Cas no 64109-12-2 (palladium(ii) oxide hydrate)
palladium(ii) oxide hydrate Chemical and Physical Properties
Names and Identifiers
-
- palladium(ii) oxide hydrate
- Palladous oxide
- Palladium(II) oxide monohydrate
- Palladium oxide hydrate
- PALLADIUM(II) OXIDE
- PALLADIUM (II) OXIDE (METALS BASIS),PD MIN
- PALLADIUM OXIDE
- PALLADIUM OXIDE pure
- PALLADIUM(+2)OXIDE
- Palladium(II) oxide monohydrate (metals basis),Pd min
- palladium (ii) oxide hydrate
- DTXSID80583442
- OXOPALLADIUM HYDRATE
- oxopalladium;hydrate
- Palladium(II) oxide monohydrate, 99.9% (metals basis), Pd 73%
- Palladium(II) oxide hydrate, Pd content ~97 %
- 64109-12-2
- Oxopalladium--water (1/1)
- 58516-59-9
- AKOS015855140
- Palladium(II) oxide hydrate, 70-80% Pd basis
- Palladium(II) oxide hydrate, >=99.9% trace metals basis
- MFCD00149821
-
- MDL: MFCD00149821
- Inchi: 1S/H2O.O.Pd/h1H2;;
- InChI Key: CJCUJYURPLYQOL-UHFFFAOYSA-N
- SMILES: [Pd]=O.O
Computed Properties
- Exact Mass: 139.90900
- Monoisotopic Mass: 139.90896g/mol
- Isotope Atom Count: 0
- Hydrogen Bond Donor Count: 0
- Hydrogen Bond Acceptor Count: 1
- Heavy Atom Count: 2
- Rotatable Bond Count: 0
- Complexity: 2
- Covalently-Bonded Unit Count: 1
- 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: nothing
- XLogP3: nothing
- Topological Polar Surface Area: 18.1?2
Experimental Properties
- Color/Form: Black brown powder.
- Density: 8.7?g/mL?at 25?°C(lit.)
- Melting Point: 870?°C(lit.)
- Boiling Point: No data available
- Flash Point: No data available
- Water Partition Coefficient: Insoluble in water.
- PSA: 26.30000
- LogP: -0.18310
- Solubility: Insoluble in water
- Merck: 14,6993
- Vapor Pressure: No data available
palladium(ii) oxide hydrate Security Information
- Signal Word:warning
- Hazard Statement: H303May be harmful if swallowed+H313Skin contact may be harmful+H333Inhalation may be harmful to the body
-
Warning Statement:
P264Thoroughly clean after treatment
P280Wear protective gloves/Wear protective clothing/Wear protective goggles/Wear a protective mask
P305If it enters the eyes
P351Rinse carefully with water for a few minutes
P338Remove the contact lens(If any)And easy to operate,Continue flushing
P337If eye irritation persists
P313Obtain medical advice/care - Hazardous Material transportation number:NONH for all modes of transport
- WGK Germany:3
- Hazard Category Code: 36/37/38
- Safety Instruction: S26-S36
-
Hazardous Material Identification:
- Risk Phrases:R36/37/38
- TSCA:Yes
- Storage Condition:Store at 4°C,-4At ℃Store…Better
palladium(ii) oxide hydrate Pricemore >>
| Related Categories | No. | Product Name | Cas No. | Purity | Specification | Price | update time | Inquiry |
|---|---|---|---|---|---|---|---|---|
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | L-LQ596-250mg |
palladium(ii) oxide hydrate |
64109-12-2 | Pd ≥75% | 250mg |
¥243.0 | 2022-02-28 | |
| SHANG HAI A LA DING SHENG HUA KE JI GU FEN Co., Ltd. | P112767-1g |
palladium(ii) oxide hydrate |
64109-12-2 | Pd ≥75% | 1g |
¥1647.90 | 2023-09-01 | |
| SHANG HAI A LA DING SHENG HUA KE JI GU FEN Co., Ltd. | P112767-5g |
palladium(ii) oxide hydrate |
64109-12-2 | Pd ≥75% | 5g |
¥7415.90 | 2023-09-01 | |
| XI GE MA AO DE LI QI ( SHANG HAI ) MAO YI Co., Ltd. | 205842-2G |
palladium(ii) oxide hydrate |
64109-12-2 | 2g |
¥2294.91 | 2023-12-09 | ||
| A FA AI SHA , SAI MO FEI SHI ER KE JI QI XIA GONG SI | 11041-2g |
Palladium(II) oxide monohydrate, 99.9% (metals basis), Pd 73% min |
64109-12-2 | Pd 73% | 2g |
¥999999.00 | 2023-05-15 | |
| A FA AI SHA , SAI MO FEI SHI ER KE JI QI XIA GONG SI | 11041-10g |
Palladium(II) oxide monohydrate, 99.9% (metals basis), Pd 73% min |
64109-12-2 | Pd 73% | 10g |
¥999999.00 | 2023-05-15 | |
| SHANG HAI JI ZHI SHENG HUA Technology Co., Ltd. | P24760-5g |
PALLADIUM(II) OXIDE |
64109-12-2 | 5g |
¥1338.0 | 2021-09-08 | ||
| SHANG HAI JI ZHI SHENG HUA Technology Co., Ltd. | P24760-1g |
PALLADIUM(II) OXIDE |
64109-12-2 | 1g |
¥338.0 | 2021-09-08 | ||
| abcr | AB202277-2 g |
Palladium(II) oxide monohydrate, 99.9% (metals basis), Pd 73%; . |
64109-12-2 | 99.9% | 2 g |
€527.00 | 2023-07-20 | |
| abcr | AB202277-10 g |
