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April 18, 2026Advanced Materials8 citations

Realizing Aqueous High‐Order Tripartite Synapse

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AXAo XiaoNanjing UniversityCYCheng YuanNanjing UniversityYWY. WangBioElectronics (United States)

Key Points

  • The aim is to explore the development of an aqueous tripartite synapse with multimodal functionalities in biological applications.
  • Investigated the interaction between light, dopamine, and graphene transistors.
  • Configured an aqueous tripartite synapse capable of co-modulation by light, electricity, and dopamine.
  • Examined the effects of light frequency, intensity, duration, and dopamine concentration on synaptic behavior.
  • Identified antagonistic effects between light and dopamine on synaptic behavior.
  • Demonstrated that light frequency and intensity can finely tune synaptic performance.
  • Emulated biological functions like sensitization, habituation, and recovery with the device.

Abstract

Future integration of artificial intelligence in biological settings imposes a non-negotiable requirement for advanced aqueous synapses, demanding not only biocompatibility in proper aqueous environments but also high-order behavior with multimodal functionalities, which, nevertheless, remain underexplored. Herein, we report an interesting light-bio-matter interplay, i.e., the one among light, neurotransmitter dopamine (DA) and graphene transistor, and thereby the configuration of an aqueous high-order tripartite synapse (TPS) capable of co-modulation by electricity, light and DA in the physiological media. Notably, beyond a unique antagonistic effect between light and DA, we further observe that the low-order and high-order behavior of the TPS could be finely tuned by the light frequency, intensity, duration, and DA concentration. Using this device, sophisticated biological functions of sensitization, habituation, and recovery could be emulated. History-dependent plasticity is further explored to develop dynamic logic to control robotic arms. This study is expected to be a starting point for future development of advanced aqueous high-order synapse.

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Cite This Study

Xiao et al. (2026) studied this question.

synapsesocial.com/papers/69e3209340886becb653fa11https://doi.org/10.1002/adma.73105
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