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Diphenylphosphinic acid (DPPA, hdpp) is an organophosphinic acid compound characterized by its white fine crystalline solid appearance. It is known for its reactivity and utility in various chemical processes, including its role as a flame-retardant and promoter for palladium catalytic systems. The thermal degradation of DPPA has been studied using thermogravimetric analysis (TGA), and it can engage in reactions with cadmium nitrate to form coordination polymers. Additionally, DPPA can be ortho-lithiated to create mono ortho-functionalized derivatives and biphenyl-2,2′-diylbis(phenylphosphinic acid) through copper-catalyzed coupling.

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  • 1707-03-5 Structure
  • Basic information

    1. Product Name: Diphenylphosphinic acid
    2. Synonyms: AURORA KA-1519;DIPHENYLPHOSPINIC ACID;DIPHENYLPHOSPHINIC ACID;DIPHENYLPHOSPHONIC ACID;diphenyl-phosphinicaci;Hydroxydiphenylphosphine oxide;Phosphinic acid, diphenyl-;Diphenylphosphine acid
    3. CAS NO:1707-03-5
    4. Molecular Formula: C12H11O2P
    5. Molecular Weight: 218.19
    6. EINECS: 216-948-5
    7. Product Categories: Organic Building Blocks;Phosphonic/Phosphinic Acids;Phosphorus Compounds;Morpholines/Thiomorpholines
    8. Mol File: 1707-03-5.mol
  • Chemical Properties

    1. Melting Point: 193-195 °C(lit.)
    2. Boiling Point: 446.2 °C at 760 mmHg
    3. Flash Point: 223.7 °C
    4. Appearance: White/Fine Crystalline Solid
    5. Density: 1.25 g/cm3
    6. Vapor Pressure: 9.59E-09mmHg at 25°C
    7. Refractive Index: 1.602
    8. Storage Temp.: Store below +30°C.
    9. Solubility: 0.1 M NaOH: soluble0.5g/10 mL, clear, colorless
    10. PKA: 2.30±0.10(Predicted)
    11. Water Solubility: Soluble in water.
    12. BRN: 2804567
    13. CAS DataBase Reference: Diphenylphosphinic acid(CAS DataBase Reference)
    14. NIST Chemistry Reference: Diphenylphosphinic acid(1707-03-5)
    15. EPA Substance Registry System: Diphenylphosphinic acid(1707-03-5)
  • Safety Data

    1. Hazard Codes: N/A
    2. Statements: 36/37/38
    3. Safety Statements: 22-24/25
    4. WGK Germany: 3
    5. RTECS: SZ5315000
    6. HazardClass: N/A
    7. PackingGroup: N/A
    8. Hazardous Substances Data: 1707-03-5(Hazardous Substances Data)

1707-03-5 Usage

Uses

Used in Chemical Synthesis:
Diphenylphosphinic acid is used as a reagent for the synthesis of bidentate ligands and peptide coupling agents, contributing to the development of complex organic compounds and pharmaceuticals.
Used in Flame-Retardant Industry:
Diphenylphosphinic acid serves as a reactive flame-retardant, enhancing the fire resistance of materials and providing safety in various applications.
Used in Catalysis:
As a promoter for palladium catalytic systems, DPPA aids in accelerating chemical reactions, which is particularly useful in the fields of organic synthesis and materials science.
Used in Coordination Polymer Formation:
Diphenylphosphinic acid is used in the formation of one-dimensional coordination polymers, such as catena-poly[[bis(dimethylformamide-κO)cadmium(II)]-bis(μ-diphenylphosphinato-κ(2)O:O′)], which have potential applications in catalysis, sensing, and other areas.
Used in Carbonylation Reactions:
DPPA promotes the carbonylation of nitrobenzene and aniline to diphenylurea, a reaction that is important in the production of various chemical intermediates and pharmaceuticals.

Synthesis Reference(s)

The Journal of Organic Chemistry, 22, p. 1671, 1957 DOI: 10.1021/jo01363a037

Purification Methods

Recrystallise it from 95% EtOH and dry it under vacuum at room temperature. [see Kosolapoff Organophosphorus Compounds J Wiley, NY, 1950, Kosolapoff and Maier Organic Phosphorus Compounds Wiley-Interscience, NY, 1972-1976, Beilstein 16 IV 1036.]

