Agha Hakam, Geng Yong, Ma Xu, Avşar Deniz Işınsu, Kizhakidathazhath Rijeesh, Zhang Yan-Song, Tourani Ali, Bavle Hriday, Sanchez-Lopez Jose-Luis, Voos Holger, Schwartz Mathew, Lagerwall Jan P F
University of Luxembourg, Department of Physics & Materials Science, 1511, Luxembourg, Luxembourg.
University of Luxembourg, Interdisciplinary Centre for Security, Reliability and Trust (SnT), 1855, Luxembourg, Luxembourg.
Light Sci Appl. 2022 Oct 25;11(1):309. doi: 10.1038/s41377-022-01002-4.
The seemingly simple step of molding a cholesteric liquid crystal into spherical shape, yielding a Cholesteric Spherical Reflector (CSR), has profound optical consequences that open a range of opportunities for potentially transformative technologies. The chiral Bragg diffraction resulting from the helical self-assembly of cholesterics becomes omnidirectional in CSRs. This turns them into selective retroreflectors that are exceptionally easy to distinguish-regardless of background-by simple and low-cost machine vision, while at the same time they can be made largely imperceptible to human vision. This allows them to be distributed in human-populated environments, laid out in the form of QR-code-like markers that help robots and Augmented Reality (AR) devices to operate reliably, and to identify items in their surroundings. At the scale of individual CSRs, unpredictable features within each marker turn them into Physical Unclonable Functions (PUFs), of great value for secure authentication. Via the machines reading them, CSR markers can thus act as trustworthy yet unobtrusive links between the physical world (buildings, vehicles, packaging,…) and its digital twin computer representation. This opens opportunities to address pressing challenges in logistics and supply chain management, recycling and the circular economy, sustainable construction of the built environment, and many other fields of individual, societal and commercial importance.
将胆甾相液晶塑造成球形这一看似简单的步骤,产生了胆甾相球形反射器(CSR),其具有深远的光学影响,为潜在的变革性技术带来了一系列机遇。胆甾相的螺旋自组装所产生的手性布拉格衍射在CSR中变为全向性。这使它们成为选择性后向反射器,通过简单且低成本的机器视觉,无论背景如何都极易区分,同时它们在很大程度上又难以被人类视觉察觉。这使得它们能够分布在人口密集的环境中,以类似二维码标记的形式布置,帮助机器人和增强现实(AR)设备可靠运行,并识别周围的物品。在单个CSR的尺度上,每个标记内不可预测的特征使其成为物理不可克隆功能(PUF),对安全认证具有重要价值。通过读取它们的机器,CSR标记因此可以充当物理世界(建筑物、车辆、包装等)与其数字孪生计算机表示之间值得信赖但不显眼的链接。这为应对物流和供应链管理、回收利用和循环经济、建筑环境的可持续建设以及许多其他具有个人、社会和商业重要性的领域中的紧迫挑战提供了机会。