Alshehab Abdullah, Ismael Ali K
Physics Department, College of Science, King Faisal University Al Ahsa Saudi Arabia.
Department of Physics, Lancaster University Lancaster LA1 4YB UK
RSC Adv. 2023 Feb 17;13(9):5869-5873. doi: 10.1039/d3ra00019b. eCollection 2023 Feb 14.
This research presents comprehensive theoretical investigations of a series of alkane-based chains using four different terminal end groups including amine -NH, thiomethyl -SMe, thiol -SH and direct carbon contact -C. It is widely known that the electrical conductance of single molecules can be tuned and boosted by chemically varying their terminal groups to metal electrodes. Here, we demonstrate how different terminal groups affect alkane molecules' electrical conductance. In general, alkane chain conductance decreases exponentially with length, regardless of the anchor group types. In these simulations the molecular length varies from 3 to 8 -CH units, with 4 different linker groups; these simulations suggest that the conductances follow the order > > > . The DFT prediction order of the 4 anchors is well supported by STM measurements. This work demonstrates an excellent correlation between our simulations and experimental measurements, namely: the percent difference Δ, exponential decay slopes, constants and factors at different molecular alkane chain lengths.
本研究对一系列基于烷烃的链进行了全面的理论研究,这些链使用了四种不同的末端基团,包括胺基-NH、硫甲基-SMe、硫醇-SH和直接碳接触-C。众所周知,单分子的电导可以通过化学改变其与金属电极的末端基团来调节和增强。在这里,我们展示了不同的末端基团如何影响烷烃分子的电导。一般来说,无论锚定基团类型如何,烷烃链的电导都随长度呈指数下降。在这些模拟中,分子长度从3到8个-CH单元不等,有4种不同的连接基团;这些模拟表明,电导遵循的顺序为 > > > 。4种锚定基团的密度泛函理论(DFT)预测顺序得到了扫描隧道显微镜(STM)测量的有力支持。这项工作证明了我们的模拟与实验测量之间具有极好的相关性,即:在不同分子烷烃链长度下的百分比差异Δ、指数衰减斜率、常数和因子。