Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of the Ministry of Education, School of Chemistry, Beihang University, Beijing, 100083, P. R. China.
Engineering Research Center for Semiconductor Integrated Technology, Institute of Semiconductors, Chinese Academy of Sciences, Beijing, 100083, P. R. China.
Adv Mater. 2018 Nov;30(46):e1804862. doi: 10.1002/adma.201804862. Epub 2018 Oct 3.
Many natural photomodulated nanochannels are investigated and are crucial for biological activity. Biