Cas no 14284-93-6 (Tris(acetylacetonato)ruthenium(III))
Tris(acetylacetonato)ruthenium(III) Chemical and Physical Properties
Names and Identifiers
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- Ruthenium(III)-2,4-pentanedionate
- Ruthenium(III) acetylacetonate
- Ruthenium(III)2,4-pentanedionate
- Ruthenium(III) 2,4-pentanedionate~Tris(acetylacetonato)ruthenium(III)~Tris(2,4-pentanedionato)ruthenium(III)
- Rutheniumpentanedionate
- Rutheniumacetylacetonateredbrownxtl
- Tris(acetylacetonato)ruthenium (III)
- Tris-(2,4-pentanedionato)-ruthenium
- 2,4-Pentanedione
- Ruthenium acetylacetonate
- Tris(2,4-pentanedionato)ruthenium(III)
- Acetylacetone Ruthenium(III) Salt
- Ruthenium(Ⅲ)2,4-pentanedionate
- Tris-acetylacetone-ruthenium (III)
- Ru(acac)3
- Tris(pentane-2,4-dionato-O,O')ruthenium
- Tris(2,4-pentanedionato)
- Ruthenium(Ⅲ) acetylacetonate
- TrisacetylacetonateRutheniuM
- Acetylacetone Ruthenium Salt
- Ruthenium 2,4-pentanedionate
- Tris(acetylacetonato) ruthenium
- RUTHENIUM(III) 2,4-PENTANEDIONATE
- TRIS(ACETYLACETONATO)RUTHENIUM(III)
- TRIS(PENTANE-2,4-DIONATO)RUTHENIUM(III)
- 2,4-PENTANEDIONE, RUTHENIUM(III) DERIVATIVE
- 4-pentanedionato-o,o’)-tris((oc-6-11)-rutheniu
- AC-24217
- 14284-93-6
- NSC 139624
- AKOS025401666
- 2,4-Pentanedione ruthenium(III) derivative
- Ruthenium, tris(2,4-pentanedionato-kappaO,kappaO')-, (OC-6-11)-
- Ruthenium, tris(2,4-pentanedionato-.kappa.O,.kappa.O')-, (OC-6-11)-
- T2183
- (Z)-4-oxopent-2-en-2-olate;ruthenium(3+)
- EINECS 238-193-0
- Ruthenium, tris(2,4-pentanedionato-kappaO2,kappaO4)-, (OC-6-11)-
- Ruthenium, tris(2,4-pentanedionato)-
- Ruthenium, tris(2,4-pentanedionato-O,O')-, (OC-6-11)-
- Tris(acetylacetonato)ruthenium(III)
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- MDL: MFCD00000030
- Inchi: 1S/3C5H8O2.Ru/c3*1-4(6)3-5(2)7;/h3*3,6H,1-2H3;/q;;;+6/p-3/b3*4-3-;
- InChI Key: KOUWOMVYGIBRCR-LNTINUHCSA-K
- SMILES: C1C(C)=[O+][Ru]23(OC(=CC(C)=[O+]2)C)(OC(C)=CC(C)=[O+]3)OC=1C
Computed Properties
- Exact Mass: 402.06200
- Monoisotopic Mass: 399.038
- Isotope Atom Count: 0
- Hydrogen Bond Donor Count: 0
- Hydrogen Bond Acceptor Count: 6
- Heavy Atom Count: 22
- Rotatable Bond Count: 6
- Complexity: 82.3
- Covalently-Bonded Unit Count: 4
- Defined Atom Stereocenter Count: 0
- Undefined Atom Stereocenter Count : 0
- Defined Bond Stereocenter Count: 0
- Undefined Bond Stereocenter Count: 0
- Surface Charge: 0
- Tautomer Count: 35
- Topological Polar Surface Area: 102
Experimental Properties
- Color/Form: Red crystals
- Melting Point: 260?°C (dec.) (lit.)
- Boiling Point: No data available
- Flash Point: No data available
- Water Partition Coefficient: Soluble in most organic solvents such as acetone, chlorinated hydrocarbons, alcohols, cyclohexane and benzene. Insoluble in water.
- PSA: 102.42000
- LogP: 1.66350
- Solubility: Insoluble
- Vapor Pressure: No data available
Tris(acetylacetonato)ruthenium(III) Security Information
-
Symbol:
- Prompt:warning
- Signal Word:Warning
- Hazard Statement: H315,H319,H335
- Warning Statement: P261,P305+P351+P338
- Hazardous Material transportation number:NONH for all modes of transport
- WGK Germany:3
- Hazard Category Code: 36/37/38
- Safety Instruction: S26-S36
- FLUKA BRAND F CODES:10
-
Hazardous Material Identification:
- Safety Term:S26;S36
- Risk Phrases:R36/37/38
- TSCA:Yes
- Storage Condition:Store at 4°C,-4At ℃Store…Better
Tris(acetylacetonato)ruthenium(III) Customs Data
- HS CODE:2914509090
- Customs Data:
China Customs Code:
2914509090Overview:
2914509090 Ketones containing other oxygen-containing groups. VAT:17.0% Tax refund rate:9.0% Regulatory conditions:nothing MFN tariff:5.5% general tariff:30.0%
Declaration elements:
Product Name, component content, use to, Acetone declared packaging
Summary:
HS:2914509090 other ketones with other oxygen function VAT:17.0% Tax rebate rate:9.0% Supervision conditions:none MFN tariff:5.5% General tariff:30.0%
Tris(acetylacetonato)ruthenium(III) Pricemore >>
| Related Categories | No. | Product Name | Cas No. | Purity | Specification | Price | update time | Inquiry |
|---|---|---|---|---|---|---|---|---|
| XI GE MA AO DE LI QI ( SHANG HAI ) MAO YI Co., Ltd. | 282766-1G |
Tris(acetylacetonato)ruthenium(III) |
14284-93-6 | 1g |
¥1848.13 | 2023-12-09 | ||
| XI GE MA AO DE LI QI ( SHANG HAI ) MAO YI Co., Ltd. | 282766-5G |
Tris(acetylacetonato)ruthenium(III) |
14284-93-6 | 5g |
¥7445.86 | 2023-12-09 | ||
| SHANG HAI MAI KE LIN SHENG HUA Technology Co., Ltd. | R817342-25g |
Ruthenium(III) acetylacetonate |
14284-93-6 | 97% | 25g |
¥4,698.00 | 2022-08-31 | |
| TI XI AI ( SHANG HAI ) HUA CHENG GONG YE FA ZHAN Co., Ltd. | T2183-5G |
Tris(2,4-pentanedionato)ruthenium(III) |
14284-93-6 | 5g |
¥2115.00 | 2024-04-17 | ||
| SHANG HAI SHAO YUAN SHI JI Co., Ltd. | SY061085-5g |
Ruthenium(III) Acetylacetonate |
14284-93-6 | ≥97% | 5g |
¥388.0 | 2023-09-15 | |
| ChemScence | CS-0035190-5g |
Ru(acac)3 |
14284-93-6 | ≥98.0% | 5g |
$91.0 | 2022-04-27 | |
| ChemScence | CS-0035190-10g |
Ru(acac)3 |
14284-93-6 | ≥98.0% | 10g |
$182.0 | 2022-04-27 | |
| ChemScence | CS-0035190-25g |
Ru(acac)3 |
14284-93-6 | ≥98.0% | 25g |
$430.0 | 2022-04-27 | |
| SHANG HAI JI ZHI SHENG HUA Technology Co., Ltd. | R43270-1g |
Tris(2,4-pentanedionato)ruthenium(III) |
14284-93-6 | 1g |
¥146.0 | 2021-09-08 | ||
| SHANG HAI JI ZHI SHENG HUA Technology Co., Ltd. | R43270-25g |
Tris(2,4-pentanedionato)ruthenium(III) |
14284-93-6 | 25g |
¥3316.0 | 2021-09-08 |
Tris(acetylacetonato)ruthenium(III) Suppliers
Tris(acetylacetonato)ruthenium(III) Related Literature
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Joseph W. Bennett,Diamond T. Jones,Blake G. Hudson,Joshua Melendez-Rivera,Robert J. Hamers,Sara E. Mason Environ. Sci.: Nano, 2020,7, 1642-1651
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J. Xu,T. J. Carrocci,A. A. Hoskins Chem. Commun., 2016,52, 549-552
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Qiaoe Wang,Meiling Lian,Xiaowen Zhu,Xu Chen RSC Adv., 2021,11, 192-197
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Gaurav J. Shah,Eric P.-Y. Chiou,Ming C. Wu,Chang-Jin “CJ” Kim Lab Chip, 2009,9, 1732-1739
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5. Fe3O4/Au/Fe3O4 nanoflowers exhibiting tunable saturation magnetization and enhanced bioconjugationFeng Shi,Kunping Yan,Mingli Peng,Xiao Cheng,Yanling Luo,Xuemei Chen,V. A. L. Roy,Zuankai Wang Nanoscale, 2012,4, 747-751
Additional information on Tris(acetylacetonato)ruthenium(III)
Tris(acetylacetonato)ruthenium(III): A Comprehensive Overview
Tris(acetylacetonato)ruthenium(III), also known as ruthenium tris(acetylacetonate) and designated by the CAS No. 14284-93-6, is a coordination compound with significant applications in various scientific and industrial fields. This compound is widely recognized for its unique chemical properties, which make it a valuable tool in catalysis, materials science, and even biological studies. The ruthenium at the core of this compound plays a pivotal role in its functionality, as it contributes to the compound's electronic structure and reactivity.
The structure of Tris(acetylacetonato)ruthenium(III) consists of a ruthenium ion coordinated by three acetylacetonate ligands. The acetylacetonate ligand, also known as ethylenediamine tetraacetate (EDTA), is a bidentate ligand that provides strong coordination to the metal center. This arrangement results in a stable octahedral geometry around the ruthenium ion, which is crucial for its catalytic activity. Recent studies have highlighted the importance of this geometry in determining the compound's ability to facilitate various chemical transformations.
One of the most notable applications of Tris(acetylacetonato)ruthenium(III) is in the field of catalysis. This compound has been extensively used as a catalyst in organic synthesis, particularly in reactions involving olefin metathesis and hydrogenation. Its ability to activate hydrogen molecules has made it a valuable component in hydrogenation processes, where it facilitates the addition of hydrogen to unsaturated compounds. Recent advancements in catalytic systems have further enhanced its efficiency, making it a preferred choice for industrial applications.
In addition to its catalytic roles, Tris(acetylacetonato)ruthenium(III) has found significant use in materials science. It serves as a precursor for the synthesis of various ruthenium-based materials, including nanoparticles and thin films. These materials have potential applications in electronics, energy storage devices, and sensors. For instance, ruthenium nanoparticles derived from this compound have shown promising results in enhancing the performance of fuel cells and batteries.
The biological applications of Tris(acetylacetonato)ruthenium(III) are another area of active research. Studies have explored its potential as an anticancer agent due to its ability to selectively target cancer cells while minimizing damage to healthy tissues. The compound's interaction with DNA has been a focal point of these investigations, with recent findings suggesting that it may induce DNA damage through oxidative mechanisms. These insights open up new possibilities for its use in chemotherapy and other therapeutic interventions.
From an environmental perspective, Tris(acetylacetonato)ruthenium(III) has been studied for its role in pollution control and remediation. Its ability to catalyze the degradation of organic pollutants under visible light has made it a candidate for photocatalytic applications. Recent research has focused on enhancing its photocatalytic activity by modifying its structure or combining it with other materials, such as graphene or metal oxides.
In terms of synthesis, Tris(acetylacetonato)ruthenium(III) can be prepared through various methods, including solvothermal synthesis and co-precipitation techniques. The choice of synthesis method depends on the desired properties of the final product, such as particle size and surface area. Recent advancements in green chemistry have also led to the development of more sustainable synthesis routes for this compound.
The versatility of Tris(acetylacetonato)ruthenium(III) is further highlighted by its use in fundamental research into metal-ligand interactions and coordination chemistry. Its well-defined structure and reactivity make it an ideal model system for studying various chemical phenomena, such as electron transfer processes and ligand substitution dynamics.
In conclusion, Tris(acetylacetonato)ruthenium(III) (CAS No. 14284-93-6) is a multifunctional compound with applications spanning catalysis, materials science, biology, and environmental chemistry. Its unique properties and versatility continue to drive innovative research across diverse scientific disciplines.
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