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Tetraiodothiophene, with the chemical formula C4H2I4S, is a chemical compound that serves as a versatile building block in the synthesis of various organic materials. It is characterized by its strong electron-withdrawing properties due to the presence of four iodine atoms, which contribute to its utility in developing high-performance materials for electronics and optoelectronics.

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  • 19259-11-1 Structure
  • Basic information

    1. Product Name: TETRAIODOTHIOPHENE
    2. Synonyms: TETRAIODOTHIOPHENE;2,3,4,5-Tetraiodothiophene;tetraiodo-thiophen;Thiophene, tetraiodo-
    3. CAS NO:19259-11-1
    4. Molecular Formula: C4I4S
    5. Molecular Weight: 587.73
    6. EINECS: 242-924-9
    7. Product Categories: N/A
    8. Mol File: 19259-11-1.mol
  • Chemical Properties

    1. Melting Point: N/A
    2. Boiling Point: 445.2°Cat760mmHg
    3. Flash Point: 223°C
    4. Appearance: /
    5. Density: 3.515g/cm3
    6. Vapor Pressure: 1.06E-07mmHg at 25°C
    7. Refractive Index: 1.875
    8. Storage Temp.: N/A
    9. Solubility: N/A
    10. CAS DataBase Reference: TETRAIODOTHIOPHENE(CAS DataBase Reference)
    11. NIST Chemistry Reference: TETRAIODOTHIOPHENE(19259-11-1)
    12. EPA Substance Registry System: TETRAIODOTHIOPHENE(19259-11-1)
  • Safety Data

    1. Hazard Codes: N/A
    2. Statements: N/A
    3. Safety Statements: N/A
    4. WGK Germany:
    5. RTECS:
    6. HazardClass: N/A
    7. PackingGroup: N/A
    8. Hazardous Substances Data: 19259-11-1(Hazardous Substances Data)

19259-11-1 Usage

Uses

Used in Electronics Industry:
Tetraiodothiophene is used as a key component in the development of semiconducting polymers and electronic devices. Its electron-withdrawing properties make it instrumental in enhancing the performance of materials used in electronic applications.
Used in Optoelectronics Industry:
In the optoelectronics field, Tetraiodothiophene is utilized for its unique structure and reactivity, which are valuable for creating advanced materials that can be applied in various technological advancements within the industry.

Check Digit Verification of cas no

The CAS Registry Mumber 19259-11-1 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,9,2,5 and 9 respectively; the second part has 2 digits, 1 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 19259-11:
(7*1)+(6*9)+(5*2)+(4*5)+(3*9)+(2*1)+(1*1)=121
121 % 10 = 1
So 19259-11-1 is a valid CAS Registry Number.
InChI:InChI=1/C4I4S/c5-1-2(6)4(8)9-3(1)7

19259-11-1Relevant articles and documents

Revisiting Dehydrothiopheno[12]annulenes: Synthesis, Electronic Properties, and Aromaticity

Ohtomo, Yasuhiro,Ishiwata, Ken,Hashimoto, Shingo,Kuroiwa, Tatsuru,Tahara, Kazukuni

, p. 13198 - 13211 (2021/10/12)

The aromaticity and electronic properties of acetylene-bridged hexadehydrotristhiopheno[12]annulenes (HDTAs) were revisited using a combined experimental and theoretical approach. Moreover, we attempted the synthesis of the butadiyne-bridged octadehydrobisthiopheno[12]annulenes (ODTAs). While the formation of ODTAs was indicated by NMR spectroscopy, mass spectrometry, and UV-vis absorption measurements, our attempts to isolate ODTAs were unsuccessful on account of its instability. Instead, their structure and energetic properties were predicted using DFT calculations. HDTA isomers in which the position where the thiophene rings are fused to the 12-membered ring differs (b- vs c-position) show distinct differences in their HOMO-LUMO energy gaps (EGap). ODTAs also show large EGap differences depending on the fusion position of the thiophene rings. The diene character of the thiophene ring significantly changes the electronic properties; i.e., EGap differences of >1 eV were observed between the isomers of both HDTAs and ODTAs. A theoretical evaluation of HDTAs and ODTAs revealed significant variation in the local aromaticity/antiaromaticity between the b- and c-isomers. The antiaromatic character of the 12-membered ring is attenuated for the b-isomers, whereas it is decreased substantially for the c-isomers. The results of this study are useful for a detailed understanding of the fundamental aspects of dehydrothiopheno[12]annulenes.

