Thakur Mukesh Kumar, Gupta Akash, Fakhri Muhammad Yusuf, Chen Ruei San, Wu Chien Ting, Lin Kung Hsuan, Chattopadhyay Surojit
Institute of Biophotonics, National Yang Ming University, 155, sec-2 Li Nong Street, Taipei 112, Taiwan.
Nanoscale. 2019 May 16;11(19):9716-9725. doi: 10.1039/c8nr10280e.
A hybrid upconversion nanoparticle (UCNP)-graphene composite is demonstrated as a high-sensitivity and high-gain photodetector. The 980 nm multiphoton absorbing UCNPs are used as the photoabsorber, and optimized graphene is used as an efficient charge transporter. Although this device class is in its infancy, we show how critical engineering of the UCNPs, with a silica (SiO2) shell, helps to couple it optically with graphene to get a superior device. This initial report of UCNP-graphene optical coupling is expressed as fluorescence enhancement/quenching of the former in the presence of the latter. While the published literature relies mostly on fluorescence quenching in the UCNPs, our devices use both fluorescence quenching (using core UCNPs), and enhancement (using UCNP@SiO2) to significantly enhance the detector parameters. For example, the photoresponsivity of the core-UCNP device was ∼1.52 × 104 A W-1 which could be improved to ∼2.7 × 104 A W-1 (at 980 nm, power density of ∼31.84 μW cm-2, and under a 1.0 V bias) with the UCNP@SiO2 device. The responsivity, gain, and detectivity thus obtained are the highest reported so far for this class of composite photodetectors. The device could detect signals from domestic hand-held appliances such as laser pointers, cellphone flashlights, and air-conditioning remotes. This work will further the knowledge of device photophysics in this class of hybrids.
一种混合上转换纳米颗粒(UCNP)-石墨烯复合材料被证明是一种高灵敏度、高增益的光电探测器。980nm多光子吸收的UCNP用作光吸收体,优化后的石墨烯用作高效电荷传输体。尽管这类器件尚处于起步阶段,但我们展示了带有二氧化硅(SiO2)壳层的UCNP的关键工程设计如何有助于使其与石墨烯进行光学耦合,从而获得性能优越的器件。UCNP-石墨烯光学耦合的这一初步报告表现为前者在后者存在时荧光增强/猝灭。虽然已发表的文献大多依赖于UCNP中的荧光猝灭,但我们的器件同时利用荧光猝灭(使用核心UCNP)和增强(使用UCNP@SiO2)来显著提高探测器参数。例如,核心UCNP器件的光响应度约为1.52×104 A W-1,而UCNP@SiO2器件在980nm、功率密度约为31.84μW cm-2且在1.0V偏压下时,光响应度可提高到约2.7×104 A W-1。由此获得的响应度、增益和探测率是迄今为止这类复合光电探测器中报道的最高值。该器件能够检测来自家用手持设备的信号,如激光笔、手机手电筒和空调遥控器。这项工作将增进对这类混合材料中器件光物理的认识。