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January 18, 2026Micromachines6 citationsOpen Access

Plasmonics Meets Metasurfaces: A Vision for Next Generation Planar Optical Systems

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MBM. A. Butt

Key Points

  • The aim is to explore how plasmonics and metasurfaces can be integrated to enhance optical systems.
  • Review of physical principles and material strategies for plasmonics and metasurfaces.
  • Discussion of device architectures including modulators, detectors, and programmable optical surfaces.
  • Examination of system-level challenges like optical loss and thermal management.
  • Highlights the complementary strengths of plasmonics and metasurfaces in light manipulation.
  • Discusses recent advances in materials and nanofabrication for optical technologies.
  • Illustrates potential applications in imaging, sensing, and communications.

Abstract

Plasmonics and metasurfaces (MSs) have emerged as two of the most influential platforms for manipulating light at the nanoscale, each offering complementary strengths that challenge the limits of conventional optical design. Plasmonics enables extreme subwavelength field confinement, ultrafast light–matter interaction, and strong optical nonlinearities, while MSs provide versatile and compact control over phase, amplitude, polarization, and dispersion through planar, nanostructured interfaces. Recent advances in materials, nanofabrication, and device engineering are increasingly enabling these technologies to be combined within unified planar and hybrid optical platforms. This review surveys the physical principles, material strategies, and device architectures that underpin plasmonic, MS, and hybrid plasmonic–dielectric systems, with an emphasis on interface-mediated optical functionality rather than long-range guided-wave propagation. Key developments in modulators, detectors, nanolasers, metalenses, beam steering devices, and programmable optical surfaces are discussed, highlighting how hybrid designs can leverage strong field localization alongside low-loss wavefront control. System-level challenges including optical loss, thermal management, dispersion engineering, and large-area fabrication are critically examined. Looking forward, plasmonic and MS technologies are poised to define a new generation of flat, multifunctional, and programmable optical systems. Applications spanning imaging, sensing, communications, augmented and virtual reality, and optical information processing illustrate the transformative potential of these platforms. By consolidating recent progress and outlining future directions, this review provides a coherent perspective on how plasmonics and MSs are reshaping the design space of next-generation planar optical hardware.

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Cite This Study

M. A. Butt (2026) studied this question.

synapsesocial.com/papers/696c77d4eb60fb80d1396177https://doi.org/10.3390/mi17010119
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