Check Digit Verification of cas no

The CAS Registry Mumber 1707-03-5 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 1,7,0 and 7 respectively; the second part has 2 digits, 0 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 1707-03:
(6*1)+(5*7)+(4*0)+(3*7)+(2*0)+(1*3)=65
65 % 10 = 5
So 1707-03-5 is a valid CAS Registry Number.
InChI:InChI=1/C12H11O2P/c13-15(14,11-7-3-1-4-8-11)12-9-5-2-6-10-12/h1-10H,(H,13,14)

1707-03-5 Well-known Company Product Price

  • Brand
  • (Code)Product description
  • CAS number
  • Packaging
  • Price
  • Detail
  • Alfa Aesar

  • (A11563)  Diphenylphosphinic acid, 99%   

  • 1707-03-5

  • 5g

  • 366.0CNY

  • Detail
  • Alfa Aesar

  • (A11563)  Diphenylphosphinic acid, 99%   

  • 1707-03-5

  • 25g

  • 942.0CNY

  • Detail
  • Alfa Aesar

  • (A11563)  Diphenylphosphinic acid, 99%   

  • 1707-03-5

  • 100g

  • 3350.0CNY

  • Detail
  • Aldrich

  • (43153)  Diphenylphosphinicacid  ≥98.0% (T)

  • 1707-03-5

  • 43153-5G

  • 252.72CNY

  • Detail

1707-03-5Relevant articles and documents

Proline/pipecolinic acid-promoted copper-catalyzed P-arylation

Huang, Cheng,Tang, Xu,Fu, Hua,Jiang, Yuyang,Zhao, Yufen

, p. 5020 - 5022 (2006)

We have developed a convenient and efficient approach for P-arylation of organophosphorus compounds containing P-H. Using commercially available and inexpensive proline and pipecolinic acid as the ligands greatly improved the efficiency of the coupling reactions, so the method can provide an entry to arylphosphonates, arylphosphinates and arylphosphine oxides.

Solubilities of diphenylphosphinic acid in selected solvents

Zhang, Gai-Qing,Wang, Li-Sheng,Fan, Rui-Lan,Shao, Xian-Zhao,Wang, Xiao-Fang

, p. 1192 - 1195 (2008)

Diphenylphosphinic acid (DPPA) was synthesized and characterized by infrared spectroscopy (IR), nuclear magnetic resonance (1H NMR), mass spectroscopy (MS), and elemental analysis. The melting point and the enthalpy of fusion of DPPA were measured by a differential scanning calorimeter (DSC), and the thermal stability of DPPA was measured by thermogravimetric analysis (TGA). The solubility data of DPPA in nine solvents were measured and correlated with an empirical equation. The estimated uncertainty of all the solubility values based on error analysis and repeated observations was within 2.0 %.

A 31P-SNP study of the photolysis of (2,4,6-trimethylbenzoyl)diphenylphosphine oxide in micelles of different sizes

Ananchenko, G. S.,Bagryanskaya, E. G.,Tarasov, V. F.,Sagdeev, R. Z.,Paul, H.

, p. 267 - 273 (1996)

31P stimulated nuclear polarization spectra and their dependence on time after photolysis of (2,4,6-trimethylbenzoyl)diphenylphosphine oxide in micellar solution of sodium octyl- (SOS) and dodecylsulfate (SDS) are investigated and discussed in terms of the numerical solution of the stochastic Liouville equation for a microreactor model.The decay of the geminate radical pair is found to be about 2.5 times slower in SDS than in the SOS micelles due to a larger re-encounter rate in the latter one.Simulation of the experimental results further suggests J0= ca. -1.6*1010 rad/s for the exchange interaction at contact distance, and an increasing micellar size with increasing radical size.

Photoreaction of anthracenyl phosphine oxides: Usual reversible photo- and heat-induced emission switching, and unusual oxidative P&C bond cleavage

Katagiri, Kosuke,Yamamoto, Yukina,Takahata, Yuui,Kishibe,Fujimoto

, p. 2026 - 2029 (2019)

Anthracenyl(diphenyl)phosphine oxide and dianthracenylphenylphosphine oxide as photoactive compounds have been synthesized. Anthracenyl group of these compounds indicate the multi-functional roles such as an emission component, a photodimerization component, and a leaving group. When the light irradiation was performed under an oxygen atmosphere, photo-oxidative P&C bond cleavage to leave the antharacenyl group was observed. Moreover, phosphonyl radical was produced and then P&P bond formation to form diphosphane was observed.

Synthesis, Structure, and Coordination Chemistry of Phosphine-Functionalized Imidazole/Imidazolium Salts and Cleavage of a C-P Bond in an NHC-Phosphenium Salt using a Pd(0) Precursor

Karthik, Vedhagiri,Gupta, Vivek,Anantharaman, Ganapathi

, p. 3713 - 3720 (2015)

A simple method involving metal-halogen exchange reaction(s) to prepare various phosphine-functionalized imidazole/imidazolium salts and their coordination chemistry with different metal precursors has been described. Interestingly, the reaction of 1,3-dimethyl-2-(diphenylphosphino)-4-iodoimidazolium iodide (6) with Pd2(dba)3 in the presence of triphenylphosphine affords a Pd(II)-NHC complex which involves the cleavage of a C-P bond presumably occurring via oxidative addition of Pd(0) to a C-I bond to afford an in situ generated Pd(II) species, which subsequently reacts with another 1 equiv of 6 through the phosphine center to form an adduct followed by a dephosphinylation reaction. (Chemical Equation Presented).

