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1708-29-8

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1708-29-8 Usage

General Description

Adsorption and thermal chemistry of 2,5-dihydrofuran on Pd (111) has been studied by high-resolution electron energy loss spectroscopy and temperature-programmed desorption. Free jet millimetre wave spectrum of the 2,5-dihydrofuran-argon molecular complex has been investigated in the frequency range 60-78GHz.

Check Digit Verification of cas no

The CAS Registry Mumber 1708-29-8 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 8 respectively; the second part has 2 digits, 2 and 9 respectively.
Calculate Digit Verification of CAS Registry Number 1708-29:
(6*1)+(5*7)+(4*0)+(3*8)+(2*2)+(1*9)=78
78 % 10 = 8
So 1708-29-8 is a valid CAS Registry Number.
InChI:InChI=1/C4H6O/c1-2-4-5-3-1/h1-2H,3-4H2

1708-29-8 Well-known Company Product Price

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  • Aldrich

  • (253170)  2,5-Dihydrofuran  97%

  • 1708-29-8

  • 253170-25G

  • 585.00CNY

  • Detail
  • Aldrich

  • (253170)  2,5-Dihydrofuran  97%

  • 1708-29-8

  • 253170-100G

  • 1,757.34CNY

  • Detail

1708-29-8SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 10, 2017

Revision Date: Aug 10, 2017

1.Identification

1.1 GHS Product identifier

Product name 2,5-Dihydrofuran

1.2 Other means of identification

Product number -
Other names 3,4-dihydrofuran

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:1708-29-8 SDS

1708-29-8Relevant articles and documents

FT Raman - A valuable tool for surveying kinetics in RCM of functionalized dienes

Ding, Fu,Yu, Baoyi,Monsaert, Stijn,Sun, Ya-Guang,Gao, Enjun,Dragutan, Ileana,Dragutan, Valerian,Verpoort, Francis

, p. 170 - 174 (2010)

In this article the suitability of FT Raman spectroscopy for monitoring kinetics of ring-closing metathesis promoted by the Grubbs' 1st generation precatalyst was demonstrated for the first time. Reactions at room temperature and under low catalyst loadings were carried out on a series of representative diene substrates. The time evolution of the characteristic Raman stretching vibrations unequivocally described the reaction progress allowing for precise calculation of the substrate conversion and of the yield in the expected cyclic product, based on the corresponding peak heights. The responsive Raman technique demonstrated clean RCM pathways for diethyl diallylmalonate and diallyl ether whereas a minor olefinic side-product was detected in the case of diallyl phthalate. The study provides essential underpinnings for future utilization of Raman spectroscopy, concurrently with NMR or supplementing it, for the evaluation of RCM reactions.

2,5,2′,5′-Tetrahydro[3,3′]bifuranyl. A novel heterocyclic system from 2-butene-1,4-diol [1]

Pyatnitsyna,El'chaninov,Lukyanov

, p. 1482 - 1483 (2006)

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Bidentate N,O-prolinate ruthenium benzylidene catalyst highly active in RCM of disubstituted dienes

Samec, Joseph S. M.,Grubbs, Robert H.

, p. 2826 - 2828 (2007)

The synthesis of a bidentate N,O-prolinate ruthenium benzylidene from commercially available starting materials and its activity in ring-closing metathesis of functionalized disubstituted dienes at 30°C is disclosed. The Royal Society of Chemistry.

Stepwise or Concerted Addition of 1,3-Butadiene to Oxygen Adsorbed on the Ag(110) Surface?

Schioett, Birgit,Joergensen, Karl Anker

, p. 10738 - 10741 (1993)

The interaction of 1,3-butadiene with atomically adsorbed oxygen on a Ag(110) surface is studied.Three different approaches of 1,3-butadiene to an oxygen atom that is adsorbed in the two-fold bridging site of the grooves on the Ag(110) surface are studied: a cheletropic 1,4-cycloaddition, an interaction with the terminal carbon, and an interaction with the internal carbon of the 1,3-butadiene.Extended Hueckel tight-binding calculations show that the interaction of one of the terminal carbons of 1,3-butadiene with the surface oxygen is favored.This intermediate shows a preference for a 1,4 ring closure reaction rather than a 1,2 ring closure reaction, leading to 2,5-dihydrofurane instead of vinyl epoxide.The interaction between the suggested intermediates and the Ag(110) surface as well as the bonding of different adsorbed products are analyzed and discussed in relation to the experimental results.

Bis(phenolato)molybdenum complexes as catalyst precursors for the deoxydehydration of biomass-derived polyols

Beckerle, Klaus,Sauer, Andreas,Spaniol, Thomas P.,Okuda, Jun

, p. 105 - 110 (2016)

Bio-based polyols can be converted to olefins and furan derivatives in one step by combined reduction and dehydration (deoxydehydration, DODH). A series of octahedral complexes of hexavalent molybdenum containing an (OSSO)-type bis(phenolate) ligand were prepared and structurally characterized. These complexes were screened as catalyst precursors for the deoxydehydration of anhydroerythritol using 3-octanol as reducing agent. Microwave heating allows a lower reaction temperature.

Olefin reaction in the catalyst and the olefin production

-

Paragraph 0109-0111; 0129-0132; 0134-0135; 0150, (2020/10/31)

PROBLEM TO BE SOLVED: To provide a catalyst for obtaining an olefin in high selectivity with a vicinal diol as a raw material.SOLUTION: A catalyst for olefination reaction for use in a reaction to produce an olefin by a reaction of a polyol, having two adjacent carbon atoms each having a hydroxy group, with hydrogen comprises: a carrier; at least one oxide selected from the group consisting of oxides of the group 6 elements and oxides of the group 7 elements supported on the carrier; and at least one metal selected from the group consisting of silver, iridium, and gold supported on the carrier.SELECTED DRAWING: None

Method for preparing olefin by catalyzing dehydration and deoxidation of polyhydroxy compound with organic molybdenum

-

Paragraph 0122; 0124-0125; 0136; 0138, (2020/07/02)

The invention discloses a method for preparing olefin by catalyzing dehydration and deoxidation of a polyhydroxy compound with organic molybdenum. The method comprises the following steps: reacting apolyhydroxy compound-containing raw material in the presence of an organic molybdenum-based catalyst to obtain olefin. According to the method, compounds containing nitrogen, sulfur, oxygen, phosphorus and other monodentate and polydentate coordination groups are used as organic ligands, and a series of organic molybdenum catalysts are prepared and used for catalyzing a deoxidation and dehydrationreaction of vicinal diol. The invention provides a cheap non-noble metal molybdenum-based catalyst, wherein the cost is greatly reduced.

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