• Title/Summary/Keyword: linalool

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A Study for the Standardization of Elsholtzia ciliata (Thunb.) Hylander and Elsholtzia splendens Nakai ex F. Maekawa

  • Yun, Jong-Seong;Lee, Sang-In;Rhee, Jae-Seong;Park, Ho-Koon
    • The Journal of Korean Medicine
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    • v.19 no.1
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    • pp.19-26
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    • 1998
  • The purpose of present study is to clarify the differences between EIslwitzia Ciliata (Thunb.) Hylander(향유) and Elsholtzia splendens Nakai ex F. Maekawa (꽃향유) for standardization and the proper usage as medicinal herbs. The major ingredients of both species were isolated by distillation and extraction. The qualitative and quantitative analyses of major distillates were carried out by the use of GC/MS. There was a significant difference between the components of Elsholtzia ciliata and Elsholtzia splendens in the aspects of major components. Several common ingredients were identified as linalool, cumene, elsholtzia ketone, naginata ketone isomer, naginata ketone, myristicin, and sesquiterpene alcohol. Comparison between Elsholtzia. ciliata and Elsholtzia splendens was done in the aspect of major compounds. Myristicin (33.7%) has been shown to be the major component in Elsholtzia ciliata whereas naginata ketone isomer (26.1%) was believed to be a major ingredient in Elsholtzia splendens. The elsholtzia ketone was also one of the major differentiating factors between Elsholtzia splendens and Elsholtzia ciliata, and the quantity is 15.1% in Elslwltzia splendens compared to 2.87% in Elsholtzia ciliata. Moreover, in the Elsholtzia splendens, 4- vinylguaiacol and isoosmorhizole were absent, but both compounds were present in the EIsholtzia ciliata.

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Analysis of Flavor Composition of Coriander Seeds by Headspace Mulberry Paper Bag Micro-Solid Phase Extraction

  • Cha, Eun-Ju;Won, Mi-Mi;Lee, Dong-Sun
    • Bulletin of the Korean Chemical Society
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    • v.30 no.11
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    • pp.2675-2679
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    • 2009
  • This paper reports the example of headspace mulberry paper bag micro solid phase extraction (HS-MPB-$\mu$-SPE) as a new sampling method for the determination of volatile flavor composition of coriander seeds. Adsorption efficiencies between two configurations of mulberry paper bag were compared, and several parameters affecting the HS-MPB-$\mu$-SPE were investigated and optimized. The optimized technique uses an adsorbent (Tenax TA, 0.1 mg) contained in a mulberry paper bag of front configuration where fine surface was outside, and minimal amount of organic solvent (0.6 mL). Linalool and $\gamma$-terpinene were found as abundant flavor compounds from coriander seeds. The limit of detection (LOD) and the limit of quantitation (LOQ) for linalool of major flavor in coriander seeds were 10.3 ng/mL and 34.4 ng/mL, respectively. The proposed method showed good reproducibility and good recovery. The HS-MPB-$\mu$-SPE is very simple to use, inexpensive, requires small sample amounts and solvent consumption. Because the solvent for extraction is reduced to only a very small volume, there is minimal waste or exposure to toxic organic solvent and no further concentration step.

The Effects of Stamping and Roasting Treatments on Volatile Aromatic Components in Curry Powder (미분쇄 및 배전처리가 카레분의 휘발성 향기성분의 변화에 미치는 영향)

  • Park, Wan-Kyu;Yoon, Jong-Hoon;Kim, Hyean-Wee;Choi, Chun-Un
    • Korean Journal of Food Science and Technology
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    • v.23 no.3
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    • pp.276-279
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    • 1991
  • Effects of stamping and roasting treatments on change of volatile aromatic components in curry powder were investigated by gas chromatography. These were conducted for improving volatile aromatic flavor and for improving aging effect. Major volatile aromatic components of curry powder were eugenol, cuminaldehyde, myristicin, anethole, eugenolacetate, cinnamaldehyde, linalool, limonene, p-cymene and ${\gamma}-terinene$. By stamping treatment, the content of low volatile components increased till 10 min, whereas that of high volatile components started to increase after 10 min. The content of low volatile components decreased with increasing roasting time.

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Volatile Flavor Components of Wild Chopi (Zanthoxylum piperitum De Candolle) Leaf (야생 초피(Zanthoxylum piperitum De Candolle)잎의 향기성분)

