Davoudiniya M, Mirabbaszadeh K
Department of Energy Engineering and Physics, Amirkabir University of Technology, 14588 Tehran, Iran.
Phys Chem Chem Phys. 2021 Dec 1;23(46):26285-26295. doi: 10.1039/d1cp03798f.
Tuning the physical properties of nanoribbons is increasing for real applications. We here focus on magnetic and electronic effects to contribute to this matter. We particularly investigate the effects of a Zeeman magnetic field and dilute charged impurities on the quantum transport properties of β-borophene nanoribbons (BNRs), both in the armchair and zigzag directions, by considering substrate effects. Calculations are done using the five-band tight-binding Hamiltonian, the Green's function approach (for density of states), the Landauer-Büttiker formalism (for quantum transport quantities), and the self-consistent Born approximation (for impurity effects). Our findings show that both electronic transmission probability and current-voltage characteristics of the system can be significantly adjusted in the presence of Zeeman splitting and charged dilute impuritiesy. Interestingly, the Zeeman splitting effect leads to an enhancement of the current that flows through the channel, whereas a reduction is observed in the electrical current of charged impurity-imbrued β-BNR. Moreover, through a detailed analysis of armchair and zigzag directions, we found that the transport characteristics of impurity-induced armchair β-BNRs are much more strongly tuned than those of zigzag ones. These results provide useful information for logic nanoelectronics.
对于实际应用而言,调节纳米带的物理性质变得越来越重要。我们在此聚焦于磁效应和电子效应,以助力解决这一问题。我们特别研究了塞曼磁场和稀带电杂质对扶手椅型和锯齿型β-硼烯纳米带(BNR)量子输运性质的影响,同时考虑了衬底效应。计算使用了五带紧束缚哈密顿量、格林函数方法(用于态密度)、朗道尔-布蒂克尔形式理论(用于量子输运量)以及自洽玻恩近似(用于杂质效应)。我们的研究结果表明,在存在塞曼分裂和带电稀杂质的情况下,系统的电子传输概率和电流-电压特性均可得到显著调节。有趣的是,塞曼分裂效应导致流经通道的电流增强,而在带电杂质掺杂的β-BNR中观察到电流减小。此外,通过对扶手椅型和锯齿型方向的详细分析,我们发现杂质诱导的扶手椅型β-BNR的输运特性比锯齿型的受调谐程度要强得多。这些结果为逻辑纳米电子学提供了有用信息。