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February 2, 2026National Science Review6 citationsOpen Access

Spatial and temporal control over photoresponsive nanoclusters

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YXYing XuMCMengfan ChangHLHui Li

Key Points

  • This work aims to enable spatial and temporal control over the transformations of photoresponsive nanoclusters in solid state.
  • Utilized photochemical techniques to induce transformations in nanoclusters.
  • Performed time-dependent characterizations to monitor conversion efficiencies.
  • Engaged theoretical calculations to rationalize observed efficiencies.
  • Cu18 nanocluster reduces to Cu14 upon exposure to 365 nm light.
  • Ag1Cu17 shows enhanced efficiency for the same conversion.
  • High photoconversion efficiency allows for precise control of transformations at the micrometer scale.

Abstract

Abstract Although cluster species undergo efficient photoresponsive transformations in dilute solutions, their solid-state materials suffer severely impeded responsiveness due to insufficient motional freedom. Here we present a photochemical approach that enables spatial and temporal control over nanocluster structure/size conversions in the crystalline state. The Cu18 nanocluster, whether in solution or solid form, undergoes a photoinduced transformation when exposed to 365 nm light, resulting in a size-reduced Cu14 nanocluster. The single-atom alloy counterpart, Ag1Cu17, possesses a remarkably enhanced efficiency towards the photoinduced conversion to form the same cluster product. The comparable photoinduced conversion efficiencies between Cu18 and Ag1Cu17 are monitored by time-dependent characterizations and further rationalized by theoretical calculations. The high photoconversion efficiency of crystalline nanocluster materials allows for the precise spatial and temporal control of solid-state transformations at the micrometer scale using femtosecond cold laser technology or by controlling the irradiation time of ultraviolet light. This study introduces a novel pair of clusters with comparable photoinduced conversion characteristics, allowing for atomic-level characterizations and an in-depth understanding of the photochemical behavior of metal nanoclusters. Furthermore, the findings in this work are expected to facilitate the design of cluster-based solid-state nanomaterials for downstream photoresponsive applications.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/6980fd81c1c9540dea80f3f7https://doi.org/10.1093/nsr/nwag053
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