物理学进展 ›› 2026, Vol. 46 ›› Issue (3): 114-133.doi: 10.13725/j.cnki.pip.2026.03.002

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从局域到非局域人工材料:隐身、平行空间与虫洞

宋彤彤, 赖 耘   

  1. 南京大学物理学院,南京 210093
  • 收稿日期:2026-01-29 修回日期:2026-02-10 接受日期:2026-02-20 出版日期:2026-06-20 发布日期:2026-06-20
  • 基金资助:
    国家自然科学基金 (No. 12474293, No. 12174188)、江苏省自然科学基金 (No. BK20233001) 以 及国家资助博士后研究人员计划 (No. GZC20252238)

From local to nonlocal artificial materials: cloaking, parallel spaces, and photonic wormholes

SONG Tongtong, LAI Yun   

  1. School of Physics, Nanjing University, Nanjing 210093, China
  • Received:2026-01-29 Revised:2026-02-10 Accepted:2026-02-20 Online:2026-06-20 Published:2026-06-20

摘要:

人工材料 (artificial material) 通过人工构筑的亚波长或波长量级微结构,突破了自然材料 的电磁参数限制,已成为连接波动物理、信息科学与类时空工程的重要桥梁。本文以光学和电磁 隐身作为主线,系统回顾了人工材料从基于局域有效介质理论的参数调控,向基于非局域空间色 散工程演进的研究历程。文章首先梳理了在局域超构材料/表面框架下隐身技术的演变脉络:从基 于变换光学与零折射率波导的隐身设计,逐步发展为基于超构表面的皮肤斗篷、超宽频隐身以及 融合宽带探测与拟态特性的新型伪装技术。随后,文章引入了非局域人工材料这一新兴范式,指 出其通过引入动量依赖的电磁响应,释放了动量空间的调控自由度,从而突破了传统局域理论的 束缚。利用非局域空间色散与边界选择性激发机制,一系列新奇物理现象得以实现,如全角度超 透明及零间距无包层波导阵列等。尤为重要的是,非局域性打破了物理空间与光学空间的一一对 应关系,使得“光子平行空间”的构建成为可能。基于此概念,本文进一步探讨了光子虫洞的模拟 以及在同一物理实体中实现互不干扰的“多重现实”等前沿进展。最后,本文总结了这一从“单 一光学参数调控”到“多个光学空间构造”的跨越,并展望了非局域人工材料在未来集成光子学、 高维波场调控及多物理场融合中的广阔应用前景。 

关键词: 超构材料与光子晶体, 非局域材料, 电磁隐身技术, 光学平行空间

Abstract:

Artificial materials, whose electromagnetic properties are engineered through subwavelength or wavelength-scale microstructures, offer responses inaccessible to natural materials and have come to bridge wave physics, information science, and spacetime analogues. With optical and electromagnetic cloaking as the unifying thread, this review systematically traces the evolution of artificial materials from parameter engineering grounded in local effective medium theory toward nonlocal spatial dispersion engineering. Cloaking within local metamaterial and metasurface frameworks has progressed from transformation-optics and zero-index waveguide designs, through metasurface-enabled skin cloaks and ultra-broadband concealment, to camouflage schemes that integrate broadband detection with adaptive mimicry. As an emerging class of engineered media, nonlocal artificial materials are characterized by a constitutive response that depends explicitly on the wavevector, thereby expanding the accessible degrees of freedom in momentum space well beyond the limits of local constitutive relations. Nonlocal spatial dispersion, combined with boundary-selective excitation, underlies the realization of omnidirectional ultratransparency and zero-spacing cladding-free waveguide arrays. Nonlocality further severs the one-to-one correspondence between physical space and optical space, enabling the construction of photonic parallel spaces. Beyond photonic parallel spaces, this framework enables the realization of photonic wormholes and opens a route to independently coexisting ”multiple realities” supported by a single physical structure. These advances collectively redefine the design space of artificial materials, shifting the focus from engineering individual electromagnetic parameters to constructing multiple coexisting optical spaces, and point toward transformative opportunities in integrated photonics, high-dimensional wave-field manipulation, and multi-physics integration.

Key words: metamaterials and photonic crystals, nonlocal artificial materials, electromagnetic cloaking, photonic parallel spaces

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