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Paper | Open Access

Carbon nanotube-based bio-inspired neuron systems via cascaded thin-film transistor-driven light emitting diodes and optoelectronic synaptic transistors for neuromorphic computing

Jiaqi Li1,2Lingzhi Wu1,2,3Jing Xu1,2Min Li1,2 ( )Mingnan Chen1,2Chengyong Xu1,2Shuangshuang Shao1,2Manman Luo1,2( )Jianwen Zhao1,2 ( )
School of Nano-Tech and Nano-Bionics, University of Science and Technology of China, Hefei, Anhui Province 230026, People’s Republic of China
Key Laboratory of Semiconductor Display Materials and Chips, Division of Nanodevices and Related Nanomaterials, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, No. 398 Ruoshui Road, Suzhou Industrial Park, Suzhou, Jiangsu Province 215123, People’s Republic of China
Institute of Nano Science and Technology, University of Science and Technology of China, No. 166 Ren Ai Road, Suzhou Industrial Park, Suzhou, Jiangsu Province 215123, People’s Republic of China
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Abstract

The development of bio-inspired neural systems has emerged as a transformative approach to overcome the limitations of von Neumann architecture, replicating the remarkable energy efficiency and unified sensory-processing capabilities of biological neurons. In this work, we present a monolithic neuromorphic platform utilizing cascaded single-walled carbon nanotube thin-film transistors (SWCNT TFTs) that integrate Mini-light-emitting diodes (Mini-LEDs) with optoelectronic synaptic transistors, achieving synergistic optoelectronic integration. The SWCNT TFTs exhibit dual functionality: (1) as highly stable active-matrix drivers (>1000 operational cycles) enabling precise Mini-LED grayscale modulation, and (2) as efficient optoelectronic synaptic devices. Fabricated at wafer-scale with micrometer feature sizes, these devices demonstrate exceptional performance metrics, including low operating voltages (±1 V), high on/off ratios (106), near-ideal subthreshold swing (78 mV·dec−1), and precise Mini-LED current regulation (10−8 A–10−4 A) under 25 Hz pulsed gate operation. The optoelectronic synaptic devices based on organic-semiconductor heterojunction formed between poly (3,3’’’-didodecyl quaterthiophene) (PQT-12) and semiconducting SWCNTs enable broadband photoresponses (365 nm–710 nm) through efficient charge transport, driven by TFT-controlled Mini-LED pulses. The implemented bio-inspired visual system successfully emulates fundamental synaptic functionalities, exhibiting excitatory postsynaptic currents (EPSC), short-term potentiation (STP), and long-term potentiation (LTP). Notably, we demonstrate system-level functionality through a five-layer convolutional neural network, achieving 92.02% accuracy on MNIST classification, while the monolithic integration establishes a biomimetic closed-loop “electrical-optical-electrical” pathway that faithfully simulates complete biological synaptic operation. This pioneering cascade of electronic, photonic, and optoelectronic components represents a significant advancement toward high-density, energy-efficient neuromorphic computing.

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International Journal of Extreme Manufacturing

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Cite this article:
Li J, Wu L, Xu J, et al. Carbon nanotube-based bio-inspired neuron systems via cascaded thin-film transistor-driven light emitting diodes and optoelectronic synaptic transistors for neuromorphic computing. International Journal of Extreme Manufacturing, 2026, 8(2). https://doi.org/10.1088/2631-7990/ae1fc0

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Received: 17 June 2025
Revised: 15 July 2025
Accepted: 14 November 2025
Published: 01 December 2025
© 2025 The Author(s).

Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.