Cas no 13760-80-0 (Ytterbium Fluoride)
Ytterbium Fluoride Chemical and Physical Properties
Names and Identifiers
-
- ytterbium trifluoride
- Ytterbium(III) fluoride
- Ytterbium fluoride
- ytterbium(3+),trifluoride
- ytterbiumfluoride(ybf3)
- Ytterbium fluoride dihydrate
- R (REO)
- ytterbiumfluoride
- YTTERBIUM FLUORIDE, 99.9%
- Ytterbium(Iii)Fluoride,99.9%
- Ytterbium(III) fluoride, 99.90%
- Ytterbium(III) fluoride ,99.99%
- YtterbiuM(III) fluoride, 99.9% 10GR
- ytterbium(3+) trifluoride
- Ytterbium(III); fluoride
- ytterbium(3+) ion trifluoride
- fluoride, fluoride, Yb, fluoride
- SBB097523
- LS60260
- SY011812
- A807283
- YTTERBIUM(III) FLUORIDE, ANHYDROUS, POWD ER, 99.99%
- YTTERBIUM(III) FLUORIDE ANHYDROUS &
- Ytterbium Fluoride
-
- MDL: MFCD00049615
- Inchi: 1S/3FH.Yb/h3*1H;/q;;;+3/p-3
- InChI Key: XASAPYQVQBKMIN-UHFFFAOYSA-K
- SMILES: [Yb](F)(F)F
Computed Properties
- Exact Mass: 230.93400
- Monoisotopic Mass: 230.934
- Isotope Atom Count: 0
- Hydrogen Bond Donor Count: 0
- Hydrogen Bond Acceptor Count: 3
- Heavy Atom Count: 4
- Rotatable Bond Count: 0
- Complexity: 0
- 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: nothing
- XLogP3: nothing
- Topological Polar Surface Area: 0
Experimental Properties
- Color/Form: Colorless hexagonal or orthorhombic crystals.
- Density: ~8.20?g/mL?at 25?°C(lit.)
- Melting Point: 1207 oC
- Boiling Point: 2200℃
- Flash Point: °C
- Refractive Index: 1.54
- Solubility: Insoluble in water
- Water Partition Coefficient: Soluble moderately in strong mineral acids. Insoluble in water.
- Stability/Shelf Life: hygroscopic
- PSA: 0.00000
- LogP: -8.98800
- Sensitiveness: Hygroscopic
- Solubility: Insoluble
Ytterbium Fluoride Security Information
-
Symbol:
- Signal Word:Danger
- Hazard Statement: H301,H311,H331
- Warning Statement: P261,P280,P301+P310,P311
- Hazardous Material transportation number:UN 3288 6
- WGK Germany:3
- Hazard Category Code: 23/24/25-32
- Safety Instruction: S26; S36/37/39; S45
- RTECS:ZG2487500
-
Hazardous Material Identification:
- Risk Phrases:R23/24/25
- Packing Group:III
- Safety Term:6.1
- HazardClass:6.1
- PackingGroup:III
- TSCA:Yes
Ytterbium Fluoride 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. | 432121-10G |
Ytterbium Fluoride |
13760-80-0 | 99.98% | 10g |
¥1447.3 | 2023-12-06 | |
| SHANG HAI MAI KE LIN SHENG HUA Technology Co., Ltd. | Y913614-25g |
Ytterbium fluoride |
13760-80-0 | ,99.999% | 25g |
1,233.00 | 2021-05-17 | |
| NAN JING HUA XUE SHI JI GU FEN Co., Ltd. | C1540569143- 25g |
Ytterbium Fluoride |
13760-80-0 | 99.9% | 25g |
¥ 352.9 | 2021-05-18 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | 93-7004-5g |
Ytterbium Fluoride |
13760-80-0 | (99.9%-Yb)(REO) | 5g |
783CNY | 2021-05-10 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | 93-7004-25g |
Ytterbium Fluoride |
13760-80-0 | (99.9%-Yb)(REO) | 25g |
2964CNY | 2021-05-10 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | 70-7004-25g |
Ytterbium Fluoride |
13760-80-0 | (99.99%-Yb)(REO)PURATREM | 25g |
4132CNY | 2021-05-10 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | 70-7004-5g |
Ytterbium Fluoride |
13760-80-0 | (99.99%-Yb)(REO)PURATREM | 5g |
1211CNY | 2021-05-10 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | 001026-5g |
Ytterbium Fluoride |
13760-80-0 | 99+% | 5g |
372CNY | 2021-05-10 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | 001026-25g |
Ytterbium Fluoride |
13760-80-0 | 99+% | 25g |
1283CNY | 2021-05-10 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | CW885-50g |
Ytterbium(III)fluoride |
13760-80-0 | 99.99% metals basis | 50g |
¥1190.0 | 2022-07-28 |
Ytterbium Fluoride Suppliers
Ytterbium Fluoride Related Literature
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Alvin Tanudjaja,Shinsuke Inagi,Fusao Kitamura,Toshikazu Takata,Ikuyoshi Tomita Dalton Trans., 2021,50, 3037-3043
-
Govind Reddy Mol. Syst. Des. Eng., 2021,6, 779-789
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Haitao Li,Yu Pan,Zhizhi Wang,Shan Chen,Ruixin Guo,Jianqiu Chen RSC Adv., 2015,5, 100775-100782
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Mark D. Allendorf,Alauddin Ahmed,Tom Autrey,Jeffrey Camp,Eun Seon Cho,Maciej Haranczyk,Abhi Karkamkar,Di-Jia Liu,Katie R. Meihaus,Iffat H. Nayyar,Roman Nazarov,Donald J. Siegel,Vitalie Stavila,Jeffrey J. Urban,Srimukh Prasad Veccham,Brandon C. Wood Energy Environ. Sci., 2018,11, 2784-2812
