Department of Chemical and Biomolecular Engineering (BK-21 Plus), Korea Advanced Institute of Science and Technology (KAIST) , 291 Daehak-ro, Yuseong-gu, Daejeon 305-701, Republic of Korea.
Department of Nano-Structured Materials Research, Korea National Nanofab Center , Daejeon, Republic of Korea.
Nano Lett. 2015 Nov 11;15(11):7273-80. doi: 10.1021/acs.nanolett.5b02355. Epub 2015 Oct 13.
Enhancement of the fluorescence intensity of quantum dot (QD)-polymer nanocomposite arrays is an important issue in QD studies because of the significant reduction of fluorescence signals of such arrays due to nonradiative processes in densely packed polymer chains in solid films. In this study, we enhance the fluorescence intensity of such arrays without significantly reducing their optical transparency. Enhanced fluorescence is achieved by hybridizing ultrathin plasmonic Au nanowalls onto the sidewalls of the arrays via single-step patterning and hybridization. The plasmonic Au nanowall induces metal-enhanced fluorescence, resulting in a maximum 7-fold enhancement of the fluorescence signals. We also prepare QD nanostructures of various shapes and sizes by controlling the dry etching time. In the near future, this facile approach can be used for fluorescence enhancement of colloidal QDs with plasmonic hybrid structures. Such structures can be used as optical substrates for imaging applications and for fabrication of QD-LED devices.
提高量子点(QD)-聚合物纳米复合阵列的荧光强度是 QD 研究中的一个重要问题,因为在固体薄膜中,由于密集堆积的聚合物链中的非辐射过程,这些阵列的荧光信号会显著降低。在这项研究中,我们在不显著降低其光学透明度的情况下增强了这种阵列的荧光强度。通过在阵列的侧壁上通过单步图案化和杂交来杂交超薄的等离子体 Au 纳米墙,实现了增强的荧光。等离子体 Au 纳米墙诱导金属增强荧光,导致荧光信号最大增强 7 倍。我们还通过控制干法刻蚀时间制备了各种形状和尺寸的 QD 纳米结构。在不久的将来,这种简便的方法可用于具有等离子体混合结构的胶体 QD 的荧光增强。这种结构可用作成像应用的光学衬底和 QD-LED 器件的制造。