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  • 4505-48-0 Structure
  • Basic information

    1. Product Name: 2-PHENYLINDENE
    2. Synonyms: 2-Phenylindene 97%;2-PHENYLINDENE;2-PHENYL-1H-INDENE;1H-INDENE,2-PHENYL-
    3. CAS NO:4505-48-0
    4. Molecular Formula: C15H12
    5. Molecular Weight: 192.26
    6. EINECS: N/A
    7. Product Categories: Arenes;Building Blocks;Organic Building Blocks
    8. Mol File: 4505-48-0.mol
  • Chemical Properties

    1. Melting Point: 157-161 °C(lit.)
    2. Boiling Point: 296.7 °C at 760 mmHg
    3. Flash Point: 135.5 °C
    4. Appearance: /
    5. Density: 1.104 g/cm3
    6. Vapor Pressure: 0.0025mmHg at 25°C
    7. Refractive Index: 1.637
    8. Storage Temp.: under inert gas (nitrogen or Argon) at 2-8°C
    9. Solubility: N/A
    10. CAS DataBase Reference: 2-PHENYLINDENE(CAS DataBase Reference)
    11. NIST Chemistry Reference: 2-PHENYLINDENE(4505-48-0)
    12. EPA Substance Registry System: 2-PHENYLINDENE(4505-48-0)
  • Safety Data

    1. Hazard Codes: N/A
    2. Statements: N/A
    3. Safety Statements: N/A
    4. WGK Germany: 3
    5. RTECS:
    6. HazardClass: N/A
    7. PackingGroup: N/A
    8. Hazardous Substances Data: 4505-48-0(Hazardous Substances Data)

4505-48-0 Usage

Synthesis Reference(s)

Synthetic Communications, 15, p. 535, 1985 DOI: 10.1080/00397918508063838

Check Digit Verification of cas no

The CAS Registry Mumber 4505-48-0 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 4,5,0 and 5 respectively; the second part has 2 digits, 4 and 8 respectively.
Calculate Digit Verification of CAS Registry Number 4505-48:
(6*4)+(5*5)+(4*0)+(3*5)+(2*4)+(1*8)=80
80 % 10 = 0
So 4505-48-0 is a valid CAS Registry Number.
InChI:InChI=1/C15H12/c1-2-6-12(7-3-1)15-10-13-8-4-5-9-14(13)11-15/h1-10H,11H2

4505-48-0 Well-known Company Product Price

  • Brand
  • (Code)Product description
  • CAS number
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  • Detail
  • Aldrich

  • (446300)  2-Phenylindene  97%

  • 4505-48-0

  • 446300-5G

  • 2,685.15CNY

  • Detail

4505-48-0Relevant articles and documents

Supported palladium nanoparticle-catalysed Suzuki–Miyaura cross-coupling approach for synthesis of aminoarylbenzosuberene analogues from natural precursor

Bharti, Richa,Bal Reddy,Kumar, Sandeep,Das, Pralay

, (2017)

A semi-synthetic method has been developed for the synthesis of aminoarylbenzosuberenes (AABs) from naturally occurring himachalenes, an isomeric mixture of sesquiterpenes present in Cedrus deodara oil. Polymer-stabilized Pd(0) nanoparticle-catalysed Suzu

Bathocuproine-Enabled Nickel-Catalyzed Selective Ullmann Cross-Coupling of Two sp 2-Hybridized Organohalides

Li, Yuqiang,Yin, Guoyin

supporting information, p. 1657 - 1661 (2021/09/13)

Cross-coupling reactions are essential for the synthesis of complex organic molecules. Here, we report a nickel-catalyzed Ullmann cross-coupling of two sp 2-hybridized organohalides, featuring high cross-selectivity when the two coupling partners are used in a 1:1 ratio. The high chemoselectivity is governed by the bathocuproine ligand. Moreover, the mild reductive reaction conditions allow that a wide range of functional groups are compatible in this Ullmann cross-coupling.

Rh(II)-Catalyzed Alkynylcyclopropanation of Alkenes by Decarbenation of Alkynylcycloheptatrienes

Echavarren, Antonio M.,Mato, Mauro,Montesinos-Magraner, Marc,Sugranyes, Arnau R.

supporting information, p. 10760 - 10769 (2021/07/28)

Alkynylcyclopropanes have found promising applications in both organic synthesis and medicinal chemistry but remain rather underexplored due to the challenges associated with their preparation. We describe a convenient two-step methodology for the alkynyl

Alumina-Mediated π-Activation of Alkynes

Akhmetov, Vladimir,Amsharov, Konstantin,Feofanov, Mikhail,Sharapa, Dmitry I.

, p. 15420 - 15426 (2021/09/30)

The ability to induce powerful atom-economic transformation of alkynes is the key feature of carbophilic π-Lewis acids such as gold- and platinum-based catalysts. The unique catalytic activity of these compounds in electrophilic activations of alkynes is explained through relativistic effects, enabling efficient orbital overlapping with π-systems. For this reason, it is believed that noble metals are indispensable components in the catalysis of such reactions. In this study, we report that thermally activated γ-Al2O3activates enynes, diynes, and arene-ynes in a manner enabling reactions that were typically assigned to the softest π-Lewis acids, while some were known to be triggered exclusively by gold catalysts. We demonstrate the scope of these transformations and suggest a qualitative explanation of this phenomenon based on the Dewar-Chatt-Duncanson model confirmed by density functional theory calculations.

