• Title/Summary/Keyword: color and pigments

Search Result 421, Processing Time 0.032 seconds

Novel RGB Polymer Dispersed Liquid Crystal Display using Color Pigments.

  • Shim, S.H.;Choi, S.Y.;Baek, D.H.;Kim, W.;Choi, S.E.;Son, G.;Suh, D.H.;Choia, J.W.;Lee, J.Y.
    • 한국정보디스플레이학회:학술대회논문집
    • /
    • 2006.08a
    • /
    • pp.784-787
    • /
    • 2006
  • We have developed a RGB polymer dispersed liquid crystal film (RGB PDLC). To obtain the color display, color pigments are mixed in the prepolymer. We have presented an electro-optical performance of our cell and analyzed the electro optical properties for varying LC/ pre-polymer ratio and polymer type.

  • PDF

A Study on the Synthesis of Rutile - Type Ceramic Pigments (Rutile계 안료의 합성에 관한 연구)

  • Eo, Hye-Jin;Lee, Byung-Ha
    • Journal of the Korean Ceramic Society
    • /
    • v.48 no.2
    • /
    • pp.178-182
    • /
    • 2011
  • The Rutile - type brown pigments doped with chromium were synthesized. Samples of $Ti_{1-x}Cr_xO_2$ ($0.02{\leq}X{\leq}0.08$) were synthesized by the solid state method. Solid solution limit of Cr contents to the rutile structure and its coloration were studied. Optimum composition was investigated accordingly. The characteristics of synthesized pigments were analyzed by XRD, SEM, Raman spectroscopy and UV. As a result, single phase of Rutile was observed from $1000^{\circ}C$ by XRD. The maximum limit of solid solution was 0.06 mole $Cr_2O_3$. The glazed sample showed brown color, and the value of CIE $L^*a^*b^*$ was $L^*$ 33.27, $a^*$ 10.64, $b^*$ 20.84.

Comparison Study of Extraction Properties of Solids, Protein and Color Pigments of Several Soybean Varieties (콩 품종에 따른 고형분, 단백질, 색소의 추출 특성의 비교)

  • Kim, Dong-Hee;Kim, Seok-Dong;Kim, Woo-Jung
    • Applied Biological Chemistry
    • /
    • v.33 no.1
    • /
    • pp.8-13
    • /
    • 1990
  • The solid and protein yields and extraction properties of color pigments were compared for 7 varieties of soybeans during soaking in water at $4-100^{\circ}C$. The varieties investigated were Paldal, Danyeob, Jangbaek, Baegun, Jangyeob and 2 cultivars of Local 1 and Local 2. The Hunter values showed that Jangbaek was the highest in 'L' value while other varieties except Local 1 and Local 2 were comparatively high in 'L' value. Local 1 and Local 2 were low in 'b' value. The yields of solid and protein during water extraction showed that most of solids and proteins were recovered with three consecutive extractions. The cumulated yields were 73.2 % for solid and 83.2 % for protein. Extraction of color pigments of seed coats in $4-100^{\circ}C$ water showed that the extraction rate was very much dependent on extraction time and temperature. A linear relationship of A=aT+b was obtained for equilibrated absorbance(A) and extraction temperature(T). The activation energy calculated from initial extraction rate of cole. pigments and temperature had two different values of low($4-60^{\circ}C$) and high($60-100^{\circ}C$) temperature range.

