Duan Chengliang, Wang Bin, Li Jinpeng, Xu Jun, Zeng Jinsong, Li Jun, Zhao Zujin, Gao Wenhua, Ying Guangdong, Chen Kefu
Plant Fiber Material Science Research Center, State Key Laboratory of Pulp and Paper Engineering, School of Light Industry and Engineering, South China University of Technology, Wu Shan, Guangzhou, 510640, China.
Guangdong Provincial Key Laboratory of Plant Resources Biorefinery, Guangdong University of Technology, Guangzhou University City, Guangzhou, 510006, China.
Small. 2022 Dec;18(49):e2204199. doi: 10.1002/smll.202204199. Epub 2022 Oct 25.
Currently, the smart photonic materials that can switch circularly polarized signals in real-time have attracted extensive attention due to numerous potential applications in information storage and photonics displays. However, the dynamically reversible switching of circularly polarized signals requires precise structural reconfiguration, which is rarely achieved in traditional biomaterials. Herein, a dual photonic bandgap (PBG) structure is constructed based on the optical propagation principle of cellulose-based photonic crystals, enabling the flexible switching of the intensity, wavelength, and direction of circularly polarized luminescence (CPL). By adjusting the fluorescence intensity and the matching degree of chiral structure, the asymmetric factor value of dual PBG structure is up to -1.47, far exceeding other cellulose-based materials. Importantly, it is demonstrated that dual CPL emission can be efficiently induced by two different PBGs, opening a new approach for on-demand switching of single and dual CPL emission. In addition, the dual PBG structure exhibits dual circularly polarized reflected signals under the circular polarizer, which perfectly embodies the applicability of multiple encryptions in QR codes. This work provides new insights into the real-time manipulation of circularly polarized signals by chiral photonic materials.
目前,能够实时切换圆偏振信号的智能光子材料因其在信息存储和光子显示中的众多潜在应用而备受关注。然而,圆偏振信号的动态可逆切换需要精确的结构重构,这在传统生物材料中很少实现。在此,基于纤维素基光子晶体的光传播原理构建了一种双光子带隙(PBG)结构,能够灵活切换圆偏振发光(CPL)的强度、波长和方向。通过调节荧光强度和手性结构的匹配度,双PBG结构的不对称因子值高达-1.47,远远超过其他纤维素基材料。重要的是,证明了两种不同的PBG可以有效地诱导双CPL发射,为单CPL发射和双CPL发射的按需切换开辟了一条新途径。此外,双PBG结构在圆偏振器下表现出双圆偏振反射信号,完美体现了其在二维码多重加密中的适用性。这项工作为手性光子材料对圆偏振信号的实时操纵提供了新的见解。