Microwave Vortex Beam Lasing via Photonic Time Crystals
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Le résumé fourni par la source
Microwave lasing carrying orbital angular momentum (OAM) holds significant potential for advanced applications in fields such as high-capacity communications, precision sensing, and radar imaging. However, conventional approaches to masers fail to produce emission with embedded OAM. The recent emergence of photonic time crystals (PTCs)-artificially structured media with periodically varying electromagnetic properties in time-offers a paradigm shift toward resonance-free lasing without the need for gain media. Yet, pioneering PTC designs have been based on three-dimensional bulk structures, which lack a surface-emitting configuration, and do not possess the capability to modulate OAM, thus hindering the realization of surface-emitted PTC masing that carries OAM. Here, we report the first experimental demonstration of surface-emitted microwave vortex beam lasing using ring-shaped PTCs, without the need for either a gain medium or a high-Q cavity. By developing a multiplier-driven time-varying metamaterial that achieves over 100% equivalent permittivity modulation depth, we establish momentum band gaps (k gaps) with sufficient bandwidth to overcome intrinsic losses and enable self-sustained coherent microwave amplification. Furthermore, space-time modulation induces nonreciprocity between clockwise and counterclockwise k-gap modes within the circularly symmetric PTC structure, facilitating the selective generation of microwave lasing carrying OAM, a functionality that is not readily accessible in conventional maser architectures. Our Letter bridges PTC physics with coherent OAM-carrying microwave emission, establishing a transformative platform for next-generation wireless communications, advanced sensing systems, and OAM-based technologies.
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DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.
- Titre Crossref
- Microwave Vortex Beam Lasing via Photonic Time Crystals
- Date Crossref
- 07/07/2026
- Éditeur
- American Physical Society (APS)
- Type
- journal-article
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Beijing Institute of Technology pays non établi dans la noticeUniversité ou école supérieure
Beijing Institute of Technology.
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