01 Excipients Prelims 1..9

Total Page:16

File Type:pdf, Size:1020Kb

01 Excipients Prelims 1..9 Sodium Starch Glycolate 663 The therapeutic use of sodium propionate in topical antifungal 5 Health and Safety Executive. EH40/2005: Workplace Exposure Limits. preparations has largely been superseded by a new generation of Sudbury: HSE Books, 2005 (updated 2007). http://www.hse.gov.uk/ antifungal drugs. coshh/table1.pdf (accessed 5 February 2009). A specification for sodium propionate is contained in the Food 6 Food Chemicals Codex, 6th edn. Bethesda, MD: United States Pharmacopeia, 2008; 906. Chemicals Codex (FCC).(6) The EINECS number for sodium propionate is 205-290-4. The PubChem Compound ID (CID) for sodium propionate is 20 General References 23663426. Doores S. Organic acids. Branen AL, Davidson PM, eds. Antimicrobials in Foods. New York: Marcel Dekker, 1983; 85–87. 19 Specific References Furia TE, ed. CRC Handbook of Food Additives. Cleveland, OH: CRC Press, 1972; 137–141. 1 Bishop Y, ed. The Veterinary Formulary, 6th edn. London: Pharmaceutical Press, 2005; 419–420. 2 Heseltine WW. A note on sodium propionate. J Pharm Pharmacol 21 Author 1952; 4: 120–122. T Sakurai. 3 Graham WD et al. Chronic toxicity of bread additives to rats. J Pharm Pharmacol 1954; 6: 534–545. 4 Lewis RJ, ed. Sax’s Dangerous Properties of Industrial Materials, 11th 22 Date of Revision edn. New York: Wiley, 2004; 3276. 5 February 2009. Sodium Starch Glycolate 1 Nonproprietary Names 5 Structural Formula BP: Sodium Starch Glycolate PhEur: Sodium Starch Glycolate USP-NF: Sodium Starch Glycolate 2 Synonyms Carboxymethyl starch, sodium salt; carboxymethylamylum natri- cum; Explosol; Explotab; Glycolys; Primojel; starch carboxymethyl ether, sodium salt; Tablo; Vivastar P. S 3 Chemical Name and CAS Registry Number 6 Functional Category Sodium carboxymethyl starch [9063-38-1] Tablet and capsule disintegrant. 7 Applications in Pharmaceutical Formulation or 4 Empirical Formula and Molecular Weight Technology The USP32–NF27 describes two types of sodium starch glycolate, Sodium starch glycolate is widely used in oral pharmaceuticals as a Type A and Type B, and states that sodium starch glycolate is the disintegrant in capsule(1–6) and tablet formulations.(7–10) It is sodium salt of a carboxymethyl ether of starch or of a crosslinked commonly used in tablets prepared by either direct-compres- carboxymethyl ether of starch. sion(11–13) or wet-granulation processes.(14–16) The usual concen- The PhEur 6.0 describes three types of material: Type A and Type tration employed in a formulation is between 2% and 8%, with the B are described as the sodium salt of a crosslinked partly O- optimum concentration about 4%, although in many cases 2% is carboxymethylated potato starch. Type C is described as the sodium sufficient. Disintegration occurs by rapid uptake of water followed salt of a partly O-carboxymethylated starch, crosslinked by by rapid and enormous swelling.(17–20) physical dehydration. Types A, B, and C are differentiated by their Although the effectiveness of many disintegrants is affected by pH, sodium, and sodium chloride content. the presence of hydrophobic excipients such as lubricants, the The PhEur and USP–NF monographs have been harmonized for disintegrant efficiency of sodium starch glycolate is unimpaired. Type A and Type B variants. Increasing the tablet compression pressure also appears to have no Sodium starch glycolate may be characterized by the degree of effect on disintegration time.(10–12) substitution and crosslinking. The molecular weight is typically 5 Â Sodium starch glycolate has also been investigated for use as a 105–1 Â 106. suspending vehicle.