Guo Tingbiao, Zhang Zhi, Lin Zijian, Tian Jiahan, Jin Yi, Evans Julian, Xu Yinghe, He Sailing
Centre for Optical and Electromagnetic Research, Enze-ZJU Joint Lab for MedEngInfo Collaborative Innovation, College of Optical Science and Engineering, Zhejiang University, Hangzhou, People's Republic of China.
Taizhou Institute of Medicine, Health and New Drug Clinical Research; Taizhou Enze Medical Center (Enze), Taizhou Hospital, Zhejiang University, Taizhou, People's Republic of China.
Nat Nanotechnol. 2024 Nov;19(11):1635-1643. doi: 10.1038/s41565-024-01756-5. Epub 2024 Aug 12.
Locally addressable nanophotonic devices are essential for modern applications such as light detection, optical imaging, beam steering and displays. Despite recent advances, a versatile solution with a high-speed tuning rate, long-life durability and programmability across multiple pixels remains elusive. Here we introduce a programmable nanophotonic matrix consisting of vanadium dioxide (VO) cavities on pixelated microheaters that meets all these requirements. The indirect Joule heating of these VO cavities can result in pronounced spectral modulation with colour changes and ensures exceptional endurance even after a million switching cycles. Precise control over the thermal dissipation power through a SiO layer of an optimized thickness on Si facilitates an ultrafast modulation rate exceeding 70 kHz. We demonstrated a video-rate nanophotonic colour display by electrically addressing a matrix of 12 × 12 pixels. Furthermore, inspired by the unique pixel-level programmability with multiple intermediate states of the spectral pixels, a spatiotemporal modulation concept is introduced for spectrum detection.
局部可寻址的纳米光子器件对于光探测、光学成像、光束转向和显示等现代应用至关重要。尽管最近取得了进展,但一种具有高速调谐速率、长寿命耐久性且可在多个像素上进行编程的通用解决方案仍然难以实现。在此,我们介绍一种由像素化微加热器上的二氧化钒(VO)腔组成的可编程纳米光子矩阵,它满足所有这些要求。这些VO腔的间接焦耳加热可导致明显的光谱调制并伴有颜色变化,即使在经历一百万次开关循环后仍能确保出色的耐久性。通过在硅上具有优化厚度的SiO层精确控制热耗散功率,有助于实现超过70kHz的超快调制速率。我们通过对一个12×12像素的矩阵进行电寻址,展示了视频速率的纳米光子彩色显示器。此外,受光谱像素具有多个中间状态的独特像素级可编程性的启发,引入了一种用于光谱检测的时空调制概念。