DNA折纸
多金属氧酸盐
纳米技术
材料科学
纳米尺度
扫描隧道显微镜
基质(水族馆)
DNA
分子开关
异质结
电导
电子传输链
化学
分子
纳米结构
光电子学
有机化学
组合数学
地质学
催化作用
海洋学
生物化学
数学
作者
Eric Vogelsberg,Marco Moors,Anastasia S. Sorokina,Dmitry A. Ryndyk,Sebastian Schmitz,Jessica S. Freitag,Anastasia V. Subbotina,Thomas Heine,Bernd Abel,Kirill Yu. Monakhov
标识
DOI:10.1021/acs.chemmater.3c00776
摘要
We report a chemically programmed design and the switching characteristics of a functional metal–DNA-origami–polyoxometalate (POM) material obtained from the solution-processed assembling of biocompatible molecular precursors. The DNA origami is immobilized on the gold surface via thiolate groups and acts as a carrier (ad-layer) structure, ensuring the spatially controlled hybridization of the pre-defined six-helix bundle (6HB) positions with DNA-augmented, tris(alkoxo)-ligated Lindqvist-type polyoxovanadate (POV6) units. The DNA-confined POV6 units accept electrons in a stepwise fashion, allowing for a multi-logic function, which we directly probe using scanning tunneling electron microscopy and spectroscopy. Electron acceptance and injection into the originally non-conducting DNA structure and the subsequent release to the gold substrate depend upon the potential at the nanoscale tip and the oxidation state of POV6, as well as on the mechanism of action of POV6 countercations. By combining experiment and theory, we show that the bio-hybrid heterojunction has far-reaching potential to create a chemically controlled POM-based nano-environment with synaptic behavior.
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