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Merck
CN

SX0583

Sodium Hexametaphosphate

别名:

Sodium Hexametaphosphate, Hexasodium Metaphosphate

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线性分子式:
(NaPO3)6
化学文摘社编号:
UNSPSC Code:
12352302
EC Index Number:
233-343-1
MDL number:
Form:
granular
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SMILES string

[Na+].[Na+].[Na+].[Na+].[Na+].[Na+].[P]1(=O)(O[P](=O)(O[P](=O)(O[P](=O)(O[P](=O)(O[P](=O)(O1)[O-])[O-])[O-])[O-])[O-])[O-]

InChI

1S/6Na.H6O18P6/c;;;;;;1-19(2)13-20(3,4)15-22(7,8)17-24(11,12)18-23(9,10)16-21(5,6)14-19/h;;;;;;(H,1,2)(H,3,4)(H,5,6)(H,7,8)(H,9,10)(H,11,12)/q6*+1;/p-6

InChI key

GCLGEJMYGQKIIW-UHFFFAOYSA-H

form

granular

concentration

≥65% P2O5

color

white

shipped in

ambient

storage temp.

room temp

Quality Level

相关类别

Application

Sodium Hexametaphosphate (SHMP) can be used as:
  • A reagent for the oxidation of aldehydes to carboxylic acids in the presence of H2O2 as an oxidant.
  • A polymeric stabilizing and protecting agent in the synthesis of SHMP-stabilized gold nanoparticles (Au–SHMP) applicable in the development of biocompatible molecular probes.
  • A capping agent in the synthesis of sterically stabilized luminescent nanoparticles of manganese doped zinc sulfide (ZnS:Mn2+).
  • A stabilizing agent in the synthesis of barium sulfate nanoparticles by precipitation method.

Analysis Note

Assay (as P2 O5): 65% min
Color: White
Form: Granules

存储类别

11 - Combustible Solids

wgk

WGK 1

flash_point_f

Not applicable

flash_point_c

Not applicable

法规信息

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Synthesis of BaSO4 nanoparticles by precipitation method using sodium hexa metaphosphate as a stabilizer
Gupta Asha, et al.
Solid State Communications, 150(9-10), 386-388 (2010)
Highly efficient and green approach of synthesizing carboxylic acids from aldehydes using sodium hexametaphosphate
Ruslan Nur AAA, et al.
Sustainable Chemistry and Pharmacy, 16, 100246-100246 (2020)
Luminescent nanoparticles of Mn doped ZnS passivated with sodium hexametaphosphate
Warad HC, et al.
Science and Technology of Advanced Materials, 6(3-4), 296-301 (2005)
Harshala J Parab et al.
Nanotechnology, 22(39), 395706-395706 (2011-09-08)
The feasibility of using gold nanoparticles (AuNPs) for biomedical applications has led to considerable interest in the development of novel synthetic protocols and surface modification strategies for AuNPs to produce biocompatible molecular probes. This investigation is, to our knowledge, the

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