(21) 664 Sodium Starch Glycolate 8 Description 0.756 g/cm3 for Glycolys; Sodium starch glycolate is a white or almost white free-flowing very 0.81 g/cm3 for Primojel; hygroscopic powder. The PhEur 6.0 states that when examined 0.67 g/cm3 for Tablo. under a microscope it is seen to consist of: granules, irregularly Density (tapped) m shaped, ovoid or pear-shaped, 30–100 m in size, or rounded, 0.945 g/cm3 for Glycolys; 10–35 mm in size; compound granules consisting of 2–4 compo- 0.98 g/cm3 for Primojel; nents occur occasionally; the granules have an eccentric hilum and 3 clearly visible concentric striations. Between crossed nicol prisms, 0.83 g/cm for Tablo. Density (true) the granules show a distinct black cross intersecting at the hilum; 3 small crystals are visible at the surface of the granules. The granules 1.56 g/cm for Primojel; show considerable swelling in contact with water. 1.49 g/cm3 for Tablo. Melting point Does not melt, but chars at approximately 2008C. 9 Pharmacopeial Specifications NIR spectra see Figure 1. Particle size distribution 100% of particles less than 106 mmin See Table I. See also Section 18. size. Average particle size (d50)is38mm and 42 mm for Primojel by microscopy and sieving, respectively. 10 Typical Properties Solubility Practically insoluble in methylene chloride. It gives a Acidity/alkalinity See Section 9. translucent suspension in water. Density (bulk) Specific surface area 0.24 m2/g for Glycolys; 2 SEM 1: Excipient: sodium starch glycolate (Explotab); manufacturer: JRS 0.185 m /g for Primojel; Pharma; magnification: 300Â; voltage: 5 kV. 0.335 m2/g for Tablo. SEM 3: Excipient: sodium starch glycolate (Primojel); manufacturer: DMV- Fonterra Excipients; magnification: 200Â; voltage: 1.5 kV. S SEM 4: Excipient: sodium starch glycolate (Vivastar P); manufacturer: JRS SEM 2: Excipient: sodium starch glycolate (Glycolys); manufacturer: Pharma; magnification: 300Â; voltage: 5 kV. Roquettes Fre`res. Sodium Starch Glycolate 665 3.0 0.5 2239 Table I: Pharmacopeial specifications for sodium starch glycolate. 1406 1888 Test PhEur 6.0 USP32–NF27 2011 2398 2305 Identification þþ Characters þ — Appearance of solution þ — 0.0 pH þþ Type A 5.5–7.5 5.5–7.5 1201 log(1/R) Type B 3.0–5.0 3.0–5.0 2093 Type C 5.5–7.5 — [2nd deriv. log(1/R)] 2325 Heavy metals 420 ppm 40.002% × Iron 420 ppm 40.002% 1923 Loss on drying þ 410% 1433 2282 Type A 410.0% — − − 10000 4.0 0.2 Type B 410.0% — 1100 1300 1500 1700 1900 2100 2300 2500 Type C 47.0% — Microbial limits þ(a) þ(a) Wavelength/nm Sodium chloride þ 47.0% Type A 47.0% — Figure 1: Near-infrared spectrum of sodium starch glycolate measured Type B 47.0% — by reflectance. Type C 41.0% — Sodium glycolate þ 42.0% Type A 42.0% — 15 Handling Precautions Type B 42.0% — Observe normal precautions appropriate to the circumstances and 4 Type C 2.0% — quantity of material handled. Sodium starch glycolate may be Assay (of Na) þþ Type A 2.8–4.2% 2.8–4.2% irritant to the eyes; eye protection and gloves are recommended. A Type B 2.0–3.4% 2.0–3.4% dust mask or respirator is recommended for processes that generate Type C 2.8–5.0% — a large quantity of dust. (a) Complies with tests for Salmonella and Escherichia coli. 16 Regulatory Acceptance Swelling capacity In water, sodium starch glycolate swells to up to Included in the FDA Inactive Ingredients Database (oral capsules 300 times its volume. and tablets). Included in nonparenteral medicines licensed in the Viscosity (dynamic) 4200 mPa s (200 cP) for a 4% w/v aqueous UK. Included in the Canadian List of Acceptable Non-medicinal dispersion; viscosity is 4.26 mPa s for a 2% w/v aqueous Ingredients. dispersion (depending on source and grade). 17 Related Substances 11 Stability and Storage Conditions Pregelatinized starch; starch. Tablets prepared with sodium starch glycolate have good storage properties.