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1-Hydroxyethylidene-1,1-diphosphonic acid trisodium salt, also known as HEDP-Na3, is a versatile chemical compound that serves as a potent chelating and sequestering agent. It is widely utilized across various industries due to its ability to prevent scale formation and corrosion in water treatment systems and metal cleaning processes. HEDP-Na3 also functions as a stabilizer and sequestrant in detergent and cleaner formulations, and finds applications in the oil and gas industry, as well as in personal care and cosmetic product formulations. Its low toxicity and biodegradability make it suitable for a broad spectrum of industrial and consumer applications.

2666-14-0

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2666-14-0 Usage

Uses

Used in Water Treatment Industry:
HEDP-Na3 is used as a chelating agent for preventing scale formation and corrosion in water treatment systems. Its ability to bind with metal ions helps maintain the efficiency and longevity of these systems.
Used in Metal Cleaning Applications:
In metal cleaning, HEDP-Na3 is employed as a sequestering agent to prevent the precipitation of metal ions, ensuring effective cleaning and protection of metal surfaces from corrosion.
Used in Detergent and Cleaner Formulations:
HEDP-Na3 is used as a stabilizer and sequestrant in various detergent and cleaner formulations, enhancing their cleaning performance and preventing the re-deposition of dirt and minerals.
Used in Oil and Gas Industry:
In the oil and gas sector, HEDP-Na3 is utilized for its scale inhibition properties, ensuring smooth operation of equipment and pipelines by preventing the buildup of scale.
Used in Personal Care and Cosmetic Products:
HEDP-Na3 is incorporated into personal care and cosmetic formulations as a chelating agent, improving the stability and efficacy of these products by binding with metal ions and preventing oxidation.
Overall, 1-Hydroxyethylidene-1,1-diphosphonic acid trisodium salt is a multifunctional chemical with applications spanning across various industries, offering solutions for scale prevention, corrosion control, and enhanced product performance.

Check Digit Verification of cas no

The CAS Registry Mumber 2666-14-0 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 2,6,6 and 6 respectively; the second part has 2 digits, 1 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 2666-14:
(6*2)+(5*6)+(4*6)+(3*6)+(2*1)+(1*4)=90
90 % 10 = 0
So 2666-14-0 is a valid CAS Registry Number.
InChI:InChI=1/C2H8O7P2.3Na/c1-2(3,10(4,5)6)11(7,8)9;;;/h3H,1H3,(H2,4,5,6)(H2,7,8,9);;;/q;3*+1/p-3

2666-14-0SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 17, 2017

Revision Date: Aug 17, 2017

1.Identification

1.1 GHS Product identifier

Product name trisodium,hydroxy-(1-hydroxy-1-phosphonatoethyl)phosphinate

1.2 Other means of identification

Product number -
Other names Ethane-1-hydroxy-1,1-diphosphonic acid,trisodium salt

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:2666-14-0 SDS

2666-14-0Relevant academic research and scientific papers

Investigation of Physical Properties of Disodium Etidronate Tetrahydrate and Application of Phosphorus K-Edge X-Ray Absorption Near-Edge Structure Spectroscopy

Ito, Naoya,Hashizuka, Takahiko,Ito, Masataka,Suzuki, Hironori,Noguchi, Shuji

, p. 2147 - 2155 (2021/12/22)

Purpose: Disodium etidronate is a bisphosphonate, compounds that are widely used in the treatment of bone disorders such as osteoporosis and Paget’s disease. We investigated the physical properties of disodium etidronate tetrahydrate crystal, form I. Methods: We used X-ray powder diffraction (XRPD), thermal analysis, dynamic vapor sorption (DVS), X-ray single crystal structure analysis, and phosphorus K-edge X-ray absorption near-edge structure (XANES) spectroscopy for the first time. Results: XRPD and thermal analyses demonstrated that form I was dehydrated and transformed to an amorphous form, to a crystalline form II, and finally to a form III by heating. DVS measurements revealed that the amorphous form, form II, and form III were rehydrated to form I by humidification, and form I was stable even at 0% relative humidity. These results indicate that form I is the most stable solid-state under ambient conditions and is suitable as an API for manufacture in solid formulations. The phosphorus K-edge XANES spectra differed among form I, the amorphous form, and form II, which may be ascribed to the difference in the coordinate bond schemes between the phosphate moieties and sodium ions. The results demonstrated that the phosphorus K-edge XANES spectroscopy could be applied to the identification or the discrimination of crystal forms of the APIs containing phosphate moieties. Conclusions: Acquired information about physical properties are crucial for manufacturing of solid formulations of disodium etidronate. XANES spectroscopy is a promising alternative method for evaluating the solid-state forms of APIs.

One-pot synthesis of phosphinylphosphonate derivatives and their anti-tumor evaluations

Deschamp, Julia,Dussart-Gautheret, Jade,Lecouvey, Marc,Legigan, Thibaut,Migianu-Griffoni, Evelyne,Monteil, Maelle

, (2021/12/24)

This paper reports on the synthesis of new hydroxymethylene-(phosphinyl)phosphonates (HMPPs). A methodology has been developed to propose an optimized one-pot procedure without any intermediate purifications. Various aliphatic and (hetero)aromatic HMPPs were synthesized in good to excellent yields (53–98%) and the influence of electron withdrawing/donating group substitution on aromatic substrates was studied. In addition, the one-pot synthesis of HMPP was monitored by31P NMR spectroscopy, allowing effective control of the end of the reaction and identification of all phosphorylated intermediate species, which enabled us to propose a reaction mechanism. Optimized experimental conditions were applied to the preparation of biological relevant aminoalkyl-HMPPs. A preliminary study of the complexation to hydroxyapatite (bone matrix) was carried out in order to verify its lower affinity towards bone compared to bisphosphonate molecules. Moreover, in vitro anti-tumor activity study revealed encouraging antiproliferative activities on three human cancer cell lines (breast, pancreas and lung).

Optimized synthesis of etidronate

Kovacs, Rita,Nagy, David Illes,Gruen, Alajos,Balogh, Gyoergy Tibor,Garadnay, Sandor,Greiner, Istvan,Keglevich, Gyoergy

, p. 733 - 737 (2013/12/04)

The synthesis of Etidronate (as the disodium salt) by the reaction of acetic acid with phosphorus trichloride/phosphorus acid in methanesulfonic acid was studied and optimized. We showed that it is enough to use 3.2 equivalents of the phosphorus trichlori

METHOD FOR PRODUCING PURE DISODIUM PAMIDRONATE

-

Page/Page column 10, (2008/06/13)

Biphosphonates and especially disodium pamidronate are becoming more and more important for the therapy of a wide variety of diseases. Pure and stable disodium pamidronate is a prerequisite for the manufacture of the respective pharmaceutical formulations. In the literature, there is a controversy on the stability of the various hydrates of disodium 10 pamidronate. The present invention presents a facile, easy to scale-up method of producing disodium pamidronate pentahydrate of high purity and high stability, at yield >90 %. This method avoids any steps that may introduce impurities. It is based on the fact that pamidronic acid can be transferred into its diammonium salt at high concentration, at room temperature. This highly concentrated solution is converted into the disodium salt via ion-exchange, at conditions that maintain the high concentration. The ion-exchange step simultaneously eliminates any undesired divalent or trivalent cations. The disodium salt can be directly crystallized in the eluate of the ion-exchange column, without the need of further concentration and/or addition of any alcohol, by only lowering the temperature down to 5°C.

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