  • 박준희;차원섭;오상룡;조영제;이원영
    • The Korean Journal of Food And Nutrition
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    • v.13 no.5
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    • pp.483-489
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    • 2000
  • Wild Chopi leaves were harvested near Chounghwa Mt. Sangju city in Kyungpook province. Chopi leaves were dried naturally and crushed with and without blanching. From mechanical analysis(GC). fifty five peaks were identified as volatile materials in no blanching leaf. Among the fifty five peaks, twenty three peaks were identified as hydrocarbones(dodecane, sabinene, myrcene etc.), ten peaks as alcohols (isobutylalcohol. cis-pentenol, 1-pentenol, 1-penten-3-ol etc.), seven peaks as aldehydes (3-methylbua-tanal, hexanal, 2,6-dimethyl hept-5-al etc.), four peaks as ketones(3-hydroxy-2-butanone, 2-nonanone, 2-undecanone, 2-tridecanone) and six peaks as esters ( cis-3-hexenyl acetate, linalyl acetate. citronellyl acetate, nervy acetate etc.). Other peaks were founded as 3-cyano-2,5-dimethylpyrazine, dimethyl sulfide, chloroform, 1,8 cineole. Thirty five peaks were identified as volatile materials in blanching leaf. Twenty peaks were identified as hydrocarbones(1,1-oxybis-ethane, $\alpha$-pinene, camphene. myrcene, $\beta$-phellan-drene, $\beta$-caryophyllene etc.), as alcohol(L-linalool, (-)-isopulgerol, $\alpha$-terpineol. citronellol etc.), as aldehydes(nonanal, citronellal), as ketones(2-undecanone, 2-tridecanone etc.) and as esteres(citronellyl acetate. cis-3-hexenyl acetate, neryl acetate etc.). Other peaks were found as 3-cyano-2,5-dimethyl-pyrazine. The amount of volatile materials such as $\alpha$-pinene, myrcene, $\beta$-phellanderene, L-linalool, citronellal, citronellyl acetate, $\beta$-caryophyllene were detected abundantly among the volatile materials.

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Studies on Flavor Components of Commerical Korean Green Tea (한국산시판녹차(韓國産市販綠茶)의 향기성분(香氣成分)에 관(關)한 연구(硏究))

  • Choi, Sung-Hee
    • Korean Journal of Food Science and Technology
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    • v.23 no.1
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    • pp.98-101
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    • 1991
  • To investigate the aroma difference of commercial Korean green tea caused by manufacturing process and harvesting time, analysis of aroma concentrates of steamed green teas(1st tea, 2nd tea) and parched green teas(1st tea, 2nd tea) was accomplished. Steamed green tea, which had a briskness, greenish odor and sweet-floral odor, contained large amounts of terpene alcohols such as linalool, nerolidol, ketones such as cis-jasmone, 2,6,6-trimethyl-2-hydroxycyclohexanone and indole, Parched green tea, which had a slightly greenish odor and floral, roast odor, contained large amounts of terpene alcohols such as linalool, geraniol, aromatic alcohols such as benzylalcohol, phenylethanol and phenol, indole. Almost same tendency of odor component change of 1st tea and 2nd tea differed to harvesting time being observed in steamed tea and parched tea. In 2nd tea of both samples, aliphatic alcohols such as 1-penten-3-ol, cis-2-penten-1-al and two 2, 4-heptadienal(cis, trans and trans, trans) increased remarkably. It seems that these four components effects on the grade of the odor.

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Comparative Studies on the Aroma and Taste Components of Korean and Imported Kiwifruits (한국산 및 수입 양다래의 향미성분의 비교)

  • Kim, Jung-Min;Ko, Young-Su
    • Korean Journal of Food Science and Technology
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    • v.29 no.4
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    • pp.626-629
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    • 1997
  • This study was carried out to investigate the differences of aroma and taste components among three kinds of kiwifruits from Korea, New Zealand and California. The moisture contents, pH, titratable acidity, organic acid, free sugar and volatile aromas were compared. The free sugar and organic acid were measured simultaneously by GC. Volatile aromas were extracted by simultaneous distillation and extraction and analyzed by GC and GC/MS. The moisture contents, pH and titratable acidity showed almost no differences among the three samples. Among the organic acids, malic acid contents were different. Citric acid contents were similar level. Quinic acid in Korean kiwifruits was extremely low compared to other samples. The total sugar contents were similar in three kiwifruit groups. The composition of major flavor components such as ethyl butanoate, hexanal, propyl butanoate, ethyl pentanoate, 2-hexenal, hexanol, hexanal, linalool oxide, methyl benzoate were different among Korean, New Zealand and California Kiwifruits.

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Changes of Volatile Compounds in the Pericarp of Chopi (Zanthoxylum piperitum DC.) During Maturation (초피 과피의 성숙정도에 따른 향기성분의 변화)

