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May 7, 2026Nature Communications4 citationsOpen Access

Autonomous microfluidic experimentation for exploring reaction interference and synthesizing double perovskite nanoplatelets

JLJunbin LiFDFernando Delgado-LiconaZLZhenyang Liu

Key Points

  • This research aims to enhance the synthesis and optimization of multi-element nanocrystals using autonomous microfluidic technology.
  • Developed PoLARIS, a modular microfluidic self-driving laboratory for synthesis and optimization of nanocrystals.
  • Utilized continuous-flow heat-up reactions for the synthesis of metal halide double perovskite nanoplatelets comprising up to six elements.
  • Implemented dynamic flow experimentation to analyze precursor reactivity and reaction pathways.
  • Achieved rapid optimization of nanoplatelets with increased efficiency compared to traditional methods.
  • Enabled mechanistic understanding of synthesis pathways governing nanoplatelet formation through dynamic experimentation.
  • Established PoLARIS as a scalable platform for autonomous experimentation in complex materials synthesis.

Abstract

Self-driving laboratories enable accelerated exploration of chemical and materials spaces by coupling automated experimentation with machine-learning-guided decision making. However, extending autonomous discovery to compositionally complex materials with multiple coupled reaction pathways remains a significant challenge. Here, we introduce PoLARIS, a microfluidic self-driving laboratory designed for time- and material-efficient autonomous synthesis, optimization, and mechanistic interrogation of multi-element nanocrystals. Using PoLARIS, we achieve rapid data-driven optimization of metal halide double perovskite nanoplatelets, comprising up to six distinct elements synthesized via a continuous-flow heat-up reaction. The platform integrates a modular microfluidic reactor architecture with closed-loop experiment selection to efficiently navigate a high-dimensional synthesis parameter space. Beyond autonomous multi-element nanoplatelet synthesis and optimization, PoLARIS utilizes dynamic flow experimentation to enable mechanistic inference of precursor reactivity and reaction pathways governing nanoplatelet formation. This work establishes microfluidic self-driving laboratories as a generalizable approach for unifying autonomous synthesis optimization with mechanistic understanding in compositionally complex colloidal materials systems. PoLARIS framework provides a scalable pathway toward autonomous discovery in other multi-element and high-entropy colloidal nanocrystals beyond double perovskites.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69fc2ba98b49bacb8b347921https://doi.org/10.1038/s41467-026-72765-2
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