  • PDF

Synthesis of ZnO-Al2O3-Cr2O3 System Pigments with CrCl3

  • Choi, Soo-Nyong;Lee, Byung-Ha
    • Journal of the Korean Ceramic Society
    • /
    • v.46 no.4
    • /
    • pp.372-378
    • /
    • 2009
  • The coloring agents $Cr_2O_3$ and $CrCl_3$ were manipulated in this study to synthesize ZnO-$Al_2O_3-Cr_2O_3$ system pigments by changing their mixing ratio. The addition of varying amounts of mineralizer was also tested to obtain better color development of the pink pigment. In the synthesis of ZnO- $Al(OH)_3-Cr_2O_3-CrCl_3$ pigments, the best composition is $Cr_2O_3$-0.1 mole and $CrCl_3$-0.2 mole when $Cr_2O_3$ is partially substituted with $CrCl_3$ to synthesize them. Among the $ZnAl_{1.6-x}Cr_{0.2+x}O_4$ compositions to which a mineralizer was not added, ZnO-1mole, $Al(OH)_3$-1.7 mole, $Cr_2O_3$-0.075 mole, and $CrCl_3$-0.15 mole showed a desirable pink hue. The measurements of pigments $L^*$, $a^*$ and $b^*$, were $L^*$ 81.81, $a^*$ 16.65 and $b^*$ 0.45, and when the synthesized pigments were applied to a zinc glaze, the measurements were $L^*$ 60.41, $a^*$ 28.39, and $b^*$ 16.97. When adding a mineralizer, a 2 wt% addition resulted in the most favorable pink color. The composition for the most favorable result that included a mineralizer was $Al(OH)_3$-1.8 mole, $Cr_2O_3$-0.05 mole, and $CrCl_3$-0.1 mole, and the calcination temperature was $1250^{\circ}C$. The pigment color analysis showed $L^*$ 82.52, $a^*$17.14 and $b^*$-1.18, and the measurements of $L^*$, $a^*$ and $b^*$ in the glaze were $L^*$ 60.97, $a^*$ 28.77 and $b^*$ 13.72.

Effect of Bi and Zr addition on yellow colour properties of environment-friendly ceria-based pigments (비스무스와 지르코늄 첨가를 통한 세리아계 친환경 노란색 안료 특성에 관한 연구)

  • Kim, Tae-Ho;Hwang, Hae-Jin;Kim, Jin-Ho;Hwang, Kwang-Taek;Han, Kyu-Sung
    • Journal of the Korean Crystal Growth and Crystal Technology
    • /
    • v.25 no.4
    • /
    • pp.153-159
    • /
    • 2015
  • Inorganic pigments have been received a great attention for various applications including paint, glazed ceramic ink, art tile, and building exterior due to their excellent thermal and chemical stability. Traditionally, the compositions of $PbCrO_4$, CdS and CdSe have been widely used as a yellow inorganic pigment. However, the use of these compositions has been restricted in recent years, because they contain harmful elements such as Cd, Cr, Pb and Se. In this study, new environment-friendly ceria-based pigment was synthesized using solid state reaction. Crystal structure and morphology of the obtained $Ce_{1-x}Zr_xBi_yO_{2-y/2}$ yellow pigment were analyzed using XRD and SEM, respectively. Substitutional effect of Zr and Bi on the pigment color was analyzed using UV-vis. spectrophotometer and CIE $L^*a^*b^*$ analysis. The crystal structure of the obtained pigments was dependent on the calcination temperature. The color characteristics and absorption band of the pigments were dependent on the calcination temperature and Zr, Bi contents. As a result, all the obtained yellow pigments showed the effective absorption ranged from ultraviolet to visible light, and $Ce_{0.44}Zr_{0.36}Bi_{0.20}O_{0.19}$ (x = 0.36, y = 0.20) pigment showed the most brilliant yellow color.

Properties of a Fish Surimi Mixture for Using Pigments from Laver Pyropia yezoensis (김(Pyropia yezoensis) 물 추출 천연 색소의 첨가에 의한 수리미 혼합물의 특성 변화)

  • Park, Ye-Lin;Han, Hyeon-Su;Kang, Yoo-Seok;Park, Jeong-Cheol;Seo, Hun-Seo;Choi, Ye-Hui;Kim, Su-Hyeong;Woo, Ka-Eun;Lee, Ga-Hye;Ahn, Dong-Hyun
    • Korean Journal of Fisheries and Aquatic Sciences
    • /
    • v.55 no.6
    • /
    • pp.802-807
    • /
    • 2022
  • We investigated the physical properties and color values of surimi mixtures with added natural red pigments from laver Pyropia yezoensis. After adding the natural red pigment from seaweed extract to surimi, the hardness, gumminess, and chewiness of the surimi decreased compared to the negative controls. The L* color value was lower for the surimi mixture than the negative controls, but the a* and b* color values were higher. After cold storage for 7 days, the unheated surimi mixture showed increased firmness, but decreased adhesiveness. Moreover, the gumminess and chewiness of the surimi mixture stored after heating were increased compared to the pre-storage values. These results indicate that seaweed extract pigments may be used as additives for surimi, to increase the color preference, with little effect on the physical properties.

