Haberal E O, SalmanOgli A, Nasseri B
Baskent University, Department of Biomedical Engineering, 06800, Ankara, Angora, Turkey.
Electrical Engineering Department, Tabriz University, 51666, Tabriz, Iran.
IET Nanobiotechnol. 2016 Oct;10(5):315-320. doi: 10.1049/iet-nbt.2015.0066.
In this article, a patch-clamp low noise current amplification based on nanoparticles plasmonic radiation is analyzed. It is well-known, a very small current is flowing from different membrane channels and so, for extra processing the current amplification is necessary. It is notable that there are some problems in traditional electronic amplifier due to its noise and bandwidth problem. Because of the important role of the patch-clamp current in cancer research and especially its small amplitude, it is vital to intensify it without adding any noises. In this study, the current amplification is performed firstly: from the excitement of nanoparticles by the patch-clamp pico-ampere current and then, the effect of nanoparticles plasmonic far-field radiation on conductor's carriers, which will cause the current amplification. This relates to the plasmonic-photonic coupling and their effect on conductor carriers as the current perturbation agent. In the steady state, the current amplification can reach to 1000 times of initial level. Furthermore, we investigated the nanoparticles morphology changing effect such as size, nanoparticles inter-distance, and nanoparticles distance from the conductor on the amplifier parameters. Finally, it should note that the original aim is to use nanoparticles plasmonic engineering and their coupling to photonics for output current manipulating.
本文分析了一种基于纳米颗粒等离子体辐射的膜片钳低噪声电流放大方法。众所周知,不同的膜通道中有非常小的电流在流动,因此,为了进行额外处理,电流放大是必要的。值得注意的是,传统电子放大器由于其噪声和带宽问题存在一些问题。由于膜片钳电流在癌症研究中的重要作用,特别是其小幅度,在不增加任何噪声的情况下对其进行放大至关重要。在本研究中,首先进行电流放大:通过膜片钳皮安电流激发纳米颗粒,然后,纳米颗粒等离子体远场辐射对导体载流子的影响,这将导致电流放大。这涉及等离子体-光子耦合及其作为电流微扰剂对导体载流子的影响。在稳态下,电流放大可以达到初始水平的1000倍。此外,我们研究了纳米颗粒形态变化的影响,如尺寸、纳米颗粒间距以及纳米颗粒与导体的距离对放大器参数的影响。最后,应该注意的是,最初的目的是利用纳米颗粒等离子体工程及其与光子学的耦合来操纵输出电流。