Reimann Peter, Hanggi Peter
Universitat Augsburg, Memminger Str. 6, D-86135 Augsburg, Germany.
Chaos. 1998 Sep;8(3):629-642. doi: 10.1063/1.166345.
We investigate quantum Brownian motion sustained transport in both, adiabatically rocked ratchet systems and quantum stochastic resonance (QSR). Above a characteristic crossover temperature T(0) tunneling events are rare; yet they can considerably enhance the quantum-noise-driven particle current and the amplification of signal output in comparison to their classical counterparts. Below T(0) tunneling prevails, thus yielding characteristic novel quantum transport phenomena. For example, upon approaching T=0 the quantum current in Brownian motors exhibits a tunneling-induced reversal, and tends to a finite limit, while the classical result approaches zero without such a change of sign. As a consequence, similar current inversions generated by quantum effects follow upon variation of the particle mass or of its friction coefficient. Likewise, in this latter regime of very low temperatures the tunneling dynamics becomes increasingly coherent, thus suppressing the semiclassically predicted QSR. Moreover, nonadiabatic driving may cause driving-induced coherences and quantized resonant transitions with no classical analog. (c) 1998 American Institute of Physics.
我们研究了在绝热摇动棘轮系统和量子随机共振(QSR)中持续的量子布朗运动输运。高于特征交叉温度T(0)时,隧穿事件很少发生;然而,与经典对应物相比,它们可以显著增强量子噪声驱动的粒子电流和信号输出的放大。低于T(0)时,隧穿占主导,从而产生特征性的新型量子输运现象。例如,当接近T = 0时,布朗马达中的量子电流表现出隧穿诱导的反转,并趋于一个有限的极限,而经典结果则趋于零且没有这种符号变化。因此,随着粒子质量或其摩擦系数的变化,量子效应会产生类似的电流反转。同样,在这个非常低温度的后一种情况下,隧穿动力学变得越来越相干,从而抑制了半经典预测的QSR。此外,非绝热驱动可能会导致没有经典类似物的驱动诱导相干和量子化共振跃迁。(c)1998美国物理研究所。