TRICYCLIC COMPOUND SERVING AS IMMUNOMODULATOR

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Paragraph 0242-0243, (2019/01/04)

Provided are compounds of formula I and formula II or pharmaceutically acceptable salts of the compounds and pharmaceutical compositions thereof. The compounds of formula I and formula II or the pharmaceutically acceptable salts of the compounds provide indole 2,3-dioxygenase (IDO) inhibitory activity and are capable of treating IDO-mediated immunosuppressive diseases, such as infectious diseases or cancer.

A Convenient Synthesis of Dithieno[3,2- b:2′,3′- d ]thiophenes from Thiophene

Park, Kyung Hyun,Park, Joon Bum,Zong, Kyukwan

, p. 4126 - 4130 (2016/11/26)

A new synthetic method for dithieno[3,2-b:2′,3′-d]thiophenes was developed. The approach involves three steps starting from thiophene: tetraiodation of thiophene, selective dialkynylations on the 2,5-positions of the tetraiodothiophene, and finally CuI/TMEDA catalyzed double annulations of 2,5-dialkynyl-3,4-diiodothiophenes by Na2S, to afford dithieno[3,2-b:2′,3′-d]thiophene and its derivatives.

Sulfur containing stable unsubstituted heptacene analogs

De, Puran K.,Neckers, Douglas C.

supporting information; experimental part, p. 78 - 81 (2012/02/14)

Heptacene and higher polyacenes have been sought for their high degree of charge carrier mobility in thin film transistors. Such acenes are, however, extremely unstable in ambient conditions. Approaches to obtain stable heptacenes include introduction of suitable substituents, of heteroatoms, or both. Methods to synthesize stable linear and a nonlinear unsubstituted heptacene analogs are discussed. No changes in the UV-visible absorption spectra in solution over time for these materials indicate higher oxidative stability compared to analogous polyacenes.

Interaction in molecular crystals, 166 [1, 2]. Polyiodo molecules I2C=CI2, (IC)4S, (IC)4NH, (IC)4N-CH3 and HCI3: Structure determination following crystallization or by Density Functional Theory calculation

Bock, Hans,Holl, Sven,Krenzel, Volker

, p. 13 - 24 (2007/10/03)

The structures of tri- and tetraiodo-substituted carbon compounds are determined either experimentally by X-Ray Structure Analysis or, because crystallization of tetraiodothiophene could not be achieved, approximated by Density Functional Theory optimization of structural data from a donor/acceptor complex. The structures show noteworthy details such as a second polymorph of tetraiodoethene crystallized by sublimation or herringbone crystal packing patterns of tetraiodopyrrole derivatives. All molecular geometries are discussed and compared based on relativistic density functional theory calculations with 6-31G* basis sets including iodine pseudopotentials. They reproduce even finer structural details due to van der Waals repulsion of the bulky iodo substituents. Natural Bond Orbital (NBO) charge distributions suggest positive partial charges at all iodine centers with the strongest polarization Cδ →Iδ⊕ in HCI3, which contains well over 97% iodine.

Halogenation Using Quaternary Ammonium Polyhalides. XXXI. Halogenation of Thiophene Derivatives with Benzyltrimethylammonium Polyhalides

Okamoto, Tsuyoshi,Kakinami, Takaaki,Fujimoto, Hiroshi,Kajigaeshi, Shoji

, p. 2566 - 2568 (2007/10/02)

The reactions of thiophene derivatives with benzyltrimethylammonium tetrachloroiodate, benzyltrimethylammonium tribromide, and benzyltrimethylammonium dichloroiodate in acetic acid or in acetic acid-zinc chloride under mild conditions gave chloro-, bromo-, and iodo-substituted thiophene derivatives, respectively, in satifactory yields.

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