(22–24) Sodium starch glycolate is stable although very 18 Comments hygroscopic, and should be stored in a well-closed container in order to protect it from wide variations of humidity and Sodium starch glycolate is one of the materials that have been temperature, which may cause caking. selected for harmonization by the Pharmacopeial Discussion The physical properties of sodium starch glycolate remain Group. For further information see the General Information unchanged for up to 3 years if it is stored at moderate temperatures Chapter <1196> in the USP32–NF27, the General Chapter 5.8 S and humidity. in PhEur 6.0, along with the ‘State of Work’ document on the PhEur EDQM website, and also the General Information Chapter 8 in the 12 Incompatibilities JP XV. (25) The physical properties of sodium starch glycolate, and hence its Sodium starch glycolate is incompatible with ascorbic acid. effectiveness as a disintegrant, are affected by the degree of crosslinkage, extent of carboxymethylation, and purity.(27,28) 13 Method of Manufacture Sodium starch glycolate has been reported to interact with Sodium starch glycolate is a substituted derivative of potato starch. glycopeptide antibiotics,(29,30) basic drugs, and increase the photo- Typically, commercial products are also crosslinked using either stability of norfloxacin.(31) The solubility of the formulation matrix sodium trimetaphosphate (Types A and B) or dehydration (Type and mode of incorporation in wet granulation can affect the C).(26) disintegration time; disintegration times can be slower in tablets Starch is carboxymethylated by reacting it with sodium containing high levels of soluble excipients.(32) chloroacetate in an alkaline, nonaqueous medium, typically Commercially, sodium starch glycolate is available in a number denatured ethanol or methanol, followed by neutralization with of speciality grades, e.g. low pH (Explotab Low pH, Glycolys Low citric acid, acetic acid, or some other acid. Vivastar P is pH); low viscosity (Explotab CLV, Glycolys LV); low solvent manufactured in methanolic medium, and Explotab in ethanolic (Vivastar PSF); and low moisture Glycolys LM. medium. A specification for sodium starch glycolate is included in the Japanese Pharmaceutical Excipients (JPE).(33) 14 Safety Sodium starch glycolate is widely used in oral pharmaceutical 19 Specific References formulations and is generally regarded as a nontoxic and 1 Newton JM, Razzo FN.
Recommended publications
  • Brochure-Product-Range.Pdf
    PRODUCT RANGE 2015 edition ANSI Standard 60 NSF® CERTIFIED HALAL M ISLAMIC FOOD AND NUTRITION ® COUNCIL OF AMERICA Rue Joseph Wauters, 144 ISO 9001:2008 (Quality) / OHSAS 18001:2007 (Health/ B-4480 Engis Safety) / ISO 14001:2004 (Environment) / ISO 22000:2005 www.globulebleu.com (Food Safety) / FSSC 22000:2013 (Food Safety). Tel. +32 (0) 4 273 93 58 Our food grade phosphates are allergen free, GMO free, Fax. +32 (0) 4 275 68 36 BSE/TSE free. www.prayon.com mail. [email protected] Design by www.prayon.com PRODUCT RANGE | 11 TABLE OF CONTENTS HORTICULTURE APPLICATIONS HORTIPRAY® RANGE FOR HORTICULTURE* FOOD AND INDUSTRIAL APPLICATIONS PRODUCT NAME Bulk density P O pH N-NH Made 2 5 4 MONOAMMONIUM PHOSPHATE - NH4H2PO4 in 3 3 % 1% % Sodium orthophosphates ................................................................................... 03 g/cm lbs/ft indicative indicative indicative Water-soluble fertilisers. Sodium pyrophosphates .................................................................................... 04 HORTIPRAY® MAP Horticultural Grade 0.9 56 61 4.5 12 Sodium tripolyphosphates ................................................................................. 05 HORTIPRAY® MAP 12.60 Horticultural Grade 0.9 56 60 5 12.1 Water-soluble fertilisers; Sodium polyphosphates ..................................................................................... 06 HORTIPRAY® MAP anticalc Horticultural Grade 0.9 56 61 4.5 12 preventive action against clogging. Potassium orthophosphates .............................................................................
