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3-BENZO[1,3]DIOXOL-5-YL-PROPAN-1-OL is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

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  • 7031-03-0 Structure
  • Basic information

    1. Product Name: 3-BENZO[1,3]DIOXOL-5-YL-PROPAN-1-OL
    2. Synonyms: 3-BENZO[1,3]DIOXOL-5-YL-PROPAN-1-OL;1,3-Benzodioxole-5-propanol
    3. CAS NO:7031-03-0
    4. Molecular Formula: C10H12O3
    5. Molecular Weight: 180.20048
    6. EINECS: N/A
    7. Product Categories: N/A
    8. Mol File: 7031-03-0.mol
  • Chemical Properties

    1. Melting Point: N/A
    2. Boiling Point: 311.165°C at 760 mmHg
    3. Flash Point: 141.988°C
    4. Appearance: /
    5. Density: 1.222g/cm3
    6. Vapor Pressure: 0mmHg at 25°C
    7. Refractive Index: 1.567
    8. Storage Temp.: N/A
    9. Solubility: N/A
    10. CAS DataBase Reference: 3-BENZO[1,3]DIOXOL-5-YL-PROPAN-1-OL(CAS DataBase Reference)
    11. NIST Chemistry Reference: 3-BENZO[1,3]DIOXOL-5-YL-PROPAN-1-OL(7031-03-0)
    12. EPA Substance Registry System: 3-BENZO[1,3]DIOXOL-5-YL-PROPAN-1-OL(7031-03-0)
  • 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: 7031-03-0(Hazardous Substances Data)

7031-03-0 Usage

Synthesis Reference(s)

The Journal of Organic Chemistry, 54, p. 5930, 1989 DOI: 10.1021/jo00286a026

Check Digit Verification of cas no

The CAS Registry Mumber 7031-03-0 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 7,0,3 and 1 respectively; the second part has 2 digits, 0 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 7031-03:
(6*7)+(5*0)+(4*3)+(3*1)+(2*0)+(1*3)=60
60 % 10 = 0
So 7031-03-0 is a valid CAS Registry Number.
InChI:InChI=1/C10H12O3/c11-5-1-2-8-3-4-9-10(6-8)13-7-12-9/h3-4,6,11H,1-2,5,7H2

7031-03-0SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 16, 2017

Revision Date: Aug 16, 2017

1.Identification

1.1 GHS Product identifier

Product name 3-(1,3-benzodioxol-5-yl)propan-1-ol

1.2 Other means of identification

Product number -
Other names 1,3-Benzodioxole-5-propanol

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:7031-03-0 SDS

7031-03-0Relevant articles and documents

Biocatalytic reduction of α,β-unsaturated carboxylic acids to allylic alcohols

Aleku, Godwin A.,Leys, David,Roberts, George W.

, p. 3927 - 3939 (2020/07/09)

We have developed robust in vivo and in vitro biocatalytic systems that enable reduction of α,β-unsaturated carboxylic acids to allylic alcohols and their saturated analogues. These compounds are prevalent scaffolds in many industrial chemicals and pharmaceuticals. A substrate profiling study of a carboxylic acid reductase (CAR) investigating unexplored substrate space, such as benzo-fused (hetero)aromatic carboxylic acids and α,β-unsaturated carboxylic acids, revealed broad substrate tolerance and provided information on the reactivity patterns of these substrates. E. coli cells expressing a heterologous CAR were employed as a multi-step hydrogenation catalyst to convert a variety of α,β-unsaturated carboxylic acids to the corresponding saturated primary alcohols, affording up to >99percent conversion. This was supported by the broad substrate scope of E. coli endogenous alcohol dehydrogenase (ADH), as well as the unexpected CC bond reducing activity of E. coli cells. In addition, a broad range of benzofused (hetero)aromatic carboxylic acids were converted to the corresponding primary alcohols by the recombinant E. coli cells. An alternative one-pot in vitro two-enzyme system, consisting of CAR and glucose dehydrogenase (GDH), demonstrates promiscuous carbonyl reductase activity of GDH towards a wide range of unsaturated aldehydes. Hence, coupling CAR with a GDH-driven NADP(H) recycling system provides access to a variety of (hetero)aromatic primary alcohols and allylic alcohols from the parent carboxylates, in up to >99percent conversion. To demonstrate the applicability of these systems in preparative synthesis, we performed 100 mg scale biotransformations for the preparation of indole-3-aldehyde and 3-(naphthalen-1-yl)propan-1-ol using the whole-cell system, and cinnamyl alcohol using the in vitro system, affording up to 85percent isolated yield.

New polymer-supported organosilicon reagents

Fauvel, Anne,Deleuze, Herve,Landais, Yannick

, p. 3900 - 3910 (2007/10/03)

New polymer-supported organosilanes have been prepared using two different strategies. These involved the synthesis of soluble and insoluble supports through the copolymerization of styrene and monomers containing a thiophene ring. Selective metallation o

Spiro cyclisations of N-acyliminium ions involving an aromatic π-nucleophile

Bailey, Patrick D.,Morgan, Keith M.,Smith, David I.,Vernon, John M.

, p. 3369 - 3378 (2007/10/03)

Spiro 2-pyrrolidin-5-ones were obtained from N-substituted succinimides by a two-step procedure, involving 5- or 6-endo-trig cyclisation of N-acyliminium ion intermediates with a tethered aromatic π-nucleophile.

Sodium Perborate: A Mild and Convenient Reagent for Efficiently Oxidizing Organoboranes

Kabalka, George W.,Shoup, Timothy M.,Goudgaon, Naganna M.

, p. 5930 - 5933 (2007/10/02)

Sodium perborate, a readily available and inexpensive reagent, efficiently oxidizes organoboranes.The reagent permits the oxidation of a wide variety of functionally substituted organoboranes.In nearly every instance, the product yields exceed those obtained using standard oxidation procedures.

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