Zhao Xing, Tu Bin, Li Mengyao, Feng Xiaojing, Zhang Yuchun, Fang Qiaojun, Li Tiehu, Grzybowski Bartosz A, Yan Yong
CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing 100190, China.
School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, China.
Sci Adv. 2018 Oct 12;4(10):eaau3546. doi: 10.1126/sciadv.aau3546. eCollection 2018 Oct.
Mechanically flexible, easy-to-process, and environmentally benign materials capable of current rectification are interesting alternatives to "hard" silicon-based devices. Among these materials are metallic/charged-organic nanoparticles in which electronic currents though metal cores are modulated by the gradients of counterions surrounding the organic ligands. Although layers of oppositely charged particles can respond to both electronic and chemical signals and can function even under significant mechanical deformation, the rectification ratios of these "chemoelectronic" elements have been, so far, low. This work shows that significantly steeper counterion gradients and significantly higher rectification ratios can be achieved with nanoparticles of only one polarity but in contact with a porous electrode serving as a counterion "sink." These composite structures act as rectifiers even at radio frequencies, providing a new means of interfacing counterions' dynamics with high-frequency electronic currents.
具有电流整流功能的机械柔性、易于加工且环境友好的材料,是“硬”硅基器件的有趣替代方案。这些材料包括金属/带电有机纳米粒子,其中通过金属核的电子电流由围绕有机配体的抗衡离子梯度调节。尽管带相反电荷的粒子层可以响应电子和化学信号,甚至在显著的机械变形下也能发挥作用,但到目前为止,这些“化学电子”元件的整流比一直很低。这项工作表明,仅使用一种极性的纳米粒子,但与用作抗衡离子“汇”的多孔电极接触,可以实现明显更陡的抗衡离子梯度和明显更高的整流比。这些复合结构即使在射频下也能起到整流器的作用,为将抗衡离子的动力学与高频电子电流相连接提供了一种新方法。