    [Show full text]
  • United States Patent Office
    3,258,071 United States Patent Office Patented June 28, 1966 2 problems, referred to above, heretofore encountered in 3,258,071 the use of linear or chain sodium tripolyphosphate or SECONARY HYDRO CARBON RECOVERY Sodium hexametaphosphate. PROCESS Chung Yu Shea, Olivette, and Darwin A. Novak, Jr., It is, accordingly, one object of this invention to pro Overland, Mo., assignors to Monsano Company, a core 5 vide an inexpensive inorganic additive, not heretofore poration of Delaware Suggested for the purpose, for use in water flooding of No Drawing. Fied Sept. 19, 1962, Ser. No. 224,844 hydrocarbon formations for secondary recovery of hydro 10 Claims. (Ct. 66-9) carbons from such formations. It is another object of this invention to provide a rela The present invention relates to the art of the sec 0 tively inexpensive water flooding medium in oil bearing ondary recovery of petroleum or other hydrocarbons formations, which medium will aid in improving the yield from an underground hydrocarbon bearing formation by of oil recovered per unit of volume of water injected in a water flooding method, and it more particularly re the flooding operation. lates to a novel method and novel compositions useful It is a further object of this invention to provide a in practicing such art. water flooding medium in hydrocarbon bearing forma In recent years the practice of water flooding under tions, which medium enables one to alter the ability ground oil bearing formations to recover oil therefrom of the formation to be wetted by water and also enables in the form of a water-oil mixture, from which the one to inhibit or minimize precipitation of insoluble oil is Subsequently separated, has become quite com metal compounds in the medium.
    [Show full text]
  • Sodium Trimetaphosphate and Hexametaphosphate Impregnated with Silver Nanoparticles: Characteristics and Antimicrobial Efficacy
    Biofouling The Journal of Bioadhesion and Biofilm Research ISSN: 0892-7014 (Print) 1029-2454 (Online) Journal homepage: https://www.tandfonline.com/loi/gbif20 Sodium trimetaphosphate and hexametaphosphate impregnated with silver nanoparticles: characteristics and antimicrobial efficacy Carla Corrêa Mendes-Gouvêa, Jackeline Gallo do Amaral, Renan Aparecido Fernandes, Gabriela Lopes Fernandes, Luiz Fernando Gorup, Emerson Rodrigues Camargo, Alberto Carlos Botazzo Delbem & Debora Barros Barbosa To cite this article: Carla Corrêa Mendes-Gouvêa, Jackeline Gallo do Amaral, Renan Aparecido Fernandes, Gabriela Lopes Fernandes, Luiz Fernando Gorup, Emerson Rodrigues Camargo, Alberto Carlos Botazzo Delbem & Debora Barros Barbosa (2018) Sodium trimetaphosphate and hexametaphosphate impregnated with silver nanoparticles: characteristics and antimicrobial efficacy, Biofouling, 34:3, 299-308, DOI: 10.1080/08927014.2018.1437146 To link to this article: https://doi.org/10.1080/08927014.2018.1437146 Published online: 27 Feb 2018. Submit your article to this journal Article views: 116 View Crossmark data Full Terms & Conditions of access and use can be found at https://www.tandfonline.com/action/journalInformation?journalCode=gbif20 BIOFOULING, 2018 VOL. 34, NO. 3, 299–308 https://doi.org/10.1080/08927014.2018.1437146 Sodium trimetaphosphate and hexametaphosphate impregnated with silver nanoparticles: characteristics and antimicrobial efficacy Carla Corrêa Mendes-Gouvêaa, Jackeline Gallo do Amarala, Renan Aparecido Fernandesb, Gabriela Lopes Fernandesb,