Palladium(II) oxide monohydrate, 99.9% (metals basis), Pd 73%; . |
64109-12-2 | 99.9% | 10g |
€1,781.00 | 2022-12-28 |
palladium(ii) oxide hydrate Suppliers
palladium(ii) oxide hydrate Related Literature
-
Yang Xu,Min Wang,Donghui Wei,Rongqiang Tian,Zheng Duan,Fran?ois Mathey Dalton Trans., 2019,48, 5523-5526
-
Muniyandi Sankaralingam,So Hyun Jeon,Yong-Min Lee,Mi Sook Seo,Wonwoo Nam Dalton Trans., 2016,45, 376-383
-
Suji Lee,Min Su Han Chem. Commun., 2021,57, 9450-9453
-
Ravi Kumar Yadav,R. Govindaraj Phys. Chem. Chem. Phys., 2020,22, 26876-26886
Related Categories
- Catalysts and Inorganic Chemicals Inorganic Compounds Mixed metal/non-metal compounds Transition metal organides Transition metal oxides
- Catalysts and Inorganic Chemicals Inorganic Compounds Oxides
- Catalysts and Inorganic Chemicals Inorganic Compounds Salt
- Catalysts and Inorganic Chemicals Inorganic Compounds
Additional information on palladium(ii) oxide hydrate
Palladium(II) Oxide Hydrate: A Comprehensive Overview
Palladium(II) oxide hydrate, also known as PdO·H?O and identified by the CAS number 64109-12-2, is a unique compound with significant applications in various scientific and industrial fields. This compound is a hydrated form of palladium(II) oxide, which has been extensively studied for its catalytic properties, electronic characteristics, and potential uses in energy storage and conversion systems.
The synthesis of palladium(II) oxide hydrate involves several methods, including hydrothermal synthesis, sol-gel techniques, and precipitation reactions. Recent advancements in these synthesis methods have led to the production of highly pure and well-defined nanoparticles of PdO·H?O, which exhibit enhanced catalytic activity compared to their bulk counterparts. Researchers have focused on optimizing these processes to achieve better control over the size, shape, and surface properties of the nanoparticles, which are critical for their performance in catalytic applications.
One of the most promising applications of palladium(II) oxide hydrate is in catalysis. It has been widely used as a catalyst in various chemical reactions, including hydrogenation, dehydrogenation, and oxidation reactions. The high surface area and unique electronic structure of PdO·H?O make it an excellent candidate for these applications. Recent studies have demonstrated that the catalytic performance of PdO·H?O can be further enhanced by doping it with other transition metals or by creating bimetallic nanoparticles.
In addition to its catalytic applications, palladium(II) oxide hydrate has also shown potential in energy storage systems. It has been explored as a cathode material in solid oxide fuel cells (SOFCs) due to its excellent oxygen reduction activity and stability at high temperatures. Recent research has focused on improving the electrochemical properties of PdO·H?O by modifying its microstructure or incorporating it into composite materials with other oxides.
The physical and chemical properties of palladium(II) oxide hydrate make it suitable for various other applications as well. For instance, it has been used as a sensing material in gas sensors due to its high sensitivity to oxygen and other gases. The ability to detect minute changes in gas concentrations makes it a valuable component in environmental monitoring systems.
Recent studies have also explored the use of palladium(II) oxide hydrate in biomedical applications. Its biocompatibility and ability to interact with biological molecules have made it a potential candidate for drug delivery systems and biosensors. Researchers are investigating ways to functionalize PdO·H?O nanoparticles with biomolecules or polymers to enhance their targeting capabilities and reduce toxicity.
In conclusion, palladium(II) oxide hydrate (PdO·H?O, CAS No.: 64109-12-2) is a versatile compound with a wide range of applications across different fields. Its unique properties, combined with recent advancements in synthesis techniques and functionalization methods, continue to expand its potential uses in catalysis, energy storage, sensing, and biomedical technologies.
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