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m-Salicylic acid, also known as 3-hydroxybenzoic acid, is a chemical compound with the molecular formula C7H6O3. It is a derivative of salicylic acid and exhibits anti-inflammatory and analgesic properties. This white crystalline substance is widely used as an intermediate in the synthesis of pharmaceuticals and agrochemicals, as well as in skincare products for treating acne and other skin conditions. Additionally, it finds applications in the production of dyes, fragrances, and as a preservative in cosmetics and personal care products. Synthesized through the Kolbe-Schmitt reaction or by hydrolysis of methyl salicylate, m-salicylic acid is a versatile chemical with diverse industrial and medical uses.

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  • 99-06-9 Structure
  • Basic information

    1. Product Name: m-Salicylic acid
    2. Synonyms: Benzoicacid, m-hydroxy- (8CI);3-Carboxyphenol;
    3. CAS NO:99-06-9
    4. Molecular Formula: C7H6O3
    5. Molecular Weight: 152.14732
    6. EINECS: 202-726-5
    7. Product Categories: N/A
    8. Mol File: 99-06-9.mol
  • Chemical Properties

    1. Melting Point: 201-204℃
    2. Boiling Point: 346.1 °C at 760 mmHg
    3. Flash Point: 177.3 °C
    4. Appearance: white to light yellow crystal powder
    5. Density: 1.375 g/cm3
    6. Vapor Pressure: 2.24E-05mmHg at 25°C
    7. Refractive Index: N/A
    8. Storage Temp.: N/A
    9. Solubility: N/A
    10. PKA: 4.08±0.10(Predicted)
    11. Water Solubility: slightly soluble
    12. CAS DataBase Reference: m-Salicylic acid(CAS DataBase Reference)
    13. NIST Chemistry Reference: m-Salicylic acid(99-06-9)
    14. EPA Substance Registry System: m-Salicylic acid(99-06-9)
  • Safety Data

    1. Hazard Codes:  Xi:Irritant;
    2. Statements: R36/37/38:;
    3. Safety Statements: S26:; S37/39:;
    4. WGK Germany:
    5. RTECS:
    6. HazardClass: N/A
    7. PackingGroup: N/A
    8. Hazardous Substances Data: 99-06-9(Hazardous Substances Data)

99-06-9 Usage

Uses

Used in Pharmaceutical Industry:
m-Salicylic acid is used as an intermediate in the synthesis of various pharmaceuticals for its anti-inflammatory and analgesic properties, contributing to the development of medications that alleviate pain and reduce inflammation.
Used in Agrochemical Industry:
m-Salicylic acid serves as an intermediate in the production of agrochemicals, playing a crucial role in the development of compounds that protect crops and enhance agricultural productivity.
Used in Skincare Products:
m-Salicylic acid is used as an active ingredient in skincare products for its acne-treating capabilities, helping to reduce inflammation and unclog pores, thus improving the overall health and appearance of the skin.
Used in Cosmetics and Personal Care Products:
m-Salicylic acid is utilized as a preservative in cosmetics and personal care products, ensuring their stability and preventing microbial contamination, while also providing anti-inflammatory benefits to the skin.
Used in Dye and Fragrance Production:
m-Salicylic acid is employed in the production of dyes and fragrances, contributing to the color and scent characteristics of various consumer products.

Check Digit Verification of cas no

The CAS Registry Mumber 99-06-9 includes 5 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 2 digits, 9 and 9 respectively; the second part has 2 digits, 0 and 6 respectively.
Calculate Digit Verification of CAS Registry Number 99-06:
(4*9)+(3*9)+(2*0)+(1*6)=69
69 % 10 = 9
So 99-06-9 is a valid CAS Registry Number.
InChI:InChI=1/C7H6O3/c8-6-3-1-2-5(4-6)7(9)10/h1-4,8H,(H,9,10)/p-1

