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March 18, 2026Advanced Functional Materials0 citationsOpen Access

Photon Avalanching Nanoparticles: The Next Generation of Upconverting Nanomaterials?

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KLKyoung-Mi LeeYKY. J. KimHJHyeong‐ku Jo

Key Points

  • To explore the mechanisms and applications of photon avalanche nanoparticles, focusing on their design principles and potential future developments.
  • Analyzed the photon avalanche mechanism and rate-equation frameworks governing PA properties.
  • Reviewed contemporary applications such as super-resolution imaging and optical logic gating.
  • Outlined avenues for improving the performance of ANPs, including optical efficiency and tunable thresholds.
  • Established a correlation between threshold intensity and cross-relaxation efficiency.
  • Identified several promising applications including nanothermometry and neuromorphic computing.
  • Proposed design principles for enhanced performance and versatility of avalanche mechanisms.

Abstract

ABSTRACT Photon Avalanche (PA) is a unique, feedback‐driven upconversion process where the absorption of a single photon initiates cascaded excited‐state absorption and cross‐relaxation, leading to an exceptionally steep, threshold‐dependent emission rise. The realization of PA at the nanoscale has recently opened transformative opportunities in photonics, sensing, and optical computing. However, systematic exploitations of avalanching nanoparticles (ANPs) across diverse applications and rational design principles for next‐generation devices remain at an early stage. This Perspective examines the current status and future directions of research on ANPs, with emphasis on lanthanide‐doped fluoride systems. Initially, we analyze the PA mechanism and rate‐equation frameworks governing PA properties, including threshold intensity and cross‐relaxation efficiency. Next, we survey frontier applications, including super‐resolution imaging, nanothermometry, force sensing, optical logic gating, and neuromorphic computing. Ultimately, promising avenues for advancing ANP‐based technologies are outlined, spanning improved optical efficiency, chemical stability, homogeneity, and tunable threshold engineering. We hope this Perspective clarifies the foundations of PA at the nanoscale and provides a roadmap for exploiting avalanche mechanisms to unlock next‐generation functional platforms with enhanced performance and versatility.

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Cite This Study

Lee et al. (2026) studied this question.

synapsesocial.com/papers/69ba43764e9516ffd37a4c47https://doi.org/10.1002/adfm.202531980
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