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固态基板和低温条件下分子光子线转移效率的提高。

Increased Transfer Efficiency from Molecular Photonic Wires on Solid Substrates and Cryogenic Conditions.

作者信息

Díaz Sebastián A, Oliver Sean M, Hastman David A, Medintz Igor L, Vora Patrick M

机构信息

Center for Bio/Molecular Science and Engineering, Code 6900 , U.S. Naval Research Laboratory , Washington , D.C. 20375 , United States.

Department of Physics and Astronomy , George Mason University , Fairfax , Virginia 22030 , United States.

出版信息

J Phys Chem Lett. 2018 Jul 5;9(13):3654-3659. doi: 10.1021/acs.jpclett.8b00931. Epub 2018 Jun 20.

Abstract

Molecular photonic wires (MPWs) are tunable nanophotonic structures capable of capturing and directing light with high transfer efficiencies. DNA-based assembly techniques provide a simple and economical preparation method for MPWs that allows precise positioning of the molecular transfer components. Unfortunately, the longest DNA-based MPWs (∼30 nm) report only modest transfer efficiencies of ∼2% and have not been demonstrated on solid-state platforms. Here, we demonstrate that DNA-based MPWs can be spin-coated in a polymer matrix onto silicon wafers and exhibit a 5-fold increase in photonic transfer efficiency over solution-phase MPWs. Cooling these MPWs to 5 K led to further efficiency increases ranging from ∼40 to 240% depending on the length of the MPW. The improvement of MPW energy transport efficiencies advances prospects for their incorporation in a variety of optoelectronics technologies and makes them an ideal test bed for further exploration of nanoscale energy transfer.

摘要

分子光子线(MPW)是一种可调谐的纳米光子结构,能够以高传输效率捕获和引导光。基于DNA的组装技术为MPW提供了一种简单且经济的制备方法,该方法能够精确地定位分子传输组件。不幸的是,最长的基于DNA的MPW(约30纳米)的传输效率仅为约2%,且尚未在固态平台上得到验证。在这里,我们证明基于DNA的MPW可以旋涂在聚合物基质中到硅片上,并且与溶液相MPW相比,其光子传输效率提高了5倍。将这些MPW冷却到5K会导致效率进一步提高,提高幅度在约40%到240%之间,具体取决于MPW的长度。MPW能量传输效率的提高推动了其在各种光电子技术中应用的前景,并使其成为进一步探索纳米级能量转移的理想测试平台。

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Self-assembled quantum dot-sensitized multivalent DNA photonic wires.自组装量子点敏化的多价 DNA 光子线。
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