TY - JOUR
T1 - Electro-Optically Configurable Synaptic Transistors With Cluster-Induced Photoactive Dielectric Layer for Visual Simulation and Biomotor Stimuli
AU - Wang, Xin
AU - Zhang, Liuyang
AU - Zhao, Yi
AU - Qin, Zongze
AU - Hu, Bin
AU - Zhang, Long
AU - Jiang, Yihang
AU - Wang, Qingyu
AU - Liang, Zechen
AU - Tang, Xian
AU - Wu, Jingpeng
AU - Cao, Fan
AU - Bu, Laju
AU - Lei, Bo
AU - Lu, Guanghao
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/11/1
Y1 - 2024/11/1
N2 - The integration of visual simulation and biorehabilitation devices promises great applications for sustainable electronics, on-demand integration and neuroscience. However, achieving a multifunctional synergistic biomimetic system with tunable optoelectronic properties at the individual device level remains a challenge. Here, an electro-optically configurable transistor employing conjugated-polymer as semiconductor layer and an insulating polymer (poly(1,8-octanediol-co-citrate) (POC)) with clusterization-triggered photoactive properties as dielectric layer is shown. These devices realize adeptly transition from electrical to optical synapses, featuring multiwavelength and multilevel optical synaptic memory properties exceeding 3 bits. Utilizing enhanced optical memory, the images learning and memory function for visual simulation are achieved. Benefiting from rapid electrical response akin to biological muscle activation, increased actuation occurs under increased stimulus frequency of gate voltage. Additionally, the transistor on POC substrate can be effectively degraded in NaOH solution due to degradation of POC. Pioneeringly, the electro-optically configurability stems from light absorption and photoluminescence of the aggregation cluster in POC layer after 200 °C annealing. The enhancement of optical synaptic plasticity and integration of motion-activation functions within a single device opens new avenues at the intersection of optoelectronics, synaptic computing, and bioengineering.
AB - The integration of visual simulation and biorehabilitation devices promises great applications for sustainable electronics, on-demand integration and neuroscience. However, achieving a multifunctional synergistic biomimetic system with tunable optoelectronic properties at the individual device level remains a challenge. Here, an electro-optically configurable transistor employing conjugated-polymer as semiconductor layer and an insulating polymer (poly(1,8-octanediol-co-citrate) (POC)) with clusterization-triggered photoactive properties as dielectric layer is shown. These devices realize adeptly transition from electrical to optical synapses, featuring multiwavelength and multilevel optical synaptic memory properties exceeding 3 bits. Utilizing enhanced optical memory, the images learning and memory function for visual simulation are achieved. Benefiting from rapid electrical response akin to biological muscle activation, increased actuation occurs under increased stimulus frequency of gate voltage. Additionally, the transistor on POC substrate can be effectively degraded in NaOH solution due to degradation of POC. Pioneeringly, the electro-optically configurability stems from light absorption and photoluminescence of the aggregation cluster in POC layer after 200 °C annealing. The enhancement of optical synaptic plasticity and integration of motion-activation functions within a single device opens new avenues at the intersection of optoelectronics, synaptic computing, and bioengineering.
KW - clusteroluminescence
KW - configurable organic field-effect transistors
KW - multi-modal recognition
KW - neuromorphic biomotor stimuli
KW - visual simulation
UR - https://www.scopus.com/pages/publications/85202977375
U2 - 10.1002/adma.202406977
DO - 10.1002/adma.202406977
M3 - 文章
C2 - 39223900
AN - SCOPUS:85202977375
SN - 0935-9648
VL - 36
JO - Advanced Materials
JF - Advanced Materials
IS - 44
M1 - 2406977
ER -