• Title/Summary/Keyword: Mordant Yellow-12

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Photocatalytic Destruction of a Mordant Yellow-12 Using Rutile-$TiO_2$ (Rutile-$TiO_2$를 이용한 Mordant Yellow-12의 광촉매 분해반응)

  • Kim, Chang Suk;Choi, In Won
    • Analytical Science and Technology
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    • v.13 no.5
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    • pp.646-651
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    • 2000
  • The photocatalytic degradation of Mordant Yellow-12 (MY-12) was investigated using a UV-Visible Spectrophotometer and pH meter. The UV-Visible absorbance spectra of the MY-12 contaminated water before and after treatment were presented in figure. The decrease of absorbance occurs at the range of 250 and 450 nm, this result suggests that photocatalytic degradation involves destruction of the aromatic rings in this experiment. More than 32% of the MY-12 was decomposed after one hour in 26-W fluorescent lamp, whereas it was 17% and 24% respectively in 15-W and 21-W lamps. MY-12 was decomposed completely after three hours in 26-W fluorescent lamp. The destruction rate constants were calculated from the change of absorbance and pH.

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Dyeing of Tencel with Coptis chinensis Franch (황련에 의한 Tencel직물의 염색)

  • 배상경
    • Textile Coloration and Finishing
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    • v.12 no.5
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    • pp.288-294
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    • 2000
  • The dyeing of Tencel fabric with Coptis chinensis Franch was studied. The colorant was extracted with distilled water under various concentrations of dyestuff, times, mordants. UV-VIS spectra were obtained to find the maximum wavelength and absorbance of colorant. Tencel fabric was dyed with different mordants in pre and post-mordanting methods. Maximum wavelength of spectrum was 343 nm, and K/S value of pre-mordant was higher than post-mordant. Aluminium and stannic mordants changed color from yellow to blue-greenish and red-bluish. Colorfastnesses of light, and washing were low grade, but that of perspiration was increased.

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Dyeing Properties of Silk Fabric with Alnus Firma Extracts (오리나무 열매 추출물에 의한 견직물의 염색성 연구)

  • 손보현;장지혜
    • Journal of the Korean Home Economics Association
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    • v.40 no.12
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    • pp.109-118
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    • 2002
  • The Purpose of this study was to investigate dyeing properties and color fastness of Ainus firma sieb. et Zucc. Fruit, according to dyeing temperature, dyeing time, dyeing concentrations and various mordants. The results were as follows ; 1. The dyeabilities of the natural colorants extracted from Alnus firma fruit were investigated under various dyeing temperature, dyeing time and dyeing concentration. As a result, the optimum dyeing temperature, time and concentration of silk fabric with Alnus firma fruit were $60^{\circ}C$, 60min and 100%(o.w.f.) respectively. 2. Alnus firma fruit extract dyed reddish purple (RP hue) on the Fe-mordanted silk fabric. In the case of other mordants, silk fabrics dyed yellow (Y hue). 3. Generally, the light color fastness was relatively fair in the silk fabric dyed with the Alnus firma fruit and Fe mordant. The washing color fastness of color change of silk dyeings mordanted with Al, Sn showed 4 grade. However, the dry cleaning color fastness of the silk fabric was fastness was excellent. The rubbing color fastness showed 4 grade at the most of mordants except Cu.

A Study on the Stabitity and Dyeing Condition in the Curcuma Longa L. (울금의 색소 추출과 안정성에 관한 연구)

  • 소황옥
    • Journal of the Korean Society of Costume
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    • v.39
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    • pp.79-89
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    • 1998
  • This study was carried out the effect of stability and color extract for it's condition in the curcuma L.. dyeing. The stability is to investigate the absorbance of the curcumin, one of the major yellow pigments and the stability regarding the effect of light, oxygen temperature and pH. The dyeing condition is compared the effect of mordanting condition and the best way to extract pigment and analysed through the color-fastness rating, color-difference value test. The main results obtained are summarized as follows ; 1.The best and proper solvent to extrect curcumin pigment was a ethanol and a distilled water. 2. The light effect indicated that the absorbances of solution in absence of ligh was more stable. 3. The oxygen(O2) effect to curcumin show-ed that the condition in the absence of O2 was more stable than that in presence of O2 4. The temperature showed that the absorbnace was best stable in4$^{\circ}C$ and less changed at $25^{\circ}C$ 5. The curcumin-etanol solution was stable in pH 2~4. 6. Generally color-fastness rating to silk, wool and cotton indicated that crocking C.F. and perspiration C.F. were more than 3rd grade and dry cleaning C.F. was more than 4th grade. But light color-fastness and washing color-fastness were very poor. 7. To make good color fastness, the mordan-ting treated group and the pre-mordant conditions were more effective than others 8. When compared with color-difference value test indicated that the silk was looks like more reddish and bluish color and than the wool and cotton were greenish and bluish. As a mordant, A(C2H4OH(COOH3) and D(K2Cr2O7)were more effective to make green-ish color in the silk and the reddish color was abtained by B(Al.K(SO4)2.12H2O) and C(FeSO4.7H2O).

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Manufacture of Colored Hanji for Interior Materials from Natural Pigments (Part 1) - Manufacture of Super Eight Colors Changhoji - (천연색소를 이용한 건축내장용 색한지 제조 (제1보) - Super eight color 창호지의 제조-)

  • Jang, Hye-Mi;Nam, Hyun-Ju;Go, In-Hee;Choi, Tea-Ho
    • Journal of Korea Technical Association of The Pulp and Paper Industry
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    • v.43 no.1
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    • pp.36-46
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    • 2011
  • The purpose of this study was to manufacture colored Hanji for interior materials by combining color therapy and natural dyeing. To manufacture colored Changhoji for interior materials, seven species of dyestuff were selected as a results of preliminary natural dyeing. As mordants, 0.5% $AlK(SO_4)_2{\cdot}12H_20$ and 0.5% $Cu(CH_3COO)_2{\cdot}H_2O$ solution were used respectively. To estimate natural dyeing properties of Changhoji, the value of $L^*,\;a^*,\;b^*$ and Munsell HV/C were measured by spectrophotometer. The super eight colors produced as follows; red from safflower, orang from goldthread and gardenia, yellow from turmeric, green and turquoise from indigo and pagoda tree flower, violet and magenta from sappanwood, and blue from indigo.