Badzey Robert L, Mohanty Pritiraj
Department of Physics, Boston University, 590 Commonwealth Avenue, Boston, Massachusetts 02215, USA.
Nature. 2005 Oct 13;437(7061):995-8. doi: 10.1038/nature04124.
Stochastic resonance is a counterintuitive concept: the addition of noise to a noisy system induces coherent amplification of its response. First suggested as a mechanism for the cyclic recurrence of ice ages, stochastic resonance has been seen in a wide variety of macroscopic physical systems: bistable ring lasers, superconducting quantum interference devices (SQUIDs), magnetoelastic ribbons and neurophysiological systems such as the receptors in crickets and crayfish. Although fundamentally important as a mechanism of coherent signal amplification, stochastic resonance has yet to be observed in nanoscale systems. Here we report the observation of stochastic resonance in bistable nanomechanical silicon oscillators. Our nanomechanical systems consist of beams that are clamped at each end and driven into transverse oscillation with the use of a radiofrequency source. Modulation of the source induces controllable switching of the beams between two stable, distinct states. We observe that the addition of white noise causes a marked amplification of the signal strength. Stochastic resonance in nanomechanical systems could have a function in the realization of controllable high-speed nanomechanical memory cells, and paves the way for exploring macroscopic quantum coherence and tunnelling.
向一个有噪声的系统中添加噪声会使其响应产生相干放大。随机共振最初被认为是冰河时代周期性重现的一种机制,现已在各种各样的宏观物理系统中被观察到:双稳态环形激光器、超导量子干涉器件(SQUIDs)、磁弹性带以及神经生理系统,如蟋蟀和小龙虾的感受器。尽管作为一种相干信号放大机制具有根本重要性,但随机共振在纳米尺度系统中尚未被观察到。在此,我们报告在双稳态纳米机械硅振荡器中观察到随机共振。我们的纳米机械系统由两端固定的梁组成,并利用射频源驱动其进行横向振荡。对源的调制会导致梁在两个稳定、不同的状态之间进行可控切换。我们观察到添加白噪声会使信号强度显著放大。纳米机械系统中的随机共振可能在实现可控高速纳米机械存储单元方面发挥作用,并为探索宏观量子相干和隧穿铺平道路。