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Ultralow-Energy-Consumption Photosynaptic Transistor Utilizing Conjugated Polymers/Perovskite Quantum Dots Nanocomposites With Ligand Density Optimization.
Tsai, Cheng-Hang; Chen, Wei-Cheng; Lin, Yan-Cheng; Huang, Yu-Hang; Lin, Kai-Wei; Wu, Jing-Yang; Satoh, Toshifumi; Chen, Wen-Chang; Kuo, Chi-Ching.
Affiliation
  • Tsai CH; Department of Molecular Science and Engineering, Institute of Organic and Polymeric Materials, National Taipei University of Technology, Taipei, 10608, Taiwan.
  • Chen WC; Department of Chemical Engineering, National Taiwan University, Taipei, 10617, Taiwan.
  • Lin YC; Advanced Research Center for Green Materials Science and Technology, National Taiwan University, Taipei, 10617, Taiwan.
  • Huang YH; Advanced Research Center for Green Materials Science and Technology, National Taiwan University, Taipei, 10617, Taiwan.
  • Lin KW; Department of Chemical Engineering, National Cheng Kung University, Tainan, 70101, Taiwan.
  • Wu JY; Department of Molecular Science and Engineering, Institute of Organic and Polymeric Materials, National Taipei University of Technology, Taipei, 10608, Taiwan.
  • Satoh T; Department of Molecular Science and Engineering, Institute of Organic and Polymeric Materials, National Taipei University of Technology, Taipei, 10608, Taiwan.
  • Chen WC; Department of Molecular Science and Engineering, Institute of Organic and Polymeric Materials, National Taipei University of Technology, Taipei, 10608, Taiwan.
  • Kuo CC; Faculty of Engineering, Hokkaido University, Sapporo, 060-8628, Japan.
Small ; : e2402567, 2024 Aug 12.
Article in En | MEDLINE | ID: mdl-39132749
ABSTRACT
The photosynaptic transistor stands as a promising contender for overcoming the von Neumann bottleneck in the realm of photo-communication. In this context, photonic synaptic transistors is developed through a straightforward solution process, employing an organic semiconducting polymer with pendant-naphthalene-containing side chains (PDPPNA) in combination with ligand-density-engineered CsPbBr3 perovskite quantum dots (PQDs). This fabrication approach allows the devices to emulate fundamental synaptic behaviors, encompassing excitatory postsynaptic current, paired-pulse facilitation, the transition from short-to-long-term memory, and the concept of "learning experience." Notably, the phototransistor, incorporating the blend of the PDPPNA and CsPbBr3 PQDs washed with ethyl acetate, achieved an exceptional memory ratio of 104. Simultaneously, the same device exhibited an impressive paired-pulse facilitation ratio of 223% at a moderate operating voltage of -4 V and an extraordinarily low energy consumption of 0.215 aJ at an ultralow operating voltage of -0.1 mV. Consequently, these low-voltage synaptic devices, constructed with a pendant side-chain engineering of organic semiconductors and a ligand density engineering of PQDs through a simple fabrication process, exhibit substantial potential for replicating the visual memory capabilities of the human brain.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Small / Small (Weinh., Internet) / Small (Weinheim. Internet) Journal subject: ENGENHARIA BIOMEDICA Year: 2024 Type: Article Affiliation country: Taiwan

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Small / Small (Weinh., Internet) / Small (Weinheim. Internet) Journal subject: ENGENHARIA BIOMEDICA Year: 2024 Type: Article Affiliation country: Taiwan