论文标题
在芯片上可重构的纳米机电网络中的完美连贯转移
Perfect coherent transfer in an on-chip reconfigurable nanoelectromechanical network
论文作者
论文摘要
实现具有多个互动程度的可控网络是对物理和工程的挑战。在这里,我们通过实验性地报告了一个基于纳米机电谐振器的芯片可重构网络,该网络具有最近的邻居(NN)和下一新的邻居(NNN)强耦合。通过在同一芯片设备上应用不同的参数电压,我们在NN和NNN耦合阵列网络中进行完美的相干传输。此外,低损耗的谐振器确保所需的进化以实现完美的传递,并证明在传输循环时均衡相关的相位关系。 NNN耦合的实现证明了工程相干耦合的能力,超出了一个偶联夹紧的谐振器的简单模型。我们的可重构纳米机电网络提供了一个高度可调的物理平台,并提供了研究各种有趣现象的可能性,例如拓扑传输,网络同步以及超材料。
Realizing a controllable network with multiple degrees of interaction is a challenge to physics and engineering. Here, we experimentally report an on-chip reconfigurable network based on nanoelectromechanical resonators with nearest-neighbor (NN) and next-nearest-neighbor (NNN) strong couplings. By applying different parametric voltages on the same on-chip device, we carry out perfect coherent transfer in NN and NNN coupled array networks. Moreover, the low-loss resonators ensure the desired evolution to achieve perfect transfer and the demonstration of the parity-dependent phase relation at transmission cycles. The realization of NNN couplings demonstrates the capability of engineering coherent coupling beyond a simple model of a NN coupled array of doubly clamped resonators. Our reconfigurable nanoelectromechanical network provides a highly tunable physical platform and offers the possibilities of investigating various interesting phenomena, such as topological transport, synchronization of networks, as well as metamaterials.