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氟化分子导线中的偶极噪声。

Dipolar Noise in Fluorinated Molecular Wires.

作者信息

Jung Mingyu, Shekhar Shashank, Cho Duckhyung, Yang Myungjae, Park Jeehye, Hong Seunghun

机构信息

Department of Physics and Astronomy, Seoul National University, Seoul 08826, Korea.

出版信息

Nanomaterials (Basel). 2022 Apr 16;12(8):1371. doi: 10.3390/nano12081371.

Abstract

We demonstrate a strategy to directly map and quantify the effects of dipole formation on electrical transports and noises in the self-assembled monolayers (SAMs) of molecular wires. In this method, the SAM patterns of fluorinated molecules with dipole moments were prepared on conducting substrates, and a conducting probe in contact-mode atomic force microscopy was utilized to map currents and noises through the probe on the molecular patterns. The maps were analyzed to extract the characteristic parameters of dipolar noises in SAMs, and the results were compared with those of hydrogenated molecular patterns without dipole moments. At rather low bias conditions, the fluorinated molecular junctions exhibited a tunneling conduction and a resistance value comparable to that of the hydrogenated molecules with a six-times-longer length, which was attributed to stronger dipoles formation in fluorinated molecules. Interestingly, conductance () in different regions of fluorinated molecular patterns exhibited a strong correlation with a noise power spectral density of / like / ∝ , which can be explained by enhanced barrier fluctuations produced by the dipoles of fluorinated molecules. Furthermore, we observed that the noise power spectral density of fluorinated molecules showed an anomalous frequency () dependence like / ∝ 1/, possibly due to the slowing down of the tunneling of carriers from increased barrier fluctuations. In rather high bias conditions, conductions in both hydrogenated and fluorinated molecules showed a transition from tunneling to thermionic charge transports. Our results provide important insights into the effects of dipoles on mesoscopic transport and resistance-fluctuation in molecules and could have a significant impact on the fundamental understanding and applications in this area.

摘要

我们展示了一种直接映射和量化偶极子形成对分子线自组装单分子层(SAMs)中电输运和噪声影响的策略。在该方法中,在导电基底上制备具有偶极矩的氟化分子的SAM图案,并利用接触模式原子力显微镜中的导电探针来映射通过分子图案上探针的电流和噪声。对这些图谱进行分析以提取SAMs中偶极噪声的特征参数,并将结果与没有偶极矩的氢化分子图案的结果进行比较。在相当低的偏置条件下,氟化分子结表现出隧穿传导,其电阻值与长度长六倍的氢化分子相当,这归因于氟化分子中更强的偶极子形成。有趣的是,氟化分子图案不同区域的电导()与噪声功率谱密度/表现出很强的相关性,如/∝,这可以用氟化分子偶极子产生的增强的势垒波动来解释。此外,我们观察到氟化分子的噪声功率谱密度表现出异常的频率()依赖性,如/∝1/,这可能是由于势垒波动增加导致载流子隧穿减慢。在相当高的偏置条件下,氢化和氟化分子中的传导都显示出从隧穿到热离子电荷输运的转变。我们的结果为偶极子对分子介观输运和电阻波动的影响提供了重要见解,并可能对该领域的基本理解和应用产生重大影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e96b/9031467/fecb9c5e00b3/nanomaterials-12-01371-g001.jpg

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