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通过可编程团簇组装制备各向异性单粒子量子点发射器。

Polarized Single-Particle Quantum Dot Emitters through Programmable Cluster Assembly.

机构信息

Center for Functional Nanomaterials , Brookhaven National Laboratory , Upton , New York 11973 , United States.

School of Science , Xi'an Jiaotong University , Xi'an 710049 , China.

出版信息

ACS Nano. 2020 Feb 25;14(2):1369-1378. doi: 10.1021/acsnano.9b06919. Epub 2019 Dec 31.

Abstract

Although fluorescence and lifetimes of nanoscale emitters can be manipulated by plasmonic materials, it is harder to control polarization due to strict requirements on emitter environments. An ability to engineer 3D nanoarchitectures with nanoscale precision is needed for controlled polarization of nanoscale emitters. Here, we show that prescribed 3D heterocluster architectures with polarized emission can be successfully assembled from nanoscale fluorescent emitters and metallic nanoparticles using DNA-based self-assembly methods. An octahedral DNA origami frame serves as a programmable scaffold for heterogeneous nanoparticle assembly into prescribed clusters. Internal space and external connections of the frames are programmed to coordinate spherical quantum dots (QDs) and gold nanoparticles (AuNPs) into heterocluster architectures through site-specific DNA encodings. We demonstrate and characterize assembly of these architectures using and structural methods. These cluster nanodevices exhibit polarized light emission with a plasmon-induced dipole along the QD-AuNP nanocluster axis, as observed by single-cluster optical probing. Moreover, emittance properties can be tuned via cluster design. Through a systematic study, we analyzed and established the correlation between cluster architecture, cluster orientation, and polarized emission at a single-emitter level. Excellent correspondence between the optical behavior of these clusters and theoretical predictions was observed. This approach provides the basis for rational creation of single-emitter 3D nanodevices with controllable polarization output using a highly customizable DNA assembly platform.

摘要

尽管等离子体材料可以操纵纳米级发射器的荧光和寿命,但由于对发射器环境的严格要求,更难控制其偏振。为了对纳米级发射器进行偏振控制,需要能够以纳米级精度设计具有三维纳米结构的能力。在这里,我们展示了使用基于 DNA 的自组装方法,可以成功地将具有偏振发射的预定三维杂化团簇结构从纳米级荧光发射器和金属纳米粒子组装而成。八面体 DNA 折纸框架可用作将异质纳米粒子组装成预定簇的可编程支架。框架的内部空间和外部连接通过特定于位置的 DNA 编码被编程为协调球形量子点(QD)和金纳米粒子(AuNP)进入杂化团簇结构。我们使用 和 结构方法演示和表征了这些结构的组装。这些纳米团簇器件表现出偏振光发射,其中等离子体诱导偶极子沿 QD-AuNP 纳米团簇轴,通过单团簇光学探测观察到。此外,通过团簇设计可以调整发射特性。通过系统研究,我们在单发射器水平上分析并建立了团簇结构、团簇取向和偏振发射之间的相关性。观察到这些团簇的光学行为与理论预测之间具有极好的一致性。这种方法为使用高度可定制的 DNA 组装平台,基于合理的创建具有可控偏振输出的单发射器三维纳米器件提供了基础。

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