TY - JOUR
T1 - Plasmonic Field-Guided Patterning of Hybrid Nanostructured Gratings for Their Plasmon-Mediated Optical Activities
AU - Huang, Xiaoping
AU - Zhao, Yizhe
AU - Wang, Ying
AU - Liu, Ziang
AU - Wang, Yucheng
AU - Sun, Jingbo
AU - Chen, Ruotong
AU - Yang, Zhenyuan
AU - Chen, Shizheng
AU - Guo, Yongxin
AU - Zhao, Qing
PY - 2023/12/22
Y1 - 2023/12/22
N2 - Combining the nano- and macroworlds in nanophotonics is always a great challenge for manufacturing uniform plasmonic nanogratings to achieve overall extraordinary optical properties. This work reports a method to apply large-area nanostructured gratings to tune the fluorescence behavior of quantum dots (QDs). The angle-resolved spectral measurements on the Ag NPs-based nanogratings show that the transverse electric (TE) polarized incident light has suffered very little scattering, demonstrating photon energy is coupled with plasmonic energy on the Ag NP-based lines. This plasmon-induced energy transferring effect was further used to tune the plasmon-induced QD fluorescence on the nanogratings. The QDs on Ag NP-based nanogratings, exhibiting up to 5 times higher photoluminescence (PL) intensity than that on a random Ag NP-based film, are carefully characterized using PL spectroscopy. In contrast, the bare QDs directly coupled onto the nanogratings. Spectral measurements in combination with numerical simulations demonstrate that anisotropic plasmon-induced energy transfer in the nanocomposite system plays a critical role in overall fluorescent tuning. Such nanogratings exhibit multifunctionality, offering an efficient way to fabricate plasmonic nanograting-QD composites with great potential applications in plasmonic sensors, QD displays, and fluorescent spectroscopy. © 2023 American Chemical Society.
AB - Combining the nano- and macroworlds in nanophotonics is always a great challenge for manufacturing uniform plasmonic nanogratings to achieve overall extraordinary optical properties. This work reports a method to apply large-area nanostructured gratings to tune the fluorescence behavior of quantum dots (QDs). The angle-resolved spectral measurements on the Ag NPs-based nanogratings show that the transverse electric (TE) polarized incident light has suffered very little scattering, demonstrating photon energy is coupled with plasmonic energy on the Ag NP-based lines. This plasmon-induced energy transferring effect was further used to tune the plasmon-induced QD fluorescence on the nanogratings. The QDs on Ag NP-based nanogratings, exhibiting up to 5 times higher photoluminescence (PL) intensity than that on a random Ag NP-based film, are carefully characterized using PL spectroscopy. In contrast, the bare QDs directly coupled onto the nanogratings. Spectral measurements in combination with numerical simulations demonstrate that anisotropic plasmon-induced energy transfer in the nanocomposite system plays a critical role in overall fluorescent tuning. Such nanogratings exhibit multifunctionality, offering an efficient way to fabricate plasmonic nanograting-QD composites with great potential applications in plasmonic sensors, QD displays, and fluorescent spectroscopy. © 2023 American Chemical Society.
KW - Ag NP-based nanogratings
KW - fluorescence tuning
KW - photoresponse enhancement
KW - quantum dots
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UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-85180076293&origin=recordpage
U2 - 10.1021/acsanm.3c04260
DO - 10.1021/acsanm.3c04260
M3 - RGC 21 - Publication in refereed journal
SN - 2574-0970
VL - 6
SP - 22907
EP - 22915
JO - ACS Applied Nano Materials
JF - ACS Applied Nano Materials
IS - 24
ER -