生物电子学
晶体管
纳米技术
制作
材料科学
自愈水凝胶
神经形态工程学
限制
维数之咒
数码产品
柔性电子器件
调制(音乐)
光电子学
半导体
有机电子学
维数(图论)
电容
工作(物理)
自组装
记忆电阻器
硅
多孔性
软质材料
作者
Dingyao Liu,Jing Bai,Xinyu Tian,Yan Wang,Bin-bin Cui,Shilei Dai,Wensheng Lin,Zhuowen Shen,Chun Kit Lai,George G. Malliaras,Shiming Zhang,Dingyao Liu,Jing Bai,Xinyu Tian,Yan Wang,Bin-bin Cui,Shilei Dai,Wensheng Lin,Zhuowen Shen,Chun Kit Lai
出处
期刊:Science
[American Association for the Advancement of Science (AAAS)]
日期:2025-11-20
卷期号:390 (6775): 824-830
标识
DOI:10.1126/science.adx4514
摘要
Transistors, fundamental to modern electronics, are traditionally rigid, planar, and two-dimensional (2D), limiting their integration with the soft, irregular, and three-dimensional (3D) nature of biological systems. Here, we report 3D semiconductors, integrating organic electronics, soft matter, and electrochemistry. These 3D semiconductors, in the form of hydrogels, realize millimeter-scale modulation thickness while achieving tissue-like softness and biocompatibility. This breakthrough in modulation thickness is enabled by a templated double-network hydrogel system, where a secondary porous hydrogel guides the 3D assembly of a primary redox-active conducting hydrogel. We demonstrate that these 3D semiconductors enable the exclusive fabrication of 3D spatially interpenetrated transistors that mimic real neuronal connections. This work bridges the gap between 2D electronics and 3D living systems, paving the way for advanced bioelectronics systems such as biohybrid sensing and neuromorphic computing.
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