Establishment of a new molecular model for mercury determination verified by single crystal X-ray diffraction, spectroscopic analysis and biological potentials

Gu, Jiapei,Zhang, Feifan,Zheng, Ziman,Li, Xiangqian,Deng, Runxuan,Zhou, Zhan,Ma, Lufang,Liu, Wanqiang,Wang, Qianming

, p. 87 - 91 (2021)

A wide variety of molecular probes have been developed for real-time analysis, but most of organic fluorophores possess small Stokes shifts and self-absorption or inner filter effect that could not be avoided. In this study, a new dicyanoisophorone-based derivative (E)-O-(4-(2-(3-(dicyanomethylene)-5,5-dimethylcyclohex-1-en-1-yl)vinyl)phenyl)diphenylphosphinothioate (λex = 405 nm, λem = 551 nm, denoted as ICM-S) with strong push-pull electron effect has been afforded and it exhibits red shift for absorption from 407 nm to 426 nm with distinct color change from pale yellow to deep yellow upon exposure to Hg2+. Moreover, an easily distinguishable fluorescence color change follows the route from green, yellow to red in the presence of Hg2+ over the range of 0?90 μmol/L (detection limit = 137 nmol/L) can be observed by the naked eye under a UV lamp irradiation. Chlorodiphenylphosphine and sublimed-sulfur are incorporated as responsive sites and P-O bond has been cleaved upon the addition of mercury ions. During the recognition process, such dicyanoisophorone dye (ICM-S) has been evolved to 2-(3-(4-hydroxystyryl)-5,5-dimethylcyclohex-2-enylidene) malononitrile (ICM?OH). Clear evidences in the chemical processes can be identified via single crystal X-ray diffraction, spectroscopic analysis, photophysical studies and titration experiments. With the aim of exploring its potential in biological systems, its in vitro responses to Hg2+ have been evaluated in 293 T cells and the effectiveness in zebrafish model has also been verified.

The Catalytic Role of Iodide Ion/Iodine Couple in the Photo-Reduction of 10-Methylacridinium Ion with Diphenylphosphine Oxide

Yasui, Shinro,Shioji, Kosei,Ohno, Atsuyoshi,Yoshihara, Masakuni

, p. 1393 - 1396 (1993)

Photo-redox between diphenylphosphine oxide and 10-methylacridinium iodide with visible light in aqueous acetonitrile under argon atmosphere is initiated by single electron transfer from the phosphorus compound to the acridinium salt in the potoexcited state giving diphenylphosphinic acid and 10-methylacridan as the final products.Iodide ion/iodine couple plays a crucial role for transferring an electron in this reaction.

Direct synthesis of α-hydroxyketone phosphates from terminal alkynes and H-phosphine oxides in the presence of PhI(OAc)2and H2O

Hu, Dong-Yan,Li, Meng-Shun,Zhong, Wen-Wu,Ji, Jian-Xin,Zhu, Jin,Wei, Wei,Zhang, Qiang,Cheng, Ming

, p. 1691 - 1695 (2016)

A simple and highly efficient one-pot method for the construction of α-hydroxyketone phosphates from terminal alkynes and H-phosphine oxides has been developed in the presence of PhI(OAc)2and H2O. The present protocol provides an attractive approach to α-hydroxyketone phosphates in good to high yields, with the advantages of operation simplicity, the use of commercially available materials, broad substrate scope, high atom efficiency and good tolerance to scale-up synthesis.

Dramatic effect of the metal cation in dealkylation reactions of phosphinic esters promoted by complexes of polyether ligands with metal iodides

Albanese,Landini,Maia

, p. 3249 - 3252 (2001)

Metal ion electrophilic catalysis has been revealed in dealkylation reactions of phosphinic esters 1-4 promoted by complexes of polyether ligands 5-7 with metal iodides MIn (Mn+ = Li+, Na+, K+, Rb+, Ca2+, Sr2+, Ba2+) in low polarity solvents (chlorobenzene, 1,2-dichlorobenzene, and toluene) at 60 °C. The catalytic effect increases with increasing the Lewis acid character of the cation, in the order Rb+ + + + and Ba2+ 2+ 2+. The results are interpreted in terms of a transition state where the complexed cation (Mn+ ? Lig) assists the departure of the leaving group Ph2P(O)O- and, at the same time, favors the attack at carbon of the nucleophile I- ( push-pull mechanism). The rate sequence found for 1-4 (Me > Et ? i-Pr and t-Bu) shows that this reaction can be utilized for the selective dealkylation of these substrates.

Phosphinite-phosphine oxide isomerization of diphenylphosphinite derivatives of 1,4:3,6-dianhydro-D-mannitol

Kurochkina,Soboleva,Vasyanina,Grachev,Nifant'ev

, p. 49 - 52 (2005)

Phosphorylation of 1,4:3,6-dianhydro-D-mannitol with diphenylphosphinous chloride provided a bisphosphinite derivative that, unlike what is observed in the phosphorylation with phosphorous chlorides and amides, undergoes fast phosphinite-phosphine oxide isomerization. The monophosphinite derivative, in addition, is strongly dephosphorylated. The effect of the solvents and amines (HCl acceptors) on the phosphinite-phosphine oxide isomerization is studied.

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