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April 23, 2026Advanced Functional Materials1 citationsOpen Access

Speckle‐Engineered Upconversion Amplification in Nanoemulsion‐Templated Hydrogel Microdomes

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CRChaeyeong RyuBYByungcheon YooSLSeunghun Lee

Key Points

  • The research aims to engineer a hydrogel-based photonic platform using upconversion nanocrystals for enhanced light control and optical effects.
  • Developed a soft-photonic platform with upconversion nanocrystals in a poly(ethylene glycol) diacrylate hydrogel microdome.
  • Utilized lithographic techniques to create microdome structures integrated with fluorocarbon nanoemulsion droplets.
  • Analyzed luminescence enhancement through controlled NIR speckle illumination and internal reflection-based waveguiding.
  • Achieved over sevenfold enhancement of upconversion luminescence compared to previous methods.
  • Demonstrated a cooperative optical microenvironment that structured NIR light into localized hot spots.
  • Established a method for reversible QR-code encryption and high-resolution patterning in moisture-responsive displays.

Abstract

ABSTRACT Hydrogel‐based photonic systems integrating luminescent emitters offer promise as soft, reconfigurable optical platforms, yet most designs lack internal optical engineering to control light propagation and confinement. Here, we present a lithographically programmable soft‐photonic platform in which upconversion nanocrystals (UCNs) encapsulated within fluorocarbon nanoemulsion droplets are embedded in a poly(ethylene glycol) diacrylate (PEGDA) hydrogel microdome. Upon drying, strong refractive index contrast between the PEGDA matrix and fluorocarbon droplets creates a cooperative optical microenvironment that structures the near‐infrared (NIR) excitation beam into a speckle‐like field with localized hot spots while extending the photon dwell time within the microdome via internal reflection‐based waveguiding. These effects yield a fully reversible, greater than sevenfold enhancement of upconversion luminescence—well beyond simple concentration or mechanical densification. This optical gain originates from multiple‐scattering‐assisted speckle excitation activated only in the contracted microdome state. Because UCNs are pumped by invisible NIR speckle illumination that rapidly varies in 3D across the microdome height, the incoherent sum of the photoluminescence manifests as a homogeneous filter‐free visible brightness increase. The hydrogel microdomes, fabricated via a customized digital micromirror device (DMD)‐based microlithography, enable high‐resolution patterning of moisture‐responsive displays, multicolor emission motifs, and reversible QR‐code encryption, establishing a scalable route toward speckle‐engineered soft photonic systems.

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Cite This Study

Ryu et al. (2026) studied this question.

synapsesocial.com/papers/69e9b85585696592c86eba43https://doi.org/10.1002/adfm.202532115
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