Condensed Matter Physics and Kavli Nanoscience Institute, California Institute of Technology , Pasadena, California 91125, United States.
Santa Fe Institute , 1399 Hyde Park Rd, Santa Fe, New Mexico 87501, United States.
Nano Lett. 2017 Oct 11;17(10):5977-5983. doi: 10.1021/acs.nanolett.7b02026. Epub 2017 Sep 21.
Control of the global parameters of complex networks has been explored experimentally in a variety of contexts. Yet, the more difficult prospect of realizing arbitrary network architectures, especially analog physical networks that provide dynamical control of individual nodes and edges, has remained elusive. Given the vast hierarchy of time scales involved, it also proves challenging to measure a complex network's full internal dynamics. These span from the fastest nodal dynamics to very slow epochs over which emergent global phenomena, including network synchronization and the manifestation of exotic steady states, eventually emerge. Here, we demonstrate an experimental system that satisfies these requirements. It is based upon modular, fully controllable, nonlinear radio frequency nanomechanical oscillators, designed to form the nodes of complex dynamical networks with edges of arbitrary topology. The dynamics of these oscillators and their surrounding network are analog and continuous-valued and can be fully interrogated in real time. They comprise a piezoelectric nanomechanical membrane resonator, which serves as the frequency-determining element within an electrical feedback circuit. This embodiment permits network interconnections entirely within the electrical domain and provides unprecedented node and edge control over a vast region of parameter space. Continuous measurement of the instantaneous amplitudes and phases of every constituent oscillator node are enabled, yielding full and detailed network data without reliance upon statistical quantities. We demonstrate the operation of this platform through the real-time capture of the dynamics of a three-node ring network as it evolves from the uncoupled state to full synchronization.
已经在各种环境下对复杂网络的全局参数进行了实验控制。然而,实现任意网络架构的更具挑战性的前景,特别是提供对各个节点和边的动态控制的模拟物理网络,仍然难以捉摸。鉴于所涉及的时间尺度的巨大层次结构,测量复杂网络的全部内部动态也极具挑战性。这些范围从最快的节点动态到非常缓慢的时期,在这些时期中,包括网络同步和奇异稳定状态的表现等新兴全局现象最终出现。在这里,我们展示了一个满足这些要求的实验系统。它基于模块化、完全可控、非线性射频纳米机械振荡器,旨在形成具有任意拓扑边缘的复杂动态网络的节点。这些振荡器及其周围网络的动力学是模拟的和连续值的,可以实时进行全面检测。它们由一个压电纳米机械膜谐振器组成,该谐振器用作电反馈电路中的频率确定元件。这种实施方式允许完全在电域内进行网络互连,并在广阔的参数空间中提供对节点和边缘的前所未有的控制。通过连续测量每个组成振荡器节点的瞬时幅度和相位,可以在不依赖于统计量的情况下实现完整和详细的网络数据。我们通过实时捕获从非耦合状态到完全同步的三节点环形网络的动力学,展示了这个平台的操作。