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Jialiang Yuan,Ran Dong,Yuan Li,Yang Liu,Zhuo Zheng,Yuxia Liu,Yan Sun,Benhe Zhong,Zhenguo Wu,Xiaodong Guo Chem. Commun., 2021,57, 13004-13007
Additional information on Ytterbium Fluoride
Comprehensive Guide to Ytterbium Fluoride (CAS No. 13760-80-0): Properties, Applications, and Market Insights
Ytterbium Fluoride (chemical formula: YbF3, CAS No. 13760-80-0) is a rare earth compound with significant importance in advanced technological applications. As a member of the lanthanide series, ytterbium(III) fluoride exhibits unique optical and electronic properties, making it indispensable in industries ranging from telecommunications to renewable energy. This article delves into the chemical characteristics, synthesis methods, and cutting-edge uses of this remarkable material, while also exploring its growing role in quantum computing and next-generation optical coatings.
The crystalline structure of Ytterbium Fluoride belongs to the orthorhombic system, with a density of approximately 8.2 g/cm3 and a melting point near 1,150°C. Its exceptional infrared transparency and low phonon energy have positioned it as a critical component in fiber optic amplifiers, particularly for telecommunication wavelength bands. Recent advancements in nanomaterial synthesis have enabled the production of ultra-pure YbF3 nanoparticles, opening new possibilities in bioimaging contrast agents and radiation detection technologies.
In the field of optical coatings, ytterbium fluoride thin films demonstrate superior performance compared to conventional materials. Their high laser damage threshold and excellent UV to mid-IR transmission make them ideal for space telescope mirrors and high-power laser systems. Researchers are particularly excited about its potential in quantum memory devices, where YbF3-doped crystals show promise for storing quantum information at room temperature—a breakthrough that could accelerate quantum internet development.
The global market for Ytterbium Fluoride is experiencing steady growth, driven by increasing demand from the 5G infrastructure sector and green energy technologies. Manufacturers are focusing on developing sustainable production methods for rare earth fluorides, addressing concerns about supply chain security and environmental impact. Current price trends indicate a 12-15% annual increase for high-purity YbF3 powder (99.99%), reflecting its strategic importance in advanced manufacturing.
Recent studies highlight innovative applications of Ytterbium Fluoride in solid-state batteries and nuclear reactor monitoring systems. Its exceptional neutron absorption properties make it valuable for radiation shielding materials, while its electrochemical stability shows promise for next-generation electrolytes. The compound's compatibility with additive manufacturing techniques has further expanded its utility in custom optical components and microelectronic devices.
Quality control standards for YbF3 production have become increasingly stringent, with ISO 9001-certified suppliers implementing advanced spectroscopic analysis and particle size distribution monitoring. The industry is moving toward closed-loop recycling of rare earth materials, with several pilot projects demonstrating successful recovery of ytterbium from end-of-life products. These developments align with global initiatives for circular economy practices in critical materials management.
For researchers working with Ytterbium Fluoride, proper handling requires attention to its hygroscopic nature and potential for thermal decomposition at extreme temperatures. Storage recommendations include argon-filled containers for ultra-high purity grades and desiccated environments for standard material. Emerging safety protocols emphasize engineering controls during vapor deposition processes and nanoparticle synthesis operations.
The future outlook for Ytterbium Fluoride remains exceptionally bright, with projected compound annual growth rates exceeding 8% through 2030. Key drivers include expanding applications in photonics, quantum technologies, and energy storage systems. Ongoing research into doped YbF3 nanostructures may unlock new functionalities for single-photon emitters and topological insulators, potentially revolutionizing fields from quantum cryptography to thermoelectric materials.
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