18  (48): (2205444).  [PMID:36284496] [10.1002/smll.202205444]
14. Le Fu, Lei Li, Yongxin Cheng, Bohan Wang, Hui Wu.  (2022)  Influences of powder morphology on the densification and microstructure of a ZrO2-based nanocrystalline glass–ceramic.  JOURNAL OF THE AMERICAN CERAMIC SOCIETY,  106  (1): (722-737).  [PMID:] [10.1111/jace.18767]
15. Rui Huang, Hongye Wang, Cheng Tao, Hua Hao, Zhonghua Yao, Hanxing Liu, Minghe Cao.  (2022)  Synergistic Optimization in a 0.90BaTiO3–0.08Bi(Ni0.5Zr0.5)O3–0.02BiFeO3 Thin Film with High Breakdown Strength and Energy Density.  ACS Sustainable Chemistry & Engineering,      [PMID:] [10.1021/acssuschemeng.2c03764]
16. Le Fu, Bohan Wang, Wei Xia.  (2022)  New insights into the formation mechanism of zircon in a ZrO2–SiO2 nanocrystalline glass-ceramic: A TEM study.  CERAMICS INTERNATIONAL,      [PMID:] [10.1016/j.ceramint.2022.06.021]
17. Jing Jiang, Xueyu Yuan, Kangle Xue, Ming Liu, Yudong Huang, Li Liu.  (2022)  Novel hybrid zirconium-silicone resin as high-temperature adhesive and an insight into the thermal resistance mechanism.  CHEMICAL ENGINEERING JOURNAL,      [PMID:] [10.1016/j.cej.2022.137350]
18. Hu Hongli, Xu Xin, Wang Yingying, Zhang Bo-xing.  (2022)  Fabricating porous monolithic ceramic materials via phase separations in solutions of poly(Vinyl alcohol) and sol nanoparticles.  JOURNAL OF SOL-GEL SCIENCE AND TECHNOLOGY,  103  (2): (584-594).  [PMID:] [10.1007/s10971-022-05845-6]
19. Bohan Wang, Guofu Xu, Jiwu Huang, Håkan Engqvist, Wei Xia, Le Fu.  (2021)  Effects of dopants with various valences on densification behavior and phase composition of a ZrO2–SiO2 nanocrystalline glass-ceramic.  CERAMICS INTERNATIONAL,      [PMID:] [10.1016/j.ceramint.2021.12.147]
20. Le Fu, Fuqing Jiang, Bo Li, Yongxin Cheng, Guofu Xu, Jiwu Huang, Håkan Engqvist, Wei Xia.  (2021)  Doping of tantalum, niobium, and hafnium in a translucent ZrO2-SiO2 nanocrystalline glass-ceramic.  JOURNAL OF THE EUROPEAN CERAMIC SOCIETY,      [PMID:] [10.1016/j.jeurceramsoc.2021.12.019]
21. Xiaomin Huang, Qinghao Qin, Xueqing Wang, Huijing Xiang, Jinlong Zheng, Yin Lu, Chaojie Lv, Kaili Wu, Lixia Yan, Ning Wang, Cao Xia, Zhong Lin Wang.  (2021)  Piezoelectric Nanogenerator for Highly Sensitive and Synchronous Multi-Stimuli Sensing.  ACS Nano,      [PMID:34797042] [10.1021/acsnano.1c07236]
22. Xueli Luo, Gengli Huang, Xiaokai Chen, Jie Guo, Weixia Yang, Wenzhi Tang, Tianli Yue, Zhonghong Li.  (2021)  Ingenious ambient temperature fabrication zirconium-metal organic framework laden polysaccharide aerogel as an efficient glyphosate scavenger.  Journal of Environmental Chemical Engineering,      [PMID:] [10.1016/j.jece.2021.106808]
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24. Rui Huang, Hongye Wang, Cheng Tao, Minghe Cao, Hua Hao, Zhonghua Yao, Hanxing Liu.  (2021)  Synergistic Function via Amorphous and Nanoscale Polarization Heterogeneous Regions in (1−x)BaTiO3-xBi(Ni0.5Zr0.5)O3 Thin Film with Ultrahigh Energy Storage Capability and Stability.  Small Methods,  (11): (2100787).  [PMID:34927961] [10.1002/smtd.202100787]
25. Lei Liu, Yizhe Li, Rui Qiao, Yijing Xing, Haibin Li.  (2021)  Reinforced Composite Membranes Based on Expanded Polytetrafluoroethylene Skeletons Modified by a Surface Sol–Gel Process for Fuel Cell Applications.  ENERGY & FUELS,      [PMID:] [10.1021/acs.energyfuels.1c01205]
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39. Wang Yunjie, Yuan Hong, Zhang Zhi, Ke Yihu.  (2019)  Preparation, characterization, and application of ordered mesoporous S2O82−/ZrO2–SiO2 with high specific surface area.  JOURNAL OF POROUS MATERIALS,  27  (2): (429-440).  [PMID:] [10.1007/s10934-019-00822-x]
40. Yongfeng Zhou, Pei Liang, De Zhang, Lisha Tang, Qianmin Dong, Shangzhong Jin, Dejiang Ni, Zhi Yu, Jiaming Ye.  (2019)  A facile seed growth method to prepare stable Ag@ZrO2 core-shell SERS substrate with high stability in extreme environments.  SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY,      [PMID:31767414] [10.1016/j.saa.2019.117676]
41. Xuemu Li, Jianxin Deng, Yang Lu, Liangliang Zhang, Jie Sun, Fengfang Wu.  (2019)  Tribological behavior of ZrO2/WS2 coating surfaces with biomimetic shark-skin structure.  CERAMICS INTERNATIONAL,      [PMID:] [10.1016/j.ceramint.2019.07.177]
42. Chen Jingwen, Hou Chujun, Zhang Yakang, Xu Song, Yao Chao, Zhou Man, Li Zhongyu.  (2019)  Biomass-derived porous ZrTiO4 nanotubes with controlled wall-thickness for enhanced photocatalytic activity.  CELLULOSE,  26  (10): (6035-6047).  [PMID:] [10.1007/s10570-019-02521-x]
43. Danjie Li, Lingmei Liu, Lijing Zhang, Shengyang Tao, Guangtao Li, Yongxian Yu, Xin Liu.  (2019)  Self-Assembly of Nanoparticles in a Modular Fashion to Prepare Multifunctional Catalysts for Cascade Reactions: From Simplicity to Complexity.  ACS Omega,      [PMID:31459416] [10.1021/acsomega.8b03098]
44. Fuping Li, Zhuoli Xu, Kang Zhao, Yufei Tang.  (2018)  ZrB2-ZrC composite nanofibers fabricated by electrospinning and carbothermal reduction: Processing, phase evolution and tensile property.  JOURNAL OF ALLOYS AND COMPOUNDS,      [PMID:] [10.1016/j.jallcom.2018.08.304]
45. Yumeng Zhou, Wentong Song, Lijing Zhang, Shengyang Tao.  (2018)  Preparation of hollow magnetic porous zirconia fibers as effective catalyst carriers for Fenton reaction.  Journal of Materials Chemistry A,  (26): (12298-12307).  [PMID:] [10.1039/C8TA01286E]
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