Xing Chang, Zhou Bo, Yan Dongpeng, Fang Wei-Hai
Key Laboratory of Theoretical and Computational Photochemistry, Ministry of Education, College of Chemistry, Beijing Normal University, Beijing, 100875, P. R. China.
Adv Sci (Weinh). 2024 May;11(17):e2310262. doi: 10.1002/advs.202310262. Epub 2024 Feb 29.
Ensuring information security has emerged as a paramount concern in contemporary human society. Substantial advancements in this regard can be achieved by leveraging photonic signals as the primary information carriers, utilizing photonic logical gates capable of wavelength tunability across various time and spatial domains. However, the challenge remains in the rational design of materials possessing space-time-color multiple-resolution capabilities. In this work, a facile approach is proposed for crafting metal-organic halides (MOHs) that offer space-time-color resolution. These MOHs integrate time-resolved room temperature phosphorescence and color-resolved excitation wavelength dependencies with both space-resolved ex situ optical waveguides and in situ heterojunctions. Capitalizing on these multifaceted properties, MOHs-based two-dimensional (2D) optical waveguides and heterojunctions exhibit the ability to tune full-color emissions across the spectra from blue to red, operating within different spatial and temporal scales. Therefore, this work introduces an effective methodology for engineering space-time-color resolved MOH microstructures, holding significant promise for the development of high-density photonic logical devices.
确保信息安全已成为当代人类社会的首要关注点。在这方面,可以通过利用光子信号作为主要信息载体,并利用能够在不同时间和空间域实现波长可调谐的光子逻辑门来取得重大进展。然而,在合理设计具有时空色多分辨率能力的材料方面仍存在挑战。在这项工作中,提出了一种简便的方法来制备具有时空色分辨率的金属有机卤化物(MOH)。这些MOH将时间分辨的室温磷光和颜色分辨的激发波长依赖性与空间分辨的非原位光波导和原位异质结相结合。利用这些多方面的特性,基于MOH的二维(2D)光波导和异质结能够在不同的空间和时间尺度内,对从蓝色到红色光谱范围内的全色发射进行调谐。因此,这项工作引入了一种有效的方法来设计具有时空色分辨率的MOH微结构,对高密度光子逻辑器件的发展具有重大前景。