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Fermi level-tuned optics of graphene for attocoulomb-scale quantification of electron transfer at single gold nanoparticles

机译:费米能级调谐的石墨烯光学显微镜用于单金纳米颗粒在电子库中的库仑级电子定量

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摘要

Measurement of electron transfer at single-molecule level is normally restricted by the detection limit of faraday current, currently in a picoampere to nanoampere range. Here we demonstrate a unique graphene-based electrochemical microscopy technique to make an advance in the detection limit. The optical signal of electron transfer arises from the Fermi level-tuned Rayleigh scattering of graphene, which is further enhanced by immobilized gold nanostars. Owing to the specific response to surface charged carriers, graphene-based electrochemical microscopy enables an attoampere-scale detection limit of faraday current at multiple individual gold nanoelectrodes simultaneously. Using the graphene-based electrochemical microscopy, we show the capability to quantitatively measure the attocoulomb-scale electron transfer in cytochrome c adsorbed at a single nanoelectrode. We anticipate the graphene-based electrochemical microscopy to be a potential electrochemical tool for in situ study of biological electron transfer process in organelles, for example the mitochondrial electron transfer, in consideration of the anti-interference ability to chemicals and organisms.
机译:单分子水平上电子转移的测量通常受到法拉第电流的检测极限的限制,目前在法拉电流至皮安培至纳安培的范围内。在这里,我们展示了一种独特的基于石墨烯的电化学显微镜技术,可提高检测限。电子转移的光信号来自费米能级对石墨烯的瑞利散射,固定化的金纳米星进一步增强了这种散射。由于对表面带电载流子的特定响应,基于石墨烯的电化学显微镜可以同时在多个单独的金纳米电极上对法拉第电流进行安培级检测极限。使用基于石墨烯的电化学显微镜,我们显示了定量测量吸附在单个纳米电极上的细胞色素c中的库仑级电子转移的能力。考虑到对化学物质和生物体的抗干扰能力,我们预计基于石墨烯的电化学显微镜将成为潜在的电化学工具,用于原位研究细胞器中生物电子转移过程,例如线粒体电子转移。

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