Butscher Julian F, Hillebrandt Sabina, Mischok Andreas, Popczyk Anna, Booth Jonathan H H, Gather Malte C
Centre of Biophotonics, SUPA, School of Physics and Astronomy, University of St Andrews, St Andrews, UK.
Humboldt Centre for Nano- and Biophotonics, Department of Chemistry, University of Cologne, Cologne, Germany.
Sci Adv. 2024 Mar 8;10(10):eadm7613. doi: 10.1126/sciadv.adm7613. Epub 2024 Mar 6.
Compact wireless light sources are a fundamental building block for applications ranging from wireless displays to optical implants. However, their realization remains challenging because of constraints in miniaturization and the integration of power harvesting and light-emission technologies. Here, we introduce a strategy for a compact wirelessly powered light-source that consists of a magnetoelectric transducer serving as power source and substrate and an antiparallel pair of custom-designed organic light-emitting diodes. The devices operate at low-frequency ac magnetic fields (~100 kHz), which has the added benefit of allowing operation multiple centimeters deep inside watery environments. By tuning the device resonance frequency, it is possible to separately address multiple devices, e.g., to produce light of distinct colors, to address individual display pixels, or for clustered operation. By simultaneously offering small size, individual addressing, and compatibility with challenging environments, our devices pave the way for a multitude of applications in wireless displays, deep tissue treatment, sensing, and imaging.
紧凑型无线光源是从无线显示器到光学植入物等各种应用的基本组成部分。然而,由于在小型化以及能量收集与发光技术集成方面的限制,其实现仍然具有挑战性。在此,我们介绍一种紧凑型无线供电光源的策略,该光源由用作电源和基板的磁电换能器以及一对反向平行的定制设计有机发光二极管组成。这些器件在低频交流磁场(约100kHz)下运行,这还有额外的好处,即允许在水环境中深入数厘米进行操作。通过调整器件的共振频率,可以分别控制多个器件,例如产生不同颜色的光、控制单个显示像素或进行集群操作。通过同时具备小尺寸、单独控制以及与具有挑战性的环境的兼容性,我们的器件为无线显示器、深部组织治疗、传感和成像等众多应用铺平了道路。