Hapuarachchi Harini, Mallawaarachchi Sudaraka, Hattori Haroldo T, Zhu Weiren, Premaratne Malin
Advanced Computing and Simulation Laboratory (AχL), Department of Electrical and Computer Systems Engineering, Monash University, Clayton, Victoria 3800, Australia.
J Phys Condens Matter. 2018 Feb 7;30(5):054006. doi: 10.1088/1361-648X/aaa46d.
Recently, many have studied various configurations of metal nanoparticle-quantum dot (MNP-QD) hybrid molecules based on different metals and tunable parameters. In this paper, we aim to incite the interest in using MNP-QD nanohybrids, which possess sensing capabilities superior to those of the individual constituents, for sensing applications that rely on scattered light. When assessing whether a given MNP-QD configuration is suited for an application, sometimes it is hard to assess the pros and cons of a given configuration against other candidates. Here we propose a simple, elegant relative figure of merit (RFoM), which focuses on maximizing the scattered intensity and the refractive index sensitivity of the nanohybrid, to rank the suitability of viable MNP-QD configurations for a particular sensing application. We use the proposed RFoM to analyse the optical spectra of noble, transition, post transition and alkali metal based MNP-QD nanohybrids using the representative metals Au, Ag, Cu, Al and Na, adopting a generalized nonlocal optical response (GNOR) method based cavity QED approach. Based on our observations, we suggest how the usage of MNP-QD nanohybrids could improve the conventionally studied tumour targeting applications. Moreover, we propose potential substitutes for noble metals conventionally considered for MNP-QD nanohybrids.
最近,许多人基于不同的金属和可调参数研究了金属纳米颗粒-量子点(MNP-QD)杂化分子的各种构型。在本文中,我们旨在激发人们对使用MNP-QD纳米杂化物的兴趣,这种纳米杂化物具有优于单个组分的传感能力,可用于依赖散射光的传感应用。在评估给定的MNP-QD构型是否适用于某一应用时,有时很难评估给定构型相对于其他候选构型的优缺点。在此,我们提出了一个简单、精妙的品质因数(RFoM),其重点在于使纳米杂化物的散射强度和折射率灵敏度最大化,以对可行的MNP-QD构型在特定传感应用中的适用性进行排名。我们使用所提出的RFoM,采用基于广义非局部光学响应(GNOR)方法的腔量子电动力学方法,分析以贵金属、过渡金属、后过渡金属和碱金属为基础的MNP-QD纳米杂化物的光谱,其中使用代表性金属金、银、铜、铝和钠。基于我们的观察结果,我们提出了MNP-QD纳米杂化物的使用如何能够改进传统研究的肿瘤靶向应用。此外,我们还提出了通常用于MNP-QD纳米杂化物的贵金属的潜在替代物。