TY - JOUR
T1 - Non-Hermitian Skyrmion for All-In-One Devices
T2 - Wireless Power Transfer, Sensing, and Communication
AU - Jian, Yiran
AU - Wang, Yuqian
AU - Li, Hui
AU - Yang, Yaping
AU - Liu, Wenwei
AU - Chen, Shuqi
AU - Chen, Hong
AU - Duan, Jiahua
AU - Guo, Zhiwei
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Optical skyrmions, characterized by their unique topological field configurations and intrinsic stability, offer a transformative foundation for next-generation technologies. Besides fundamental studies often prioritized in skyrmion research, we focus on the distinctive multi-eigenfrequency characteristics and field distributions of skyrmion resonance modes within a non-Hermitian framework, leading to the creation of a integrated near-field platform that simultaneously delivers wireless power transfer, high-fidelity wireless communication, and precision wireless sensing. Crucially, this integrated approach overcomes key limitations in conventional near-field electromagnetic systems. The conflict of different applications within compact architecture and robust, high-effective method is satisfied by two synergistic mechanisms: 1) robust, multi-channel wireless communication inherently supported by the skyrmion resonant structure and 2) efficient power transfer and ultra-sensitive detection driven by exceptional point. This unprecedented integration directly addresses in demanding scenarios, such as minimally-invasive and implantable biomedical devices, where size constraints, functional complexity, and operational reliability are paramount. Our work not only advances fundamental understanding of controllable topological photonics but also demonstrates the remarkable versatility and practical utility of skyrmion-based architectures in complex real-world needs, establishing a novel paradigm for the development of highly integrated and robust near-field technologies.
AB - Optical skyrmions, characterized by their unique topological field configurations and intrinsic stability, offer a transformative foundation for next-generation technologies. Besides fundamental studies often prioritized in skyrmion research, we focus on the distinctive multi-eigenfrequency characteristics and field distributions of skyrmion resonance modes within a non-Hermitian framework, leading to the creation of a integrated near-field platform that simultaneously delivers wireless power transfer, high-fidelity wireless communication, and precision wireless sensing. Crucially, this integrated approach overcomes key limitations in conventional near-field electromagnetic systems. The conflict of different applications within compact architecture and robust, high-effective method is satisfied by two synergistic mechanisms: 1) robust, multi-channel wireless communication inherently supported by the skyrmion resonant structure and 2) efficient power transfer and ultra-sensitive detection driven by exceptional point. This unprecedented integration directly addresses in demanding scenarios, such as minimally-invasive and implantable biomedical devices, where size constraints, functional complexity, and operational reliability are paramount. Our work not only advances fundamental understanding of controllable topological photonics but also demonstrates the remarkable versatility and practical utility of skyrmion-based architectures in complex real-world needs, establishing a novel paradigm for the development of highly integrated and robust near-field technologies.
KW - near-field coupling
KW - non-hermitian photonics
KW - optical skyrmions
UR - https://www.scopus.com/pages/publications/105030677407
U2 - 10.1002/lpor.202502662
DO - 10.1002/lpor.202502662
M3 - Article
AN - SCOPUS:105030677407
SN - 1863-8880
JO - Laser and Photonics Reviews
JF - Laser and Photonics Reviews
ER -