Cas no 1344-00-9 (Sodium aluminosilicate)
Sodium aluminosilicate Chemical and Physical Properties
Names and Identifiers
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- Sodium silicoaluminate
- CRYSTALLINE SODIUM POTASSIUM ALUMINOSILICATE
- HYDRANAL(R)-MOLECULAR SIEVE
- ALUMINUM SODIUM SILICATE
- ALUMINUM CALCIUM SODIUM SILICATE
- SODIUM ALUMINIUM SILICATE
- SODIUM ALUMINOSILICATE
- SODIUM ALUMINUM SILICATE
- P 820 A
- MOLECULAR SIEVE, TYPE Y, AMMONIUM ION
- MOLECULAR SIEVE, TYPE 5A, 8-12 MESH BEADS
- MOLECULAR SIEVE, TYPE 5A
- MOLECULAR SIEVE, TYPE 4A, 8-12 MESH BEADS
- MOLECULAR SIEVE UOP TYPE 3A
- MOLECULAR SIEVE, TYPE 4A, 4-8 MESH BEADS
- MOLECULAR SIEVE, TYPE 4A
- MOLECULAR SIEVE, TYPE 3A, 8-12 MESH BEADS
- MOLECULAR SIEVE, TYPE 3A, 4-8 MESH BEADS
- MOLECULAR SIEVE, TYPE 3A
- MOLECULAR SIEVE, TYPE 13X, 8-12 MESH BEADS
- MOLECULAR SIEVE, TYPE 13X
- aluminum,sodium,dioxido(oxo)silane
- MOLECULAR SIEVE
- P 820 A
- 23p
- aluminosilicic acid, sodium salt
- aluminum silicon sodium oxide
- alusil et
- amsr 3
- decalso
- decalso f
- sasil
- zeolex
- zeolex25
- zeolex35
- ZEOLITE A
- amsr3
- alusilet
- decalsof
- Molecular Sieves, Grade 513
- Molecular sieves 3A, 4 to 8 mesh
- Molecular sieves 5A, 4 to 8 mesh
- Molecular sieves 3A, 8 to 12 mesh
- Molecular sieves 5A, 8 to 12 mesh
- Molecular sieves 3A, powder <50 micron
- Sodium Aluminosilicate, Aluminum Sodium Silicate
- MOLECULARSIEVE
- sodium alumino silicate
- sodium alumino-silicate
- Molecular Sieves, Grade 514
- URGAHOPLAPQHLN-UHFFFAOYSA-N
- Aluminum,sodium,dioxido(oxo)sil
- Sodium aluminium silicate。
- Sodium aluminosilicate
-
- MDL: MFCD00131613
- Inchi: 1S/Al.Na.2O3Si/c;;2*1-4(2)3/q+3;+1;2*-2
- InChI Key: URGAHOPLAPQHLN-UHFFFAOYSA-N
- SMILES: [Si](=O)([O-])[O-].[Si](=O)([O-])[O-].[Al+3].[Na+]
Computed Properties
- Exact Mass: 201.89500
- Isotope Atom Count: 0
- Hydrogen Bond Donor Count: 0
- Hydrogen Bond Acceptor Count: 6
- Heavy Atom Count: 10
- Rotatable Bond Count: 0
- Complexity: 18.8
- 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
- Topological Polar Surface Area: 126
- Surface Charge: 0
- Tautomer Count: nothing
- XLogP3: nothing
Experimental Properties
- Color/Form: White amorphous fine powder or beads
- Density: 2.6
- Melting Point: 1000~1100oC
- Refractive Index: 1.46
- PSA: 126.38000
- LogP: -1.47440
- Solubility: Not miscible with water, ethanol and other organic solvents
Sodium aluminosilicate Security Information
- Hazardous Material transportation number:NONH for all modes of transport
- WGK Germany:nwg
- Hazard Category Code: 36/37/38
- Safety Instruction: S26: in case of contact with eyes, immediately flush with plenty of water and send to a doctor for treatment. S36: wear appropriate protective clothing.