    [Show full text]
  • Effect of Sodium Trimetaphosphate on Hydroxyapatite
    Brazilian Dental Journal (2013) 24(3): 235-240 ISSN 0103-6440 http://dx.doi.org/10.1590/0103-6440201302000 Department of Pediatric Dentistry Effect of Sodium Trimetaphosphate and Public Health, Dental School, UNESP - Universidade Estadual on Hydroxyapatite Solubility: Paulista, Araçatuba, SP, Brazil An In Vitro Study Correspondence: Prof. Dr. Alberto Carlos Botazzo Delbem, Rua José Bonifácio, 1193, 16015-050 Araçatuba, SP, Brasil. Tel. +55-18- 3636-3314. e-mail: adelbem@foa. José Antonio Santos Souza, Jackeline Gallo do Amaral, João Carlos Silos unesp.br, [email protected] Moraes, Kikue Takebayashi Sassaki, Alberto Carlos Botazzo Delbem This study evaluated the effect of different concentrations of sodium trimetaphosphate (TMP) with and without fluoride (F) on the concentration of calcium (Ca), phosphorus (P) and F in hydroxyapatite (HA). Synthetic HA powder (0.15 g) was suspended (n=6) in solutions (75 mL) of TMP at 0%, 0.1%, 0.2%, 0.4%, 0.6%, 0.8%, 1.0%, 2.0%, 4.0%, 6.0%, 8.0% and 10% concentrations in the presence and absence of 100 ppm F and subjected to a pH-cycling process. The precipitates were filtrated, dried at 70° C for 24 h and ground onto a fine powder. The concentrations of F (KOH (CaF2) and HCl (FA) soluble), Ca (Arsenazo III), and P (molybdate method) in HA were determined. The Ca P, and Ca/P ratio data were subjected to Tukey’s test and the F data were subjected to Student-Newman-Keuls test (p<0.05). The addition of TMP to the samples reduced F deposition to 98% (p<0.001).
    [Show full text]
  • Chemical Specific Parameters May 2021
    Regional Screening Level (RSL) Chemical-specific Parameters Supporting Table May 2021 Contaminant Molecular Weight Volatility Parameters Melting Point Density Diffusivity in Air and Water Partition Coefficients Water Solubility Tapwater Dermal Parameters H` HLC H` and HLC VP VP MP MP Density Density Dia Diw Dia and Diw Kd Kd Koc Koc log Kow log Kow S S B τevent t* Kp Kp Analyte CAS No. MW MW Ref (unitless) (atm-m3/mole) Ref (mmHg) Ref (C) Ref (g/cm3) Ref (cm2/s) (cm2/s) Ref (L/kg) Ref (L/kg) Ref (unitless) Ref (mg/L) Ref (unitless) (hr/event) (hr) (cm/hr) Ref Acephate 30560-19-1 1.8E+02 PHYSPROP 2.0E-11 5.0E-13 EPI 1.7E-06 PHYSPROP 8.8E+01 PHYSPROP 1.4E+00 CRC 3.7E-02 8.0E-06 WATER9 (U.S. EPA, 2001) 1.0E+01 EPI -8.5E-01 PHYSPROP 8.2E+05 PHYSPROP 2.1E-04 1.1E+00 2.7E+00 4.0E-05 EPI Acetaldehyde 75-07-0 4.4E+01 PHYSPROP 2.7E-03 6.7E-05 PHYSPROP 9.0E+02 PHYSPROP -1.2E+02 PHYSPROP 7.8E-01 CRC 1.3E-01 1.4E-05 WATER9 (U.S. EPA, 2001) 1.0E+00 EPI -3.4E-01 PHYSPROP 1.0E+06 PHYSPROP 1.3E-03 1.9E-01 4.5E-01 5.3E-04 EPI Acetochlor 34256-82-1 2.7E+02 PHYSPROP 9.1E-07 2.2E-08 PHYSPROP 2.8E-05 PHYSPROP 0.0E+00 EPI 1.1E+00 PubChem 2.2E-02 5.6E-06 WATER9 (U.S.
