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따뜻한 백색 LED의 제조를 위한 Sr<sub>3</sub>SiO<sub>5</sub>:Eu<sup>2+</sup> 형광체에서의 융제 첨가 영향
김현호,정강섭,이승원,김병규,Kim, Hyun-Ho,Chung, Kang-Sup,Lee, Seoung-Won,Kim, Byoung-Gyu 한국세라믹학회 2012 한국세라믹학회지 Vol.49 No.1
In this paper, a yellow phosphor $Sr_3SiO_5:Eu^{2+}$ that emits efficiently at the 450 nm excitation for warm white LED is studied. In addition, the effects of various flux $BaF_2$, $NH_4Cl$ on the emission spectra were investigated. The samples were synthesized through conventional solid state reaction under reducing atmosphere of 95% $N_2$-5% $H_2$ mixture at the high temperature. All phosphors showed a excitation band from 450 nm and broad band emission peaking at region of 580 nm. The optimal concentration of $BaF_2$ flux is 3 wt% for $Sr_3SiO_5$ with doping 0.05mol Eu phosphors fired in a reductive atmosphere. The phosphor showed highest emission peaking at 582 nm.
이온교환형 리튬망간산화물의 리튬이온 용출특성 및 전자상태
김양수,정강섭,이재천,Kim, Yang-Soo,Chung, Kang-Sup,Lee, Jae-Chun 한국재료학회 2002 한국재료학회지 Vol.12 No.11
$Li^{+}$ extraction reactions with ion-exchange type lithium manganese oxide in an aqueous phase were examined using chemical and x-ray diffraction (XRD) analysis. In the process of extraction reaction, the lithium manganese oxide showed a topotactic extraction of $Li^{+ }$ in the aqueous phase mainly through an ion-exchange mechanism, and the $Li^{+}$ extracted samples indicated a high selectivity and a large capacity for $Li^{+}$ . The electronic structures and chemical bonding properties were also studied using a discrete variational (DV)-X$\alpha$ molecular orbital method with cluster model of (Li$Mn_{12}$ $O_{40}$ )$^{27-}$ for tetrahedral sites and ($Li_{7}$ Mn $O_{38}$ )$^{3}$ for octahedral site in $Li_{1.33}$ $Mn_{1.67}$ / $O_{4}$ respectively. Li in the manganese oxides is highly ionized in both sites, but the net charge of Li was greater for tetrahedral sites than octahedral. These calculations suggest that the tetrahedral sites have higher $Li^{+}$ $H^{+}$ exchangeability than the octahedral sites, and are preferable for the selective adsorption for L $i^{+}$ ions.s.
Au/Cu, Au/Ag 합금 나노 미립자의 합성과 광학적 성질
나혜진,이경철,유은아,정강섭,Na Hye Jin Na,Kyoung Chul Lee,Eun Ah Yoo,Kang Sup Chung 대한화학회 2003 대한화학회지 Vol.47 No.4
유기용매인 클로로포름 매질에서 소수성의 합금 나노 미립자를 만드는 새로운 방법에 대해 연구하였다. 소수성 합금 나노 미립자들은 계면활성제(sodium bis(2-ethyl hexyl)-sulfosuccinate, NaAOT)를 포함한 클로로포름 용액에 금속염 즉, $HAuCl_4,\AgNO_3,\Cu(NO_3)_2$을 사용하여 합금의 조성을 조절하여 혼합한 후 sodium borohydride $(NaBH_4)$로 환원시켜 합성하였다. Au/Ag, Au/Cu 합금 나노 미립자의 조성은 1:3, 1:1, 3:1의 몰비로 변화시키면서 합성하였다. UV/Visible, TEM, XPS를 사용하여 합금 나노 미립자의 특성을 측정하였다. Au/Cu 합금 나노 미립자의 표면 공명 흡수는 순수한 금인 경우의 최대흡수 파장인 520 nm에서 순수한 구리의 표면 공명 흡수인 570 nm까지 선형적으로 변하였고, Au/Ag 합금 나노 미립자는 순수한 은의 최대흡수 파장인 405 nm에서 순수한 금의 경우인 520 nm까지 선형적으로 변하였다. 합금 나노 미립자의 Au4f, Ag3d, Cu2p 전자의 구속 에너지는 합금의 조성 비율에 따라 달라지게 된다. 합성된 합금 나노 미립자들은 매우 균일하고 장시간 안정한 분산상태를 유지하였다. 이러한 결과로부터 본 연구에서 사용한 방법은 소수성의 합금 나노 미립자를 합성하는데 매우 효과적인 방법이라고 사료된다. In this study, a new method is presented to produce stable hydrophobic metal alloy nanocluster in chloroform solution including surfactant NaAOT(sodium bis(2-ethylhexyl)-sulfosuccinate) via the chemical reduction of metal salt $(HAuCl_4,\AgNO_3,\Cu(NO_3)_2)$ by sodium borohydride. For the alloy nanocluster, several samples were prepared by changing the molar ratio of Au/Cu, Au/Ag alloy nanocluster, 3:1, 1:1, 1:3. The alloy nanoclusters were characterized by UV-Visible spectrophotometer, TEM(Transmission Electron Microscope), and XPS(X-ray Photoelectron Spectrometer). With the change of the mole ratio of the alloy component, the wavelengths of the surface plasmon absorption shift linearly from 520 nm of the pure Au nanocluster to 570 nm of the pure Cu nanocluster for Au/Cu alloy nanoclusters and from 405 nm to 520 nm for Au/Ag alloy nanoclusters. The chemical shifts of the Au4f, Ag3d, Cu2p XPS peaks were observed with changing the molar ratio of the alloy element. The alloy nanoclusters in chloroform solution were made uniformly in size and colloidally stable for long periods of time. These results indicate that the method here is a very effective method for synthesizing hydrophobic alloy nanoclusters with uniform or nearly uniform particle size distribution.