Comparison of Pigments and Estimation of Production Period in Old and New Celestial Charts Folding Screens (신구법천문도 채색 안료 비교 및 제작시기 추정)

  • Oh, Joon Suk;Hwang, Min Young;Yamato, Asuka;Arai, Kei;Lee, Sae Rom
    • Journal of Conservation Science
    • /
    • v.36 no.5
    • /
    • pp.351-367
    • /
    • 2020
  • The pigments of three old and new celestial charts folding screens(『Celestial Chart(Folding Screen)』 and 『Old and New Celestial Charts, Eight-Panel Folding Screen』 of National Folk Museum of Korea and 『Koudou-Nanboku-Ryousouseizu』 of National Diet Library of Japan) were analyzed to estimate their dating. It was estimated that the 『Celestial Charts(Folding Screen)』 was painted using traditional pigments from the Joseon dynasty such as azurite, indigo lake, malachite, atacamite, vermilion, iron oxide, cochineal, gamboge, orpiment, lead white, talc and soot. The green and blue colors of the 『Old and New Celestial Charts, Eight-Panel Folding Screen』 and 『Koudou-Nanboku-Ryousouseizu』 were painted using artificial inorganic pigments such as emerald green and ultramarine blue. These pigments were imported from Europe post the mid-19th century. In the 『Old and New Celestial Chart, Eight-Panel Folding Screen』, only artificial inorganic pigments were used for green and blue colors. However in the 『Koudou-Nanboku-Ryousouseizu』, emerald green and atacamite in green color, and ultramarine blue and indigo lake in blue color were used together. Based on both the results of pigment analysis and the study of star charts and inscriptions, the 『Celestial Charts(Folding Screen)』 was painted post mid-18th century. The 『Koudou-Nanboku-Ryousouseizu』 and 『Old and New Celestial Charts, Eight-Panel Folding Screen』 were painted after green and blue artificial pigments were imported in the mid-19th century. The 『Koudou-Nanboku-Ryousouseizu』 in which both traditional and western artificial pigments were used, can be dated earlier than the 『Old and New Celestial Chart, Eight-Panel Folding Screen』.

Color Evolution and Phase Transformation of α-FeOOH@SiO2 and β-FeOOH@SiO2 pigments (SiO2가 코팅된 α-FeOOH와 β-FeOOH의 상전이를 통한 SiO2가 코팅된 α-Fe2O3의 색상 연구)

  • Yu, Ri;Choi, Kyoon;Pee, Jae-Hwan;Kim, YooJin
    • Journal of Powder Materials
    • /
    • v.20 no.3
    • /
    • pp.210-214
    • /
    • 2013
  • This manuscript reports on compared color evolution about phase transformation of ${\alpha}-FeOOH@SiO_2$ and ${\beta}-FeOOH@SiO_2$ pigments. Prepared ${\alpha}$-FeOOH and ${\beta}$-FeOOH were coated with silica for enhancing thermal properties and coloration of both samples. To study phase and color of ${\alpha}$-FeOOH and ${\beta}$-FeOOH, we prepared nano sized iron oxide hydroxide pigments which were coated with $SiO_2$ using tetraethylorthosilicate and cetyltrimethyl-ammonium bromide as a surface modifier. The silica-coated both samples were calcined at high temperatures (300, 700 and $1000^{\circ}C$) and characterized by scanning electron microscopy, CIE $L^*a^*b^*$ color parameter measurements, transmission electron microscopy and UV-vis spectroscopy. The yellow ${\alpha}$-FeOOH and ${\beta}$-FeOOH was transformed to ${\alpha}-Fe_2O_3$ with red, brown at 300, $700^{\circ}C$, respectively.

