Departament de Química Física, Universitat de Barcelona , Diagonal 645, Barcelona 08028, Spain.
Nano Lett. 2014 Dec 10;14(12):7064-70. doi: 10.1021/nl5034599. Epub 2014 Dec 1.
Incorporating molecular switches as the active components in nanoscale electrical devices represents a current challenge in molecular electronics. It demands key requirements that need to be simultaneously addressed including fast responses to external stimuli and stable attachment of the molecules to the electrodes while mimicking the operation of conventional electronic components. Here, we report a single-molecule switching device that responds electrically to optical and chemical stimuli. A light pointer or a chemical signal can rapidly and reversibly induce the isomerization of bifunctional spiropyran derivatives in the bulk reservoir and, consequently, switch the electrical conductivity of the single-molecule device between a low and a high level. The spiropyran derivatives employed are chemically functionalized such that they can respond in fast but practical time scales. The unique multistimuli response and the synthetic versatility to control the switching schemes of this single-molecule device suggest spiropyran derivatives as key candidates for molecular circuitry.
将分子开关作为纳米级电子设备中的活性组件,是分子电子学领域当前面临的一项挑战。这需要同时满足一些关键要求,包括对外界刺激的快速响应,以及分子与电极的稳定连接,同时还要模拟传统电子元件的工作方式。在这里,我们报告了一种对光和化学刺激具有电响应的单分子开关器件。光指针或化学信号可以快速且可逆地诱导体相双功能螺吡喃衍生物的异构化,从而在低电导率和高电导率之间切换单分子器件的导电性。所采用的螺吡喃衍生物经过化学功能化处理,能够在快速但实际的时间尺度内做出响应。这种单分子器件独特的多刺激响应和对开关方案的合成多样性控制能力,表明螺吡喃衍生物是分子电路的关键候选者。