    [Show full text]
  • Production of Sodium Dihydrogen Phosphate Using Sodium Chloride and Orthophosphoric Acid Doan Pham Minh, Ange Nzihou, Patrick Sharrock
    Production of Sodium Dihydrogen Phosphate Using Sodium Chloride and Orthophosphoric Acid Doan Pham Minh, Ange Nzihou, Patrick Sharrock To cite this version: Doan Pham Minh, Ange Nzihou, Patrick Sharrock. Production of Sodium Dihydrogen Phosphate Using Sodium Chloride and Orthophosphoric Acid. Industrial and engineering chemistry research, American Chemical Society, 2015, 54 (50), p. 12467-12473. 10.1021/acs.iecr.5b02892. hal-01609217 HAL Id: hal-01609217 https://hal.archives-ouvertes.fr/hal-01609217 Submitted on 20 Oct 2018 HAL is a multi-disciplinary open access L’archive ouverte pluridisciplinaire HAL, est archive for the deposit and dissemination of sci- destinée au dépôt et à la diffusion de documents entific research documents, whether they are pub- scientifiques de niveau recherche, publiés ou non, lished or not. The documents may come from émanant des établissements d’enseignement et de teaching and research institutions in France or recherche français ou étrangers, des laboratoires abroad, or from public or private research centers. publics ou privés. Production of Sodium Dihydrogen Phosphate Using Sodium Chloride and Orthophosphoric Acid Pham Minh Doan,* Nzihou Ange, and Sharrock Patrick Université de Toulouse, Mines Albi, CNRS UMR 5302, Centre RAPSODEE, Campus Jarlard, F−81013 Albi, cedex 09, France ABSTRACT: Up-to-date, standard synthesis processes of sodium phosphates are based on the neutralization of orthophosphoric acid by sodium hydroxide or sodium carbonate. To the best of our knowledge, the reaction between sodium chloride and orthophosphoric acid has not yet been reported in the literature. This study demonstrated the feasibility of the synthesis of sodium dihydrogen phosphate by the reaction of sodium chloride with orthophosphoric acid.
    [Show full text]
  • Hydraulic Fracturing Chemicals: Structural Classification, Detections in Flowback Water and Analytical Challenges
    Hydraulic Fracturing Chemicals: Structural Classification, Detections in Flowback Water and Analytical Challenges Dissertation der Mathematisch-Naturwissenschaftlichen Fakultät der Eberhard Karls Universität Tübingen zur Erlangung des Grades eines Doktors der Naturwissenschaften (Dr. rer. nat.) vorgelegt von Kathrin Gabriele Hölzer, geb. Schreglmann aus Weiden i.d. Opf. Tübingen 2016 Tag der mündlichen Qualifikation: 20.07.2016 Dekan: Prof. Dr. Wolfgang Rosenstiel 1. Berichterstatter: PD Dr. Martin Elsner 2. Berichterstatter: Prof. Dr. Christian Zwiener Für Irene und Hermann, in Liebe. Ihr werdet in meiner Erinnerung stets lebendig sein. Table of Contents Hydraulic Fracturing Chemicals: Structural Classification, Detections in Flowback Water and Analytical Challenges .......................................................1 TABLE OF CONTENTS ..........................................................................................................1 SUMMARY ............................................................................................................................5 ZUSAMMENFASSUNG ...........................................................................................................7 1 GENERAL INTRODUCTION ............................................................................................ 9 1.1 Background...........................................................................................................10 1.1.1 Hydraulic Fracturing and Unconventional Gas: Potentials and Environmental Concerns ..............................................................................10
    [Show full text]
  • 30.10.2000 EN L 277/1 Official Journal of the European Communities
    30.10.2000 EN Official Journal of the European Communities L 277/1 I (Acts whose publication is obligatory) COMMISSION DIRECTIVE 2000/63/EC of 5 October 2000 amending Directive 96/77/EC laying down specific purity criteria on food additives other than colours and sweeteners (Text with EEA relevance) THE COMMISSION OF THE EUROPEAN COMMUNITIES, (3) It is necessary, in the light of technical development, to amend the purity criteria set out in Directive 96/77/EC for butylated hydroxyanisole (BHA). It is consequently Having regard to the Treaty establishing the European Com- necessary to adapt that Directive. munity, Having regard to Council Directive 89/107/EEC of (4) It is necessary to take into account the specifications and 21 December 1988 on the approximation of the laws of the analytical techniques for additives as set out in the Codex Member States concerning food additives authorised for use in Alimentarius as drafted by the Joint FAO/WHO Expert foodstuffs intended for human consumption(1), as amended Committee on Food Additives (JECFA). by Directive of the European Parliament and of the Council 94/34/EC(2) and in particular Article 3(3)(a) thereof, (5) Food additives, if prepared by production methods After consulting the Scientific Committee for Food, or starting materials significantly different from those evaluated by the Scientific Committee for Food, or if different from those mentioned in this Directive, should Whereas: be submitted for safety evaluation by the Scientific Committee for Food with emphasis on the purity criteria. (1) It is necessary to establish purity criteria for all additives other than colours and sweeteners mentioned in Direc- tive 95/2/EC of the European Parliament and of the (6) The measures provided for in this Directive are in Council of 20 February 1995 on food additives other accordance with the opinion of the Standing Committee than colours and sweeteners(3), as last amended by on Foodstuffs, Directive 98/72/EC(4).
