• 文献标题:   Metallo-graphene enhanced upconversion luminescence for broadband photodetection under polychromatic illumination
  • 文献类型:   Article
  • 作  者:   GUPTA A, THAKUR MK, EFFENDI TA, CHEN RS, CHENG HY, LIN KH, BOURAS M, TOMAR DS, KUO HY, CHATTOPADHYAY S
  • 作者关键词:   upconversion nanoparticle, graphene, gold nanorod, fdtd, plasmonic photodetector, polychromatic illumination
  • 出版物名称:   CHEMICAL ENGINEERING JOURNAL
  • ISSN:   1385-8947 EI 1873-3212
  • 通讯作者地址:  
  • 被引频次:   9
  • DOI:   10.1016/j.cej.2020.127608 EA JUN 2021
  • 出版年:   2021

▎ 摘  要

We report electrostatically conjugated core- silica (SiO2) shell upconversion nanoparticle (UCNPs@SiO2), and gold nanorod (AuNR) nanocomposite (NC) combined with graphene to demonstrate > 200-fold UC fluorescence enhancement. Plasmonic AuNR and graphene, resulted in enhanced fluorescence in UCNP with a maximum for the SiO2 shell thickness of 7 nm supported by finite difference time domain simulation of electric field distribution. In addition to the conventionally reported spectroscopic evidence, the plasmon aided UC fluorescence enhancement was demonstrated by direct confocal fluorescence imaging also, which was corroborated by a similar to 40% decrease in fluorescence lifetime. Finally, we have fabricated a NC/graphene hybrid photodetector (PD) that showed broadband (455-980 nm) photoresponse, with photoresponsivity of similar to 5000 AW 1, and response times of 80-200 ms under 980 nm illumination. The multiphoton infrared (IR, similar to 980 nm) absorbing UCNPs also show interesting high energy (blue (B), green (G), and red (R)) photoresponse which is now conclusively attributed to one-photon absorption in the UCNPs. We report, probably for the first time, the performance of the hybrid PD under monochromatic and polychromatic illumination of B, G, R, B + G, B + R, G + R, and B + G + R, among others. The photocurrent under polychromatic conditions is dominated by the strongest monochromatic response, and does not scale with net power of the illumination. The loss in photocurrent is attributed to saturation in absorption, and photothermal heating. The fast response of the PD device has been demonstrated while detecting high frequency modulated AC remote controller signals, and attributed to the fast charge sweeping by the AuNRs.