  • ;;;;;;;;Ken C. Sink
    • Journal of Life Science
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    • v.13 no.2
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    • pp.206-213
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    • 2003
  • This study was conducted to estimate volatile compounds in pericarp of Zanthoxylum piperitum DC (Chopi). Chopi which harvested on lune 2, July 14 and September 11 in 2001 was dried at room temperature for one week. Fifty-two, 47, and 44 volatile compounds were analyzed with GC-MS in pericarp harvested on lune 2, July 14 and September 11, respectively. Eight terpenes including myrcene, ${\gamma}$-terpinene, $\alpha$-terpinolene, $\alpha$-phellandrene and $\beta$-caryophyllene were detected in pericarp harvested on tulle 2 and July 14, but not $\alpha$-phellandrene and $\beta$-caryophyllene in pericarp harvested on September 11. Thirteen alcohols or terpene alcohols including linalool L and citronellol were detected in pericarp harvested on lune 2, and added cis-linallol oxide and piperitol isomer in pericarp harvested on July 14 and September 11. Three aldehydes or terpene aldehydes were not affected by degree of maturation, but citronellal was increased in pericarp harvested on September 11. Five volatile compounds of ketones containing cryptone and piperitone were detected, and their concentration was changed during maturation. Six esters including lavandulyl acetate and $\alpha$-terpinenyl acetate were detected in pericarp harvested on lune 2, and [(E)-6,7-ephoxy-3,7-dimethyl-2-octenyl]ester of acetic acid was added in pericarp harvested on July 14 and September 11. Seven hydrocarbons including $\delta$-cadinene and neopentylidene cyclohexane were detected in pericarp harvested on June 2 and $\alpha$-muurolene was newly added in pericarp harvested on July 14 and September 11. We suggest that kinds and concentration of volatile compounds in pericarp were remarkably different from those in mature stage.

Volatile Flavor Compounds of Korean Native Lilium (한국 자생나리의 휘발성 향기성분)

  • Choi Sung-Hee;Im Sungim;Jang Eun-Young;Kim Kiu-Weon
    • Journal of Life Science
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    • v.15 no.4 s.71
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    • pp.548-552
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    • 2005
  • Volatile fragrance components in 5 kinds of Korean native Lilium were investigated and compared. The volatile components were extracted by SDE (simultaneous steam distillation and extraction) and identified by CC and GC-MS. As a result of the analysis of volatile aromatic ingredient of L. leichtlinii var. tigrinum Nickels., L. concolor var. parthneion Bak., L. tsingtauense Gilg., L. hansonii Leichtl., and L. amabile Palibin., using frozen materials, 60 kinds of volatile compound were identified, which were 28 aldehydes, 9 ketones, 8 alcohols, 5 esters, 5 acids, 3 furans and 2 others. The GC patterns of the aroma components of all samples resembled but the peak areas were different according to species, though all of them are Korean native Liliums.

A Study on the Volatile Change of Essential Oils Addition on to the Vegetable Fatty Acid Hard Soap (식물성 지방산 고형비누에 첨가된 에센셜오일의 휘발성 변화에 대한 연구)

  • Lee, Sung-Hee;Lee, Ki-Young
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.15 no.5
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    • pp.3304-3311
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    • 2014
  • In the saponification to manufacture plant fatty acid hard soap, the drying process is required for its water evaporation and hardness. This study mixed it with essential oil(E.O) with high volatility instead of adding synthetic flavor. And it comparatively observed the duration of flavor changing to the additive ($TiO_2$) and the drying period of the major flavor component (Linalool, Linalyl acetate) in the essential oil (Lavender E.O) contained in the soap during the soap manufacture by using GC-MS. Advanced researches have mostly dealt with the utility of plant hard soap, and those related with the volatility of flavor have been hardly conducted. Regarding the volatility of linalool contained in the soap, the soap mixed with $TiO_2$ showed a higher reduction ratio up to the 12th week; however, at the point of the 20th week, it reduced to a similar level. Although Linalyl acetate did indicate a slight difference according to the mixture of $TiO_2$, the volatility was shown similar up to the point of the 20th week. During the 20 weeks of drying, the residual rate of linalool was found to be higher than that of Linalyl acetate regardless of the mixture of $TiO_2$. It has been found that the flavor component of lavender essential oil with the duration of two or so days at the room temperature remains for 20 weeks (or 5 months) when it is manufactured through the mixture of plant fatty acid hard soap.

Change of the Volatile Organic Compounds from Irradiated Dried-Red Pepper (방사선 조사된 건고추의 휘발성 유기화합물 변화)

  • Shim Sung-Lye;Seo Hye-Young;Kim Jun-Hyeong;No Ki-Mi;Yang Su-Hyeong;Gyawali Rajendra;Park Eun-Ryong;Lee Kang-Bong;Lee Yun-Dong;Myoung Dong-Ho;Kim Kyong-Su
    • Food Science and Preservation
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    • v.12 no.4
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    • pp.372-378
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    • 2005
  • Compare with volatile organic compounds from unirradiated and irradiated dried-red pepper that is representative spice of korea. Volatile compounds from unirradiated and irradiated dried-red pepper were extracted using simultaneous distillation-extraction(SDE) apparatus and analyzed by Gas chromatography/mass spectrometer (GC/MS). A total of 61 and 62 compounds were identified from unirradiated and irradiated dried red pepper at dose of 10 kGy. These compounds included alcohols, aldehydes, furans, hydrocarbons, ketones, N-containing compounds, terpenes and micellaneous compounds. Furfural, benzaldehyde, linalool, nerolidol, ${\alpha}$-curcumene, ${\alpha}$-zingibirene were detected as the major volatile compounds from dried-red pepper. Specially, 1,3-bis[1,1-dimethylethyl]-benzene was confirmed as a marker of irradiated dried-red pepper because is not detected in unirraiatied dried-red pepper.