    [Show full text]
  • Mai Motomontant Didinti Wa Tuulloin
    MAIMOTOMONTANT US009914786B2 DIDINTI WA TUULLOIN (12 ) United States Patent (10 ) Patent No. : US 9 ,914 , 786 B2 De Wit ( 45 ) Date of Patent : *Mar . 13 , 2018 (54 ) PROCESS TO PREPARE CROSSLINKED 4 ,404 , 371 A 9 / 1983 Bellmann et al . CELLULOSE ETHERS , CROSSLINKED 9 , 115 ,217 B2 * 8 /2015 De Wit .. .. .. C08B 15 /005 CELLULOSE ETHERS OBTAINABLE BY 2002 /0119116 AL 8 / 2002 Sahatjian et al. SUCH PROCESS AND THE USE THEREOF 2008 /0009616 A11 /2008 Frank et al . (71 ) Applicant : AKZO NOBEL N . V ., Arnhem ( NL ) FOREIGN PATENT DOCUMENTS ( 72 ) Inventor: Paulus Pieter De Wit, Westervoort EP 824096 A1 1 / 1998 (NL ) EP 1 260 522 B1 4 / 2006 GB 3955106 A 2 / 1981 GB 215834 A 8 / 1985 (73 ) Assignee : Akzo Nobel Chemicals International JP 51 028185 A 3 / 1976 B . V . , Arnhem (NL ) SU 1549966 3 / 1990 WO WO 80 / 00842 5 / 1980 ( * ) Notice : Subject to any disclaimer , the term of this WO WO 98 / 27117 A 6 / 1998 patent is extended or adjusted under 35 WO WO 2003 /093395 A1 11/ 2003 WO WO 2005 /030279 AL 4 / 2005 U . S . C . 154 (b ) by 79 days. WO WO 2005 / 123781 A 12 / 2005 This patent is subject to a terminal dis claimer . OTHER PUBLICATIONS ( 21 ) Appl. No. : 14 /795 , 314 Barbucci et al. Synthesis , chemical and rheological characterization of new hyaluronic acid -based hydrogels , J. Biomater Sci. Polymer (22 ) Filed : Jul. 9 , 2015 Edn , vol . 11, No. 4 , pp . 383 - 399 ( 2000 ) . Heinze et al. , “ Esterification of Polysaccharides ,” Inorganic Poly (65 ) Prior Publication Data saccharide Esters , Springer Laboratory , p .