99-06-9 Well-known Company Product Price

  • Brand
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  • Alfa Aesar

  • (A13628)  3-Hydroxybenzoic acid, 99%   

  • 99-06-9

  • 100g

  • 440.0CNY

  • Detail
  • Alfa Aesar

  • (A13628)  3-Hydroxybenzoic acid, 99%   

  • 99-06-9

  • 500g

  • 1937.0CNY

  • Detail
  • Sigma-Aldrich

  • (36333)  3-Hydroxybenzoicacid  analytical standard

  • 99-06-9

  • 36333-100MG

  • 458.64CNY

  • Detail

99-06-9Relevant articles and documents

PHOTOCATALYTIC EFFECTS OF Fe(III) COMPOUNDS ON THE HYDROXYLATION OF BENZOIC ACID BY HYDROGEN PEROXIDE INITIATED BY 589 nm RADIATION AND SENSITIZED BY METHYLENE BLUE

Lunak, Stanislav,Sedlak, Petr,Brodilova, Jirina,Lederer, Pavel

, p. 2277 - 2280 (1989)

The hydroxylation of benzoic acid by hydrogen peroxide initiated by 589 nm radiation is catalyzed by the following Fe(III) compounds: FeCl3, K3, Na2, and K3.This photochemical reaction can be effectively sensitized by methylene blue.

EVIDENCE FOR THE FORMATION OF 1,3- AND 1,4-DEHYDROBENZENES IN THE THERMAL DECOMPOSITION OF DIARYLIODONIUM-CARBOXYLATES

Gavina, F.,Luis, S.V.,Safont, V.S.,Ferrer, P.,Costero, A.M.

, p. 4779 - 4782 (1986)

Generation of m- and p-benzynes in decomposition of diaryliodonium- 3- and 4-carboxylates is demonstrated by three-phase method.

Photocatalytic synthesis of phenols mediated by visible light using KI as catalyst

Huiqin, Wei,Wu, Mei

supporting information, (2021/11/30)

A transition-metal-free hydroxylation of iodoarenes to afford substituted phenols is described. The reaction is promoted by KI under white LED light irradiation and uses atmospheric oxygen as oxidant. By the use of triethylamine as base and solvent, the corresponding phenols are obtained in moderate to good yields. Mechanistic studies suggest that KI and catalysis synergistically promote the cleavage of C-I bond to form free aryl radicals.

MOF-Zn-NHC as an efficient N-heterocyclic carbene catalyst for aerobic oxidation of aldehydes to their corresponding carboxylic acids: Via a cooperative geminal anomeric based oxidation

Babaee, Saeed,Zarei, Mahmoud,Zolfigol, Mohammad Ali

, p. 36230 - 36236 (2021/12/02)

As an efficient heterogenous N-heterocyclic carbene (NHC) catalyst, MOF-Zn-NHC was used in the aerobic oxidation of aryl aldehydes to their corresponding carbocyclic acids via an anomeric based oxidation. Features such as mild reaction conditions and no need for a co-catalyst or oxidative reagent can be considered as the major advantages of the presented method in this study. This journal is

Efficiency of lithium cations in hydrolysis reactions of esters in aqueous tetrahydrofuran

Hayashi, Kazuhiko,Ichimaru, Yoshimi,Sugiura, Kirara,Maeda, Azusa,Harada, Yumi,Kojima, Yuki,Nakayama, Kanae,Imai, Masanori

, p. 581 - 594 (2021/06/06)

Lithium cations were observed to accelerate the hydrolysis of esters with hydroxides (KOH, NaOH, LiOH) in a water/tetrahydrofuran (THF) two-phase system. Yields in the hydrolysis of substituted benzoates and aliphatic esters using the various hydroxides were compared, and the effects of the addition of lithium salt were examined. Moreover, it was presumed that a certain amount of LiOH was dissolved in THF by the coordination of THF with lithium cation and hydrolyzed esters even in the THF layer, as in the reaction by a phase-transfer catalyst.

Cleavage of Carboxylic Esters by Aluminum and Iodine

Sang, Dayong,Yue, Huaxin,Fu, Yang,Tian, Juan

, p. 4254 - 4261 (2021/03/09)

A one-pot procedure for deprotecting carboxylic esters under nonhydrolytic conditions is described. Typical alkyl carboxylates are readily deblocked to the carboxylic acids by the action of aluminum powder and iodine in anhydrous acetonitrile. Cleavage of lactones affords the corresponding ω-iodoalkylcarboxylic acids. Aryl acetylates undergo deacetylation with the participation of the neighboring group. This method enables the selective cleavage of alkyl carboxylic esters in the presence of aryl esters.

