Research article

Carbitol as adulterant in menthol; analytical method for quantitative analysis of adulteration

  • Received: 23 October 2019 Accepted: 25 February 2020 Published: 02 March 2020
  • India is the largest exporter of menthol, a highly valued natural volatile compound obtained from peppermint. However, natural plant menthol, which often found to be adulterated. The standard methods used for quantitative analysis of menthol are not good enough to identify certain adulterants. One of the commonly used adulterants in menthol is found to be carbitol which is nothing but diethylene glycol monoethyl ether or 2-(2-Ethoxyethoxy) ethanol. This adulterant cannot be detected properly with the gas chromatography method as prescribed in the IS (Indian Standards) 3134:1992 method for this purpose. The present paper deals with the development of a method using gas chromatography with mass spectrometry (GC-MS) which is easy and simple to determine adulteration of carbitol in menthol. It has been demonstrated that by using this method developed here can easily detect the presence of carbitol in menthol at a level as low as 1 μg/mL with linearity correlation coefficient >0.999 for the concentration range of 5.0 to 100 μg/mL. This method is found to be robust and easy to adapt.

    Citation: Indrajit Sen, Deepak Shrivastava, Manjeet Aggarwal, Rakesh Kumar Khandal. Carbitol as adulterant in menthol; analytical method for quantitative analysis of adulteration[J]. AIMS Agriculture and Food, 2020, 5(1): 129-136. doi: 10.3934/agrfood.2020.1.129

    Related Papers:

  • India is the largest exporter of menthol, a highly valued natural volatile compound obtained from peppermint. However, natural plant menthol, which often found to be adulterated. The standard methods used for quantitative analysis of menthol are not good enough to identify certain adulterants. One of the commonly used adulterants in menthol is found to be carbitol which is nothing but diethylene glycol monoethyl ether or 2-(2-Ethoxyethoxy) ethanol. This adulterant cannot be detected properly with the gas chromatography method as prescribed in the IS (Indian Standards) 3134:1992 method for this purpose. The present paper deals with the development of a method using gas chromatography with mass spectrometry (GC-MS) which is easy and simple to determine adulteration of carbitol in menthol. It has been demonstrated that by using this method developed here can easily detect the presence of carbitol in menthol at a level as low as 1 μg/mL with linearity correlation coefficient >0.999 for the concentration range of 5.0 to 100 μg/mL. This method is found to be robust and easy to adapt.


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    [1] Kamatou GPP, Vermaak I, Viljoen AM, et al. (2013) Menthol: A simple monoterpene with remarkable biological properties. Phytochemistry 96: 15-25. doi: 10.1016/j.phytochem.2013.08.005
    [2] Eccles R (1994) Menthol and related cooling compounds. J Pharm Pharmacol 46: 618-630. doi: 10.1111/j.2042-7158.1994.tb03871.x
    [3] El-Zaeddi H, Martínez-Tomé J, Calín-Sánchez Á, et al. (2016) Volatile composition of essential oils from different aromatic herbs grown in mediterranean regions of Spain. Foods 5: 41. doi: 10.3390/foods5020041
    [4] Yosipovitch G, Szolar C, Hui XY, et al. (1996) Effect of topically applied menthol on thermal, pain and itches sensations and biophysical properties of the skin. Arch Dermatol Res 288: 245-248. doi: 10.1007/BF02530092
    [5] Bureau of Indian Standard (1992) Menthol Specification. IS 3134:1992.
    [6] Garzoli S, Pirolli A, Vavala E, et al. (2015) Multidisciplinary approach to determine the optimal time and period for extracting the essential oil from Mentha suaveolens Ehrh. Molecules 20: 9640-9655. doi: 10.3390/molecules20069640
    [7] Ram M, Kumar S (2008) Yield and resource use optimization in late transplanted mint (Mentha arvensis) under subtropical conditions. J Agron Crop Sci 180: 109-112.
    [8] International conference on harmonization of technical requirements for registration of pharmaceuticals for human use (2015) ICH Harmonised Tripartite, Validation of Analytical Procedure: Test and Methodology Q2 (R1), Version 4, Nov. 2005.
    [9] Lin YT, Wu HL, Kou HS, et al. (2005) Enantiomeric analysis of (+)-menthol and (-)-menthol by fluorogenic derivatization and liquid chromatography. J Chromatogr A 1087: 223-228. doi: 10.1016/j.chroma.2005.01.056
    [10] Shaikh KA, Patil SD (2010) Sensitive and selective method for the analysis of menthol from pharmaceutical products by RP-HPLC with refractive index detector. J Pharm Bioallied Sci 2: 360-364. doi: 10.4103/0975-7406.72141
    [11] Li M, Nelson DL, Sporns P (1993) Determination of menthol in honey by gas chromatography. J AOAC Int 76: 1289-1295. doi: 10.1093/jaoac/76.6.1289
    [12] Abualhasan MN, Zaid AN, Jaradat N, et al. (2017) GC method validation for the analysis of menthol in suppository pharmaceutical dosage form. Int J Anal Chem 2017: 1-5.
    [13] Singh AK, Raina VK, Naqvi AA, et al. (2005) Essential oil composition and chemoarrays of menthol mint (Mentha arvensis L. f. piperascensMalinvaud ex. Holmes) cultivars. Flavour Fragr J 20: 302-305. doi: 10.1002/ffj.1417
    [14] Sharma V, Sharma N, Singh H, et al. (2009) Comparative account on GC-MS analysis of Mentha Arvensis L. "Cron Mint" from three different locations of north India. Int J Drug Dev Res 1: 1-9.
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