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Periodic energy decomposition analysis for electronic transport studies as a tool for atomic scale device manufacturing

机译:电子运输研究中的周期性能量分解分析,作为原子级设备制造的工具

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Atomic scale manufacturing is a necessity of the future to develop atomic scale devices with high precision.A different perspective of the quantum realm,which includes the tunnelling effect,leakage current at the atomic-scale,Coulomb blockade and Kondo effect,is inevitable for the fabrication and hence,the mass production of these devices.For these atomic-scale device development,molecular level devices must be fabricated.Proper theoretical studies could be an aid towards the experimental realities.Electronic transport studies are the basis to realise and interpret the problems happening at this minute scale.Keeping these in mind,we present a periodic energy decomposition analysis(pEDA)of two potential candidates for moletronics:phthalocyanines and porphyrins,by placing them over gold substrate cleaved at the(111)plane to study the adsorption and interaction at the interface and then,to study their application as a channel between two electrodes,thereby,providing a link between pEDA and electronic transport studies.pEDA provides information regarding the bond strength and the contribution of electrostatic energy,Pauli’s energy,orbital energy and the orbital interactions.Combining this analysis with electronic transport studies can provide novel directions for atomic/close-toatomic-scale manufacturing(ACSM).Literature survey shows that this is the first work which establishes a link between pEDA and electronic transport studies and a detailed pEDA study on the above stated molecules.The results show that among the molecules studied,porphyrins are more adsorbable over gold substrate and conducting across a molecular junction than phthalocyanines,even though both molecules show a similarity in adsorption and conduction when a terminal thiol linker is attached.A further observation establishes the importance of attractive terms,which includes interaction,orbital and electrostatic energies,in correlating the pEDA study with the transport properties.By progressing this research,further developments could be possible in atomic-scale manufacturing in the future.
机译:原子尺度制造是将未来开发具有高精度的原子尺度装置的必要性。量子领域的不同观点,包括隧道效应,原子尺度,库仑阻滞和kondo效应的漏电流是不可避免的因此,必须制造这些装置的批量生产。对于这些原子级装置的开发,必须制造分子水平装置.PRoper理论研究可能是对实验现实的援助。电子传输研究是实现和解释问题的基础在这种分钟的尺度上发生。在考虑到这些时,我们介绍了两个潜在候选的摩托车学的周期性能量分解分析(PEDA):酞菁和卟啉,通过将它们放置在(111)平面上切割的金基质,以研究吸附和接口的交互,然后,将应用应用于两个电极之间的频道,从而提供Peda之间的链接D电子传输研究.PEDA提供有关债券强度和静电能源的贡献的信息,Pauli的能量,轨道能量和轨道交互。随着电子传输研究的这种分析,可以为原子/近似尺度制造提供新颖的方向( ACSM).Literation调查表明,这是第一个在普及和电子传输研究之间建立联系的工作以及对上述陈述分子的详细的PEDA研究。结果表明,在研究的分子中,卟啉更具吸附于金基底和即使在连接末端硫醇接头时,在酞菁中显示出相似性的相似性也表现出具有相互作用,轨道和静电能量的相互作用,即使两个分子都表现出相似性的相似性。与运输特性研究。通过进展此重新搜索,在未来原子规模制造中可以进一步发展。

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