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内置电子棘爪门控轨道信息处理并控制双棘轮旋转电机的旋转。

An Inbuilt Electronic Pawl Gates Orbital Information Processing and Controls the Rotation of a Double Ratchet Rotary Motor.

作者信息

Singhania Anup, Chatterjee Satadru, Kalita Sudeshna, Saha Supriya, Chettri Prerna, Gayen Firdaus Rahaman, Saha Biswajit, Sahoo Pathik, Bandyopadhyay Anirban, Ghosh Subrata

机构信息

Natural Product Chemistry Group, Chemical Sciences & Technology Division, CSIR-North East Institute of Science & Technology, Jorhat 785006, Assam, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, India.

出版信息

ACS Appl Mater Interfaces. 2023 Mar 29;15(12):15595-15604. doi: 10.1021/acsami.3c01103. Epub 2023 Mar 16.

Abstract

A direct external input energy source (e.g., light, chemical reaction, redox potential, etc.) is compulsory to supply energy to rotary motors for accomplishing rotation around the axis. The stator leads the direction of rotation, and a sustainable rotation requires two mutual input energy supplies (e.g., light and heat, light and pH or metal ion, etc.); however, there are some exceptions (e.g., covalent single bond rotors and/or motors). On the contrary, our experiment suggested that double ratchet rotary motors (DRMs) can harvest power from available thermal noise, kT, for sustainable rotation around the axis. Under a scanning tunneling microscope, we have imaged live thermal noise movement as a dynamic orbital density and resolved the density diagram up to the second derivative. A second input energy can synchronize multiple rotors to afford a measurable output. Therefore, we hypothesized that rotation control in a DRM must be evolved from an orbital-level information transport channel between the two coupled rotors but was not limited to the second input energy. A DRM comprises a Brownian rotor and a power stroke rotor coupled to a -C≡C- stator, where the transport of information through coupled orbitals between the two rotors is termed the vibrational information flow chain (VIFC). We test this hypothesis by studying the DRM's density functional theory calculation and variable-temperature H nuclear magnetic resonance. Additionally, we introduced inbuilt pawl-like functional moieties into a DRM to create different electronic environments by changing proton intercalation interactions, which gated information processing through the VIFC. The results show the VIFC can critically impact the motor's noise harvesting, resulting in variable rotational motions in DRMs.

摘要

必须有一个直接的外部输入能源(如光、化学反应、氧化还原电位等)来为旋转电机提供能量,以实现绕轴旋转。定子引导旋转方向,持续旋转需要两种相互的输入能量供应(如光和热、光和pH值或金属离子等);然而,也有一些例外情况(如共价单键转子和/或电机)。相反,我们的实验表明,双棘轮旋转电机(DRM)可以从可用的热噪声kT中获取能量,以实现绕轴的持续旋转。在扫描隧道显微镜下,我们将实时热噪声运动成像为动态轨道密度,并解析出直至二阶导数的密度图。第二种输入能量可以使多个转子同步,以提供可测量的输出。因此,我们假设DRM中的旋转控制必须从两个耦合转子之间的轨道级信息传输通道演变而来,但不限于第二种输入能量。DRM由一个布朗转子和一个与-C≡C-定子耦合的动力冲程转子组成,其中通过两个转子之间的耦合轨道进行的信息传输被称为振动信息流链(VIFC)。我们通过研究DRM的密度泛函理论计算和变温H核磁共振来验证这一假设。此外,我们在DRM中引入了内置的棘爪状功能部分,通过改变质子嵌入相互作用来创建不同的电子环境,从而控制通过VIFC的信息处理。结果表明,VIFC可以严重影响电机的噪声收集,导致DRM中出现可变的旋转运动。

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