Kwon Junyoung, Jeon Jae Bum, Júnior Walber Gonçalves Guimarães, Lee Min Gu, Lee Changhyeon, Kim Geunyoung, Song Hanchan, Cheong Woon Hyung, Im Sung Gap, de Moura André F, Kim Kyung Min, Yeom Jihyeon
Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.
Major of Nanotechnology Engineering, Pukyong National University, Busan, 48513, Republic of Korea.
Adv Mater. 2025 May;37(20):e2415366. doi: 10.1002/adma.202415366. Epub 2025 Apr 7.
Optoelectronic devices using circularly polarized light (CPL) offer enhanced sensitivity and specificity for efficient data processing. There is a growing demand for CPL sensing mediums with strong optical activity, stability and sensitivity, multiple transition bands, and environmental compatibility. Here, defect-engineered chiroferromagnetic quantum dots (CFQDs) are used as a new type of CPL sensing material. By inducing amorphization defects through chiral molecules, CFQDs with high unpaired electron density, atomic structural chirality, amplified chiroptical activity, and multiple exciton transition bands are developed. CFQDs enable nonlinear, long-term plastic behavior with linear optical input, acting as in situ noise filters that reduce noise by over 20%. Additionally, CFQDs provide over nine times higher integration for photon polarization and wavelength distinctions, paving the way for next-generation processors with improved energy efficiency, integration, and reduced retention time.
使用圆偏振光(CPL)的光电器件为高效数据处理提供了更高的灵敏度和特异性。对具有强光学活性、稳定性和灵敏度、多个跃迁带以及环境兼容性的CPL传感介质的需求日益增长。在此,缺陷工程化的手性铁磁量子点(CFQD)被用作一种新型的CPL传感材料。通过手性分子诱导非晶化缺陷,开发出具有高未配对电子密度、原子结构手性、放大的手性光学活性和多个激子跃迁带的CFQD。CFQD能够通过线性光学输入实现非线性、长期的塑性行为,充当原位噪声滤波器,将噪声降低超过20%。此外,CFQD在光子偏振和波长区分方面提供了高出九倍以上的集成度,为下一代具有更高能源效率、集成度和缩短保留时间的处理器铺平了道路。