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How Effective is Plasmonic Enhancement of Colloidal Quantum Dots for Color‐Conversion Light‐Emitting Devices?

机译:胶体量子点的胶体量子点是如何有效的胶体量子点,用于颜色转换发光器件?

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Abstract > Enhancing the fluorescence intensity of colloidal quantum dots (QDs) in case of color‐conversion type QD light‐emitting devices (LEDs) is very significant due to the large loss of QDs and their quantum yields during fabrication processes, such as patterning and spin‐coating, and can therefore improve cost‐effectiveness. Understanding the enhancement process is crucial for the design of metallic nanostructure substrates for enhancing the fluorescence of colloidal QDs. In this work, improved color conversion of colloidal green and red QDs coupled with aluminum (Al) and silver (Ag) nanodisk (ND) arrays designed by in‐depth systematic finite‐difference time domain simulations of excitation, spontaneous emission, and quantum efficiency enhancement is reported. Calculated results of the overall photoluminescence enhancement factor in the substrate of 500 × 500 μm 2 size are 2.37‐fold and 2.82‐fold for Al ND‐green QD and Ag ND‐red QD structures, respectively. Experimental results are in good agreement, showing 2.26‐fold and 2.66‐fold enhancements for Al ND and Ag ND structures. Possible uses of plasmonics in cases such as white LED and total color conversion for possible display applications are discussed. The theoretical treatments and experiments shown in this work are a proof of principle for future studies of plasmonic enhancement of various light‐emitting materials. </abstract> </span> <span class="z_kbtn z_kbtnclass hoverxs" style="display: none;">展开▼</span> </div> <div class="translation abstracttxt"> <span class="zhankaihshouqi fivelineshidden" id="abstract"> <span>机译:</span><abstract xmlns =“http://www.wiley.com/namespaces/wiley”type =“main”xml:lang =“en”> <title type =“main”>抽象</ title> >增强在彩色转换型QD发光器件(LED)的情况下,胶体量子点(QDS)的荧光强度是由于QDS的大损失和它们在制造过程中的量子产量,例如图案化和旋转涂层时非常显着,因此可以提高成本效益。理解增强过程对于设计金属纳米结构基材来提高胶体QD的荧光至关重要。在这项工作中,改善了胶体绿色和红色QD的颜色转换与铝(Al)和银(Ag)纳米型敏感(ND)阵列进行了深入的系统有限差分时域模拟,激发,自发发射和量子效率报告了增强。计算出500×500μm 2 </ sup>尺寸的基板中的总光致发光增强因子的结果分别为Al Nd-Green QD和Ag Nd-Red QD结构的2.37倍和2.82倍。实验结果非常一致,为AL ND和AG ND结构显示2.26倍和2.66倍的增强。讨论了在诸如白光LED和可能显示应用的完全颜色转换的情况下的可能使用的血管用途。本作工作中所示的理论处理和实验是未来对各种发光材料提高等离子体增强的研究原则的证据。 </ p> </ abstract> </span> <span class="z_kbtn z_kbtnclass hoverxs" style="display: none;">展开▼</span> </div> </div> <div class="record"> <h2 class="all_title" id="enpatent33" >著录项</h2> <ul> <li> <span class="lefttit">来源</span> <div style="width: 86%;vertical-align: text-top;display: inline-block;"> <a href='/journal-foreign-28247/'>《Small》</a> <b style="margin: 0 2px;">|</b><span>2017年第48期</span><b style="margin: 0 2px;">|</b><span>共1页</span> </div> </li> <li> <div class="author"> <span class="lefttit">作者</span> <p id="fAuthorthree" class="threelineshidden zhankaihshouqi"> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=Park Hyun Chul&option=202" target="_blank" rel="nofollow">Park Hyun Chul;</a> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=Isnaeni&option=202" target="_blank" rel="nofollow">Isnaeni;</a> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=Gong Suhyun&option=202" target="_blank" rel="nofollow">Gong Suhyun;</a> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=Cho Yong‐Hoon&option=202" target="_blank" rel="nofollow">Cho Yong‐Hoon;</a> </p> <span class="z_kbtnclass z_kbtnclassall hoverxs" id="zkzz" style="display: none;">展开▼</span> </div> </li> <li> <div style="display: flex;"> <span class="lefttit">作者单位</span> <div style="position: relative;margin-left: 3px;max-width: 639px;"> <div class="threelineshidden zhankaihshouqi" id="fOrgthree"> <p>Graduate School of Nanoscience and TechnologyKorea Advanced Institute of Science and TechnologyYuseong‐gu Daejeon 34141 Republic of Korea;</p> <p>Department of PhysicsKorea Advanced Institute of Science and TechnologyYuseong‐gu Daejeon 34141 Republic of Korea;</p> <p>Department of PhysicsKorea Advanced Institute of Science and TechnologyYuseong‐gu Daejeon 34141 Republic of Korea;</p> <p>Department of PhysicsKorea Advanced Institute of Science and TechnologyYuseong‐gu Daejeon 34141 Republic of Korea;</p> </div> <span class="z_kbtnclass z_kbtnclassall hoverxs" id="zhdw" style="display: none;">展开▼</span> </div> </div> </li> <li > <span class="lefttit">收录信息</span> <span style="width: 86%;vertical-align: text-top;display: inline-block;"></span> </li> <li> <span class="lefttit">原文格式</span> <span>PDF</span> </li> <li> <span class="lefttit">正文语种</span> <span>eng</span> </li> <li> <span class="lefttit">中图分类</span> <span><a href="https://www.zhangqiaokeyan.com/clc/6960.html" title="特种结构材料">特种结构材料;</a></span> </li> <li class="antistop"> <span class="lefttit">关键词</span> <p style="width: 86%;vertical-align: text-top;"> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=colloidal quantum dots&option=203" rel="nofollow">colloidal quantum dots;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=finite‐difference time domains&option=203" rel="nofollow">finite‐difference time domains;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=localized surface plasmons&option=203" rel="nofollow">localized surface plasmons;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=metallic nanostructures&option=203" rel="nofollow">metallic nanostructures;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=plasmonics&option=203" rel="nofollow">plasmonics;</a> </p> <div class="translation"> 机译:胶体量子点;有限差分时间域;局部表面等离子体;金属纳米结构;血浆; </div> </li> </ul> </div> </div> <div class="literature cardcommon"> <div class="similarity "> <h3 class="all_title" id="enpatent66">相似文献</h3> <div class="similaritytab clearfix"> <ul> <li class="active" >外文文献</li> <li >中文文献</li> <li >专利</li> </ul> </div> <div class="similarity_details"> <ul > <li> <div> <b>1. </b><a class="enjiyixqcontent" href="/journal-foreign-detail/0704024267228.html">Plasmonics: How Effective is Plasmonic Enhancement of Colloidal Quantum Dots for Color‐Conversion Light‐Emitting Devices? 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