Freedman Barak, Bartal Guy, Segev Mordechai, Lifshitz Ron, Christodoulides Demetrios N, Fleischer Jason W
Physics Department and Solid State Institute, Technion-Israel Institute of Technology, Haifa 32000, Israel.
Nature. 2006 Apr 27;440(7088):1166-9. doi: 10.1038/nature04722.
Quasicrystals are unique structures with long-range order but no periodicity. Their properties have intrigued scientists ever since their discovery and initial theoretical analysis. The lack of periodicity excludes the possibility of describing quasicrystal structures with well-established analytical tools, including common notions like Brillouin zones and Bloch's theorem. New and unique features such as fractal-like band structures and 'phason' degrees of freedom are introduced. In general, it is very difficult to directly observe the evolution of electronic waves in solid-state atomic quasicrystals, or the dynamics of the structure itself. Here we use optical induction to create two-dimensional photonic quasicrystals, whose macroscopic nature allows us to explore wave transport phenomena. We demonstrate that light launched at different quasicrystal sites travels through the lattice in a way equivalent to quantum tunnelling of electrons in a quasiperiodic potential. At high intensity, lattice solitons are formed. Finally, we directly observe dislocation dynamics when crystal sites are allowed to interact with each other. Our experimental results apply not only to photonics, but also to other quasiperiodic systems such as matter waves in quasiperiodic traps, generic pattern-forming systems as in parametrically excited surface waves, liquid quasicrystals, and the more familiar atomic quasicrystals.
准晶体是具有长程有序但无周期性的独特结构。自其发现和初步理论分析以来,它们的特性一直吸引着科学家。缺乏周期性排除了用成熟的分析工具描述准晶体结构的可能性,这些工具包括布里渊区和布洛赫定理等常见概念。准晶体引入了诸如类分形能带结构和“相位子”自由度等新的独特特征。一般来说,直接观察固态原子准晶体中电子波的演化或结构本身的动力学是非常困难的。在这里,我们利用光感应来创建二维光子准晶体,其宏观性质使我们能够探索波传输现象。我们证明,在不同准晶体位置发射的光以类似于准周期势中电子的量子隧穿方式穿过晶格。在高强度下,会形成晶格孤子。最后,当允许晶体位置相互作用时,我们直接观察到位错动力学。我们的实验结果不仅适用于光子学,也适用于其他准周期系统,如准周期陷阱中的物质波、参数激励表面波中的一般图案形成系统、液态准晶体以及更为常见的原子准晶体。