    [Show full text]
  • Download Food & Beverage Brochure
    Food & Beverage pectmore reliable, sustainable, high-quality phosphates supply RISING TO MEET THE DEMAND FOR PHOSPHATES As the global population continues to rise, so does the demand for phosphates in food and beverage processing. The global food phosphate market is expected to cross $2.4 billion by 20241, as forecast by strong growth indicators in dairy, bakery, beverage, and meat processing industries. In order to meet this rising demand, the food and beverage industry needs a reliable, high-quality, and sustainable supply of phosphates. Xingfa is the global leader in specialty phosphates manufacturing, serving more than 50 countries for over 30 years. By owning and operating phosphate rock mines and derivative manufacturing plants using hydropower stations, we have control over the entire supply chain from rock to ingredient, providing our customers with unmatched reliability, traceability, and sustainability. 1 Global Market Insights, Inc. FOOD AND BEVERAGE MARKETS WE SERVE We offer specialty ingredients to the food and beverage industry to meet ever-increasing demand. Our diverse portfolio of phosphates and compound food ingredients enables, us to offer innovative solutions for your current and evolving needs. Meat, Poultry Products Meat, Poultry & Seafood BakingBaking DairyDairy BeverageBeverage & Seafood Phosphoric Acid Food Grade X Monosodium Phosphate (MSP) X X Disodium Phosphate (DSP) X X Trisodium Phosphate (TSP) X X X Sodium Tripolyphosphate (STPP) X X Tetrasodium Pyrophosphate (TSPP) X X X Sodium Acid Pyrophosphate (SAPP)
    [Show full text]
  • Standard X-Ray Diffraction Powder Patterns
    E^l Admin. NBS MONOGRAPH 25—SECTION 5 Refecii^M not to be ^ferlrom the library. Standard X-ray Diffraction Powder Patterns ^\ / U.S. DEPARTMENT OF COMMERCE S NATIONAL BUREAU OF STANDARDS THE NATIONAL BUREAU OF STANDARDS The National Bureau of Standards^ provides measurement and technical information services essential to the efficiency and effectiveness of the work of the Nation's scientists and engineers. The Bureau serves also as a focal point in the Federal Government for assuring maximum application of the physical and engineering sciences to the advancement of technology in industry and commerce. To accomplish this mission, the Bureau is organized into three institutes covering broad program areas of research and services: THE INSTITUTE FOR BASIC STANDARDS . provides the central basis within the United States for a complete and consistent system of physical measurements, coordinates that system with the measurement systems of other nations, and furnishes essential services leading to accurate and uniform physical measurements throughout the Nation's scientific community, industry, and commerce. This Institute comprises a series of divisions, each serving a classical subject matter area: —Applied Mathematics—Electricity—Metrology—Mechanics—Heat—Atomic Physics—Physical Chemistry—Radiation Physics— -Laboratory Astrophysics^—Radio Standards Laboratory,^ which includes Radio Standards Physics and Radio Standards Engineering—Office of Standard Refer- ence Data. THE INSTITUTE FOR MATERIALS RESEARCH . conducts materials research and provides associated materials services including mainly reference materials and data on the properties of ma- terials. Beyond its direct interest to the Nation's scientists and engineers, this Institute yields services which are essential to the advancement of technology in industry and commerce.
    [Show full text]
  • Safety Assessment of Phosphoric Acid and Its Salts As Used in Cosmetics
    Safety Assessment of Phosphoric Acid and Its Salts as Used in Cosmetics Status: Final Report Release Date: November 16, 2016 Panel Date: September 26-27, 2016 The 2016 Cosmetic Ingredient Review Expert Panel members are: Chair, Wilma F. Bergfeld, M.D., F.A.C.P.; Donald V. Belsito, M.D.; Ronald A. Hill, Ph.D.; Curtis D. Klaassen, Ph.D.; Daniel C. Liebler, Ph.D.; James G. Marks, Jr., M.D.; Ronald C. Shank, Ph.D.; Thomas J. Slaga, Ph.D.; and Paul W. Snyder, D.V.M., Ph.D. The CIR Director is Lillian J. Gill, D.P.A. This report was prepared by Wilbur Johnson, Jr., M.S., Senior Scientific Analyst, Ivan Boyer, Ph.D., Toxicologist, and Bart Heldreth, Ph.D., Chemist. © Cosmetic Ingredient Review 1620 L STREET, NW, SUITE 1200 ◊ WASHINGTON, DC 20036-4702 ◊ PH 202.331.0651 ◊ FAX 202.331.0088 ◊ [email protected] ABSTRACT: The Cosmetic Ingredient Review (CIR) Expert Panel (Panel) reviewed the safety of Phosphoric Acid and its salts (31 ingredients), which function as buffering agents, corrosion inhibitors, chelating agents, and pH adjusters in cosmetic products. The Panel reviewed data relating to the safety of these ingredients, and concluded that Phosphoric Acid and its salts are safe in the present practices of use and concentration in cosmetics when formulated to be non-irritating. INTRODUCTION The safety of the following 31 ingredients, as used in cosmetics (with systematic nomenclature in parenthesis when different from the ingredient name), is reviewed in this safety assessment: Phosphoric Acid • (calcium hydrogen Phosphate Buffered Saline
    [Show full text]