论文标题
与声学的非热时时间变化的超对称频率转化
Asymmetric frequency conversion with acoustic non-Hermitian space-time varying metamaterial
论文作者
论文摘要
时空调制的超材料支持非凡的丰富应用,例如参数放大,频率转换和非转录传输。但是,时空调制的实验实现是高度不平凡的,从理论上预测将在实验上证明许多有趣的物理学。在这里,基于提议的虚拟化超材料,具有软件定义的脉冲响应,我们通过实验性地意识到非官方时空变化的层压材料,以通过允许在时域量身定制和平衡材料增益和损失来实现高效和不对称的频率转换。在应用频率转换的应用中,时空变化的能力和非热度的组合使我们能够通过减损损失平衡来减少主频段,并同时提高侧带转换的效率。此外,我们的软件定义的超材料的方法可以灵活地实现具有设计能力的声学系统中量子干扰的类比。在不同原子之间应用附加的调制相延迟可以控制这种干扰以在频率转换中获得不对称的扩增。
Space-time modulated metamaterials support extraordinary rich applications, such as parametric amplification, frequency conversion and non-reciprocal transmission. However, experimental realization of space-time modulation is highly non-trivial, hindering many interesting physics that are theoretically predicted to be experimentally demonstrated. Here, based on the proposed virtualized metamaterials with software-defined impulse response, we experimentally realize non-Hermitian space-time varying metamaterials for efficient and asymmetric frequency conversion by allowing material gain and loss to be tailor-made and balanced in the time domain. In the application of frequency conversion, the combination of space-time varying capability and non-Hermiticity allows us to diminish the main band through gain-loss balance and to increase the efficiency of side band conversion at the same time. In addition, our approach of software-defined metamaterials is flexible to realize the analogy of quantum interference in an acoustic system with design capability. Applying an additional modulation phase delay between different atoms allows to control such interference to get asymmetric amplification in frequency conversion.