Zhao Jing, Wu Xianfeng, Zhang Doudou, Xu Xiaoting, Wang Xiaonong, Zhao Xiaopeng
Medtronic Plc, Boulder, CO, 80301, USA.
Smart Materials Laboratory, Department of Applied Physics, Northwestern Polytechnical University, Xi'an, 710129, P. R. China.
Nat Commun. 2024 Mar 23;15(1):2613. doi: 10.1038/s41467-024-46914-4.
Using the trapped rainbow effect to slow down or even stop light has been widely studied. However, high loss and energy leakage severely limited the development of rainbow devices. Here, we observed the negative Goos-Hänchen effect in film samples across the entire visible spectrum. We also discovered an amber rainbow ribbon and an optical black hole due to perfect back reflection in optical waveguides, where little light leaks out. Not only does the amber rainbow ribbon effect show an automatic frequency selection response, as predicted by single frequency theoretical models and confirmed by experiments, it also shows spatial periodic regulation, resulting from broadband omnidirectional visible metamaterials prepared by disordered assembly systems. This broadband light trapping system could play a crucial role in the fields of optical storage and information processing when being used to construct ultra-compact modulators and other tunable devices.
利用捕获彩虹效应来减慢甚至停止光的传播已得到广泛研究。然而,高损耗和能量泄漏严重限制了彩虹器件的发展。在此,我们在整个可见光谱范围内观察到了薄膜样品中的负古斯-汉欣效应。我们还发现了由于光波导中的完美背反射而产生的琥珀色彩虹带和光学黑洞,其中几乎没有光泄漏。琥珀色彩虹带效应不仅如单频理论模型所预测并经实验证实的那样显示出自动频率选择响应,还显示出由无序组装系统制备的宽带全向可见超材料所导致的空间周期性调控。当用于构建超紧凑型调制器和其他可调谐器件时,这种宽带光捕获系统在光存储和信息处理领域可能发挥关键作用。