Manufacturing Method and Characteristics of the Dongrok(copper chloride) pigments (동록(염화동) 안료의 제조방법 및 특성에 관한 연구)

  • KANG Yeongseok;PARK Juhyun;MUN Seongwoo;HWANG Gahyun;KIM Myoungnam;LEE Sunmyung
    • Korean Journal of Heritage: History & Science
    • /
    • v.56 no.2
    • /
    • pp.148-169
    • /
    • 2023
  • Hayeob pigment is known as one of the traditional dark green pigments, but the color, raw material, and manufacturing method have not been clearly identified. However, comparing the analysis results of the particle shape and constituent minerals of Hayeob pigments revealed through pigment analysis studies of colored cultural properties such as Dancheong, Gwaebul, and paintings, Hayeob pigments appear to be the same as Dongrok pigments produced by salt corrosion. Therefore, in order to restore Hayeob pigment, the manufacturing method of Dongrok pigment was studied based on the records of old literature. The Dongrok pigment manufacturing method confirmed in the old literature records is a natural corrosion method in which copper powder and a caustic are mixed and then left in a humid condition to corrode. Based on this, artificial corrosion using a corrosion tester was adopted to corrode the copper powder more efficiently, and an appropriate mixing ratio was selected by analyzing the state of corrosion products according to the mixing ratio of the caustic agent. In addition, the manufacturing method of Dongrok pigment was established by adding a salt removal process to remove residual caustic agents and a purification process to increase chroma during pigment coloring. The prepared Dongrok pigments have a bluish green or green color, show an elliptical particle shape and a form in which small particles are aggregated, and a porous surface is observed. The main constituent elements are copper(Cu) and chlorine(Cl), and the main constituent mineral is identified as atacamite [Cu2Cl(OH)3]. As a result of an accelerated weathering test to evaluate the stability of the prepared Dongrok pigments, it was found that the greenness partially decreased and the yellowness significantly increased as deterioration progressed. Before deterioration, the Dongrok pigments had lower yellowness compared to the Hayeob pigments of the old Dancheong, but after deterioration, yellowness increased significantly, and it was found to have a similar chromaticity range as Dancheong's Hayeob pigments. As a result, the prepared Dongrok pigments were confirmed to be similar to Dancheong's Hayeob pigments in terms of color as well as particle shape and constituent minerals.

Coloration Study of Red/Yellow β-FeOOH Nanorod using NH4OH Solution (NH4OH를 이용한 적황색 β-FeOOH 나노로드 길이에 따른 색상제어 연구)

  • Yu, Ri;Kim, IllJoo;Yun, JiYeon;Choi, Eun-Young;Pee, Jae-Hwan;Kim, YooJin
    • Journal of Powder Materials
    • /
    • v.23 no.5
    • /
    • pp.343-347
    • /
    • 2016
  • Fe-based pigments have attracted much interest owing to their eco-friendliness. In particular, the color of nanosized pigments can be tuned by controlling their size and morphology. This study reports on the effect of length on the coloration of ${\beta}$-FeOOH pigments prepared using an $NH_4OH$ solution. First, rod-type ${\beta}$-FeOOH is prepared by the hydrolysis of $FeCl_3{\cdot}6H_2O$ and $NH_4OH$. When the amount of $NH_4OH$ is increased, the length of the rods decreases. Thus, the length of the nanorods can be adjusted from 10 nm to 300 nm. The color of ${\beta}$-FeOOH changes from orangered to yellow depending on the length of ${\beta}$-FeOOH. The color and phase structure of ${\beta}$-FeOOH is characterized by UV-vis spectroscopy, CIE Lab color parameter measurements, transmission electron microscopy (TEM), scanning electron microscopy (SEM), and powder X-ray diffraction (XRD).