Copper and L-(?)-quebrachitol catalyzed hydroxylation and amination of aryl halides under air

Bao, Xuefei,Chen, Guoliang,Dong, Jinhua,Du, Fangyu,Li, Hui,Liang, Xinjie,Wu, Ying,Zhang, Yongsheng

supporting information, (2020/08/03)

L-(?)-Quebrachitol, a natural product obtained from waste water of the rubber industry, was utilized as an efficient ligand for the copper-catalyzed hydroxylation and amination of aryl halides to selectively give phenols and aryl amines in water or 95percent ethanol. In addition, the hydroxylation of 2-chloro-4-hydroxybenzoic acid was validated on a 100-g scale under air.

Investigation of the requirements for efficient and selective cytochrome P450 monooxygenase catalysis across different reactions

Podgorski, Matthew N.,Coleman, Tom,Chao, Rebecca R.,De Voss, James J.,Bruning, John B.,Bell, Stephen G.

, (2019/11/22)

The cytochrome P450 metalloenzyme (CYP) CYP199A4 from Rhodopseudomonas palustris HaA2 catalyzes the highly efficient oxidation of para-substituted benzoic acids. Here we determined crystal structures of CYP199A4, and the binding and turnover parameters, with different meta-substituted benzoic acids in order to establish which criteria are important for efficient catalysis. When compared to the para isomers, the meta-substituted benzoic acids were less efficiently oxidized. For example, 3-formylbenzoic acid was oxidized with lower activity than the equivalent para isomer and 3-methoxybenzoic acid did not undergo O-demethylation by CYP199A4. The structural data highlighted that the meta-substituted benzoic acids bound in the enzyme active site in a modified position with incomplete loss of the distal water ligand of the heme moiety. However, for both sets of isomers the meta- or para-substituent pointed towards, and was in close proximity, to the heme iron. The absence of oxidation activity with 3-methoxybenzoic acid was assigned to the observation that the C[sbnd]H bonds of this molecule point away from the heme iron. In contrast, in the para isomer they are in an ideal location for abstraction. These findings were confirmed by using the bulkier 3-ethoxybenzoic acid as a substrate which removed the water ligand and reoriented the meta-substituent so that the methylene hydrogens pointed towards the heme, enabling more efficient oxidation. Overall we show relatively small changes in substrate structure and position in the active site can have a dramatic effect on the activity.

Reductive dehalogenation and dehalogenative sulfonation of phenols and heteroaromatics with sodium sulfite in an aqueous medium

Tomanová, Monika,Jedinák, Luká?,Canka?, Petr

supporting information, p. 2621 - 2628 (2019/06/03)

Prototropic tautomerism was used as a tool for the reductive dehalogenation of (hetero)aryl bromides and iodides, or dehalogenative sulfonation of (hetero)aryl chlorides and fluorides, using sodium sulfite as the sole reagent in an aqueous medium. This protocol does not require a metal or phase transfer catalyst and avoids using organic solvent as the reaction medium. This method is especially suitable for substrates that readily tautomerize (such as 2-or 4-halogenated aminophenols and 4-halogenated resorcinols), for which dehalogenation or sulfonation proceeds under mild reaction conditions (≤60 °C). As sodium sulfite is an inexpensive, safe, and environmentally less hazardous reagent, this method has at least three potential applications: (i) in the deprotection of halogens as protecting groups, using sodium sulfite as a reducing agent; (ii) in the sulfonation of aromatic halides under mild reaction conditions avoiding hazardous and corrosive reagents/solvents; and (iii) in the transformation of toxic halogenated aromatics into less harmful compounds.

Application of quebrachitol in hydrolysis reaction of copper-catalyzed aryl halide

-

Paragraph 0075-0077, (2019/07/16)

The invention belongs to the technical field of drug synthesis, and provides application of quebrachitol in a hydrolysis reaction of a copper-catalyzed aryl halide. According to the hydrolysis reaction, copper serves as a catalyst, quebrachitol serves as a ligand, and the hydrolysis reaction is carried out on the aryl halide. The invention further provides a catalytic system of the hydrolysis reaction of the aryl halide. The reaction system comprises the copper catalyst, the quebrachitol, alkali and water, and the system is environmentally friendly and is suitable for industrial application.

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