论文标题
非线性调制的语音晶格中的振幅依赖性边缘状态和离散呼吸器
Amplitude-dependent edge states and discrete breathers in nonlinear modulated phononic lattices
论文作者
论文摘要
我们研究了一维空间调制的非线性语音晶格的光谱特性,以及它们的演变作为振幅的函数。在线性状态下,刚度调制定义了一个周期性和准二体晶格家族,其带隙的宿主拓扑边缘状态位于有限域的边界。对于立方非线性,我们表明,随着幅度的增加,其特征值分支保持在差距之内的边缘状态,因此相对于振幅似乎很健壮。相比之下,相应分支接近批量带的边缘状态经历了脱位跃迁。这些过渡是通过对线性本征模的持续研究作为振幅函数进行的,并通过有限晶格上的直接时域模拟证实。通过我们的预测,我们还可以观察到一系列振幅诱导的定位转变,因为批量模式从非线性散装频带脱离,并成为离散的呼吸器,这些呼吸器位于该域的一个或多个区域中。值得注意的是,预测的过渡与有限晶格的尺寸无关,并且存在于周期性和准二体晶格中。这些结果突出了非线性调制晶格中拓扑边缘状态和离散呼吸器的共存。它们的相互作用可以用于振幅引起的本征态过渡,评估本地状态的稳健性以及通过振幅调整诱导离散呼吸器的策略。
We investigate the spectral properties of one-dimensional spatially modulated nonlinear phononic lattices, and their evolution as a function of amplitude. In the linear regime, the stiffness modulations define a family of periodic and quasiperiodic lattices whose bandgaps host topological edge states localized at the boundaries of finite domains. With cubic nonlinearities, we show that edge states whose eigenvalue branch remains within the gap as amplitude increases remain localized, and therefore appear to be robust with respect to amplitude. In contrast, edge states whose corresponding branch approaches the bulk bands experience de-localization transitions. These transitions are predicted through continuation studies on the linear eigenmodes as a function of amplitude, and are confirmed by direct time domain simulations on finite lattices. Through our predictions, we also observe a series of amplitude-induced localization transitions as the bulk modes detach from the nonlinear bulk bands and become discrete breathers that are localized in one or more regions of the domain. Remarkably, the predicted transitions are independent of the size of the finite lattice, and exist for both periodic and quasiperiodic lattices. These results highlight the co-existence of topological edge states and discrete breathers in nonlinear modulated lattices. Their interplay may be exploited for amplitude-induced eigenstate transitions, for the assessment of the robustness of localized states, and as a strategy to induce discrete breathers through amplitude tuning.