Small Gold(I) and Gold(I)–Silver(I) Clusters by C?Si Auration

Pei, Xiao-Li,Pereira, Ana,Smirnova, Ekaterina S.,Echavarren, Antonio M.

supporting information, p. 7309 - 7313 (2020/05/18)

Auration of o-trimethylsilyl arylphosphines leads to the formation of gold and gold–silver clusters with ortho-metalated phosphines displaying 3c–2e Au?C?M bonds (M=Au/Ag). Hexagold clusters [Au6L4](X)2 are obtained by reaction of (L?TMS)AuCl with AgX, whereas reaction with AgX and Ag2O leads to gold–silver clusters [Au4Ag2L4](X)2. Oxo-trigold(I) species [Au3O]+ were identified as the intermediates in the formation of the silver-doped clusters. Other [Au5], [Au4Ag], and [Au12Ag4] clusters were also obtained. Clusters containing PAu?Au?AuP structural motif display good catalytic activity in the activation of alkynes under homogeneous conditions.

Bridged Stilbenes: AIEgens Designed via a Simple Strategy to Control the Non-radiative Decay Pathway

Igawa, Kazunobu,Iwai, Riki,Konishi, Gen-ichi,Morokuma, Keiji,Sairi, Amir Sharidan,Sasaki, Shunsuke,Suenobu, Tomoyoshi,Suzuki, Satoshi

supporting information, p. 10566 - 10573 (2020/04/15)

To broaden the application of aggregation-induced emission (AIE) luminogens (AIEgens), the design of novel small-molecular dyes that exhibit high fluorescence quantum yield (Φfl) in the solid state is required. Considering that the mechanism of

Conversion of Carbonyl Compounds to Olefins via Enolate Intermediate

Cao, Zhi-Chao,Xu, Pei-Lin,Luo, Qin-Yu,Li, Xiao-Lei,Yu, Da-Gang,Fang, Huayi,Shi, Zhang-Jie

supporting information, p. 781 - 785 (2019/06/24)

A general and efficient protocol to synthesize substituted olefins from carbonyl compounds via nickel catalyzed C—O activation of enolates was developed. Besides ketones, aldehydes were also suitable substrates for the presented catalytic system to produce di- or tri- substituted olefins. It is worth noting that this approach exhibited good tolerance to highly reactive tertiary alcohols, which could not survive in other reported routes for converting carbonyl compounds to olefins. This method also showed good regio- and stereo-selectivity for olefin products. Preliminary mechanistic studies indicated that the reaction was accomplished through nickel catalyzed C—O activation of enolates, thus offering helpful contribution to current enol chemistry.

Dissymmetric ansa zirconocene complexes with di- and trisubstituted indenyl ligands as catalysts for homogeneous ethylene homo- and ethylene/1-hexene copolymerization reactions

Rimkus, Andrea M.,Alt, Helmut G.

, p. 72 - 82 (2017/02/18)

Different routes for the synthesis of 1,2- and 1,2,3-substituted indene derivatives are described. Representative substituents are: Me, Ph, PhCH2, PhCH2CH2, PhCH2CH2CH2, CH2CH?=?CH2. Subsequent deprotonation of these substituted indenes and reaction with indenyl zirconium trichloride gave the corresponding dissymmetric bis(indenyl) zirconium complexes. After activation with methylaluminoxane (MAO) these complexes show high activities both in ethylene homopolymerisation and ethylene/1-hexene copolymerisation. The rate of comonomer incorporation can reach 33.3% (15/MAO). The copolymers exhibit lower melting points than the homopolymers and their crystallinities α are lower compared with the homopolymers.

2 - aryl indene catalyst composition and method of manufacturing the compound

-

Paragraph 0067; 0068, (2017/09/02)

PROBLEM TO BE SOLVED: To provide a method for producing a 2-aryl-indene compound from safe raw materials with high yield and good purity and to provide a catalyst composition used for the same.SOLUTION: There is provided a method for producing a 2-aryl-in

Rhodium(II)- or Copper(I)-Catalyzed Formal Intramolecular Carbene Insertion into Vinylic C(sp2)?H Bonds: Access to Substituted 1H-Indenes

Zhou, Qi,Li, Shichao,Zhang, Yan,Wang, Jianbo

, p. 16013 - 16017 (2017/11/27)

A rhodium(II)- or copper(I)-catalyzed formal intramolecular carbene insertion into vinylic C(sp2)?H bonds is reported herein. This method provides straightforward access to 1H-indenes with high efficiency and excellent functional-group compatibility. Mechanistically, the reaction is proposed to involve the following sequence: metal carbene formation, intramolecular nucleophilic addition of the double bond to the electron-deficient carbene carbon atom, dearomatization, and finally a 1,5-H shift.

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