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存在随时间变化的微扰时软纳米系统中的电荷与热输运。

Charge and heat transport in soft nanosystems in the presence of time-dependent perturbations.

作者信息

Nocera Alberto, Perroni Carmine Antonio, Ramaglia Vincenzo Marigliano, Cataudella Vittorio

机构信息

Department of Physics, Northeastern University, Boston, MA 02115, USA.

CNR-SPIN and Department of Physics "Ettore Pancini", Universita' degli Studi di Napoli Federico II, Complesso Universitario Monte Sant'Angelo, Via Cintia, I-80126 Napoli, Italy.

出版信息

Beilstein J Nanotechnol. 2016 Mar 18;7:439-64. doi: 10.3762/bjnano.7.39. eCollection 2016.

Abstract

BACKGROUND

Soft nanosystems are electronic nanodevices, such as suspended carbon nanotubes or molecular junctions, whose transport properties are modulated by soft internal degrees of freedom, for example slow vibrational modes. Effects of the electron-vibration coupling on the charge and heat transport of soft nanoscopic systems are theoretically investigated in the presence of time-dependent perturbations, such as a forcing antenna or pumping terms between the leads and the nanosystem. A well-established approach valid for non-equilibrium adiabatic regimes is generalized to the case where external time-dependent perturbations are present. Then, a number of relevant applications of the method are reviewed for systems composed by a quantum dot (or molecule) described by a single electronic level coupled to a vibrational mode.

RESULTS

Before introducing time-dependent perturbations, the range of validity of the adiabatic approach is discussed showing that a very good agreement with the results of an exact quantum calculation is obtained in the limit of low level occupation. Then, we show that the interplay between the low frequency vibrational modes and the electronic degrees of freedom affects the thermoelectric properties within the linear response regime finding out that the phonon thermal conductance provides an important contribution to the figure of merit at room temperature. Our work has been stimulated by recent experimental results on carbon nanotube electromechanical devices working in the semiclassical regime (resonator frequencies in the megahertz range compared to an electronic hopping frequency of the order of tens of gigahertz) with extremely high quality factors. The nonlinear vibrational regime induced by the external antenna in such systems has been discussed within the non-perturbative adiabatic approach reproducing quantitatively the characteristic asymmetric shape of the current-frequency curves. Within the same set-up, we have proved that the antenna is able to pump sufficient charge close to the mechanical resonance making single-parameter adiabatic charge pumping feasible in carbon nanotube resonators. The pumping mechanism that we observe is different from that acting in the two parameter pumping and, instead, it is based on an important dynamic adjustment of the mechanical motion of the nanotube to the external drive in the weakly nonlinear regime. Finally, stochastic forces induced by quantum and thermal fluctuations due to the electron charging of the quantum dot are shown to affect in a significant way a Thouless charge pump realized with an elastically deformable quantum dot. In this case, the pumping mechanism is also shown to be magnified when the frequency of the external drive is resonant with the proper frequency of the deformable quantum dot. In this regime, the pumping current is not strongly reduced by the temperature, giving a measurable effect.

CONCLUSION

Aim of this review has been to discuss common features of different soft nanosystems under external drive. The most interesting effects induced by time-dependent perturbations are obtained when the external forcing is nearly resonant with the slow vibrational modes. Indeed, not only the external forcing can enhance the electronic response, but it also induces nonlinear regimes where the interplay between electronic and vibrational degrees of freedom plays a major role.

摘要

背景

软纳米系统是电子纳米器件,如悬浮碳纳米管或分子结,其输运特性由软内部自由度调制,例如慢振动模式。在存在随时间变化的微扰(如强迫天线或引线与纳米系统之间的泵浦项)的情况下,从理论上研究了电子 - 振动耦合对软纳米系统电荷和热输运的影响。一种适用于非平衡绝热区域的成熟方法被推广到存在外部随时间变化微扰的情况。然后,针对由单电子能级与振动模式耦合描述的量子点(或分子)组成的系统,回顾了该方法的一些相关应用。

结果

在引入随时间变化的微扰之前,讨论了绝热方法的有效性范围,表明在低能级占据极限下与精确量子计算结果取得了非常好的一致性。然后,我们表明低频振动模式与电子自由度之间的相互作用影响线性响应区域内的热电特性,发现声子热导率在室温下对品质因数有重要贡献。我们的工作受到了近期关于在半经典区域工作的碳纳米管机电装置的实验结果的启发(谐振器频率在兆赫兹范围内,而电子跳跃频率在几十吉赫兹量级),这些装置具有极高的品质因数。在非微扰绝热方法中讨论了外部天线在这种系统中诱导的非线性振动区域,定量地再现了电流 - 频率曲线的特征不对称形状。在相同的设置下,我们证明天线能够在接近机械共振时泵浦足够的电荷,使得单参数绝热电荷泵浦在碳纳米管谐振器中可行。我们观察到的泵浦机制不同于双参数泵浦中的机制,相反,它基于纳米管机械运动在弱非线性区域对外部驱动的重要动态调整。最后,由于量子点的电子充电引起的量子和热涨落所诱导的随机力被证明以显著方式影响用可弹性变形量子点实现的 Thouless 电荷泵。在这种情况下,当外部驱动频率与可变形量子点的适当频率共振时,泵浦机制也被证明会被放大。在这个区域,泵浦电流不会因温度而大幅降低,产生可测量的效应。

结论

本综述的目的是讨论外部驱动下不同软纳米系统的共同特征。当外部强迫与慢振动模式近乎共振时,可获得由随时间变化的微扰引起的最有趣的效应。实际上,外部强迫不仅可以增强电子响应,还会诱导非线性区域,其中电子和振动自由度之间的相互作用起着主要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4812/4901550/de20a4a9aa37/Beilstein_J_Nanotechnol-07-439-g002.jpg

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