材料科学
纳米技术
记忆电阻器
电子线路
胶体金
纳米颗粒
数码产品
晶体管
二极管
场效应晶体管
半导体
光电子学
电气工程
电压
工程类
作者
Jingyu Wang,Lin Liu,Jiahui Guo,Xing Zhao,Yuchun Zhang,Yong Yan
标识
DOI:10.1002/adfm.202309531
摘要
Abstract The basic components of modern electronics are primarily fabricated by using semiconductor material in which the movement of charges can be electrically modulated. For metallic material, however, such modulation is almost impossible because of its field‐shielding characteristics, leading to insensitive response toward applied potentials. In this perspective, how to overcome this limitation of bulk metals (here, gold is taken as a particular example) is demonstrated by reducing the size to the nanoscale and functionalizing these nanogolds with charged molecules. The movement of mobile counterions within gold nanoparticle (AuNP) layers can generate charge gradients that feed back and control the motion of electrons which enables to design and fabricate several important components such as the diode, transistor, logic circuits, memristor, and various chemiresistive sensors. The assembly of AuNP electronic components and sensors gives rise to a new class of nanoparticle‐based “chemoelectronic” logic circuits that can sense, process, and ultimately report various chemical signals. The gas sensors are believed to be the most appropriate candidates for such integration as no solvent/solution is required and therefore, in the end, the combination of AuNP gas sensors and memristors is outlooked to achieve all‐gold‐nanoparticle in‐sensor computing for the development of future artificial olfactory.
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