Liu Z, Zhang X, Mao Y, Zhu YY, Yang Z, Chan CT, Sheng P
Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.
Science. 2000 Sep 8;289(5485):1734-6. doi: 10.1126/science.289.5485.1734.
We have fabricated sonic crystals, based on the idea of localized resonant structures, that exhibit spectral gaps with a lattice constant two orders of magnitude smaller than the relevant wavelength. Disordered composites made from such localized resonant structures behave as a material with effective negative elastic constants and a total wave reflector within certain tunable sonic frequency ranges. A 2-centimeter slab of this composite material is shown to break the conventional mass-density law of sound transmission by one or more orders of magnitude at 400 hertz.
我们基于局域共振结构的理念制造出了声子晶体,其晶格常数比相关波长小两个数量级,却仍能展现出频谱带隙。由这种局域共振结构制成的无序复合材料,在某些可调节的声频范围内,表现得如同一种具有有效负弹性常数的材料以及全波反射器。一块两厘米厚的这种复合材料平板,在400赫兹时能使传统的声音传播质量密度定律失效一个或多个数量级。