- RTECS:VV8902500
-
Hazardous Material Identification:
Sodium aluminosilicate Pricemore >>
| Related Categories | No. | Product Name | Cas No. | Purity | Specification | Price | update time | Inquiry |
|---|---|---|---|---|---|---|---|---|
| SHANG HAI MAI KE LIN SHENG HUA Technology Co., Ltd. | S832352-1kg |
Sodium Aluminosilicate |
1344-00-9 | 98% | 1kg |
¥1,148.00 | 2022-08-31 | |
| SHANG HAI MAI KE LIN SHENG HUA Technology Co., Ltd. | S832352-50g |
Sodium Aluminosilicate |
1344-00-9 | 98% | 50g |
¥97.00 | 2022-08-31 | |
| SHANG HAI MAI KE LIN SHENG HUA Technology Co., Ltd. | S832352-250g |
Sodium Aluminosilicate |
1344-00-9 | 98% | 250g |
¥389.00 | 2022-08-31 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | L-JF494-100g |
Sodium aluminosilicate |
1344-00-9 | 98% | 100g |
¥278.0 | 2022-02-28 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | L-JF494-25g |
Sodium aluminosilicate |
1344-00-9 | 98% | 25g |
¥83.0 | 2022-02-28 | |
| SHANG HAI JI ZHI SHENG HUA Technology Co., Ltd. | S69380-250g |
Aluminum,sodium,dioxido(oxo)silane |
1344-00-9 | 250g |
¥338.0 | 2021-09-07 | ||
| XI GE MA AO DE LI QI ( SHANG HAI ) MAO YI Co., Ltd. | 09772-250G |
Sodium aluminosilicate |
1344-00-9 | 82% | 250G |
¥356.77 | 2022-02-23 | |
| eNovation Chemicals LLC | D625721-1kg |
Sodium Aluminosilicate |
1344-00-9 | 97% | 1kg |
$210 | 2024-05-24 | |
| A2B Chem LLC | AI67662-250g |
Silicic acid, aluminum sodium salt |
1344-00-9 | 82% SiO? basis (based on calcined substance) | 250g |
$82.00 | 2024-04-20 | |
| SHANG HAI XIAN DING Biotechnology Co., Ltd. | X221310A-1kg |
Sodium aluminosilicate |
1344-00-9 | 1kg |
¥2132.0 | 2024-07-20 |
Sodium aluminosilicate Suppliers
Sodium aluminosilicate Related Literature
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Sebastian Greiser,Gregor J. G. Gluth,Patrick Sturm,Christian J?ger RSC Adv. 2018 8 40164
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Marco F. Suárez-Herrera,Marta Costa-Figueiredo,Juan M. Feliu Phys. Chem. Chem. Phys. 2012 14 14391
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Rashmi R. Deshpande,Hellmut Eckert J. Mater. Chem. 2009 19 3419
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Sebastian Greiser,Gregor J. G. Gluth,Patrick Sturm,Christian J?ger RSC Adv. 2023 13 26148
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Yaxian Zhao,Jincheng Du,Xin Cao,Chong Zhang,Gang Xu,Xvsheng Qiao,Yong Liu,Shou Peng,Gaorong Han RSC Adv. 2021 11 7025
Additional information on Sodium aluminosilicate
Recent Advances in Sodium Aluminosilicate (1344-00-9) Research: Applications and Innovations in Chemical Biomedicine
Sodium aluminosilicate (CAS: 1344-00-9) has garnered significant attention in the field of chemical biomedicine due to its versatile applications, ranging from drug delivery systems to diagnostic imaging. Recent studies have explored its unique physicochemical properties, including its high surface area, porosity, and biocompatibility, which make it an ideal candidate for various biomedical applications. This research brief synthesizes the latest findings on sodium aluminosilicate, focusing on its synthesis, functionalization, and therapeutic potential.
One of the most notable advancements in sodium aluminosilicate research is its role in targeted drug delivery. A 2023 study published in the Journal of Controlled Release demonstrated that sodium aluminosilicate nanoparticles could be engineered to encapsulate chemotherapeutic agents, enabling precise delivery to tumor sites while minimizing systemic toxicity. The study highlighted the material's ability to sustain drug release over extended periods, thereby improving treatment efficacy. Additionally, the nanoparticles exhibited excellent stability under physiological conditions, further validating their potential for clinical use.
In the realm of diagnostic imaging, sodium aluminosilicate has shown promise as a contrast agent for magnetic resonance imaging (MRI). Researchers at the University of California, San Francisco, recently developed a novel sodium aluminosilicate-based contrast agent that enhances imaging resolution while reducing gadolinium-related toxicity. The agent's aluminosilicate framework allows for the incorporation of paramagnetic ions, which significantly improve signal intensity. This innovation addresses a critical need for safer and more effective contrast agents in radiology.
Beyond drug delivery and diagnostics, sodium aluminosilicate has also been investigated for its antimicrobial properties. A 2024 study in ACS Applied Materials & Interfaces revealed that sodium aluminosilicate coatings on medical devices could inhibit bacterial biofilm formation, a common cause of hospital-acquired infections. The study attributed this effect to the material's ability to disrupt bacterial cell membranes and interfere with quorum sensing. These findings open new avenues for developing antimicrobial surfaces in healthcare settings.
Despite these advancements, challenges remain in the large-scale production and clinical translation of sodium aluminosilicate-based technologies. Issues such as batch-to-batch variability and long-term biocompatibility require further investigation. However, ongoing research efforts, including those funded by the National Institutes of Health (NIH), are addressing these hurdles through advanced characterization techniques and preclinical trials.
In conclusion, sodium aluminosilicate (1344-00-9) continues to emerge as a multifunctional material with transformative potential in chemical biomedicine. Its applications in drug delivery, diagnostic imaging, and antimicrobial coatings underscore its versatility and utility. Future research should focus on optimizing synthesis protocols, enhancing functionalization strategies, and accelerating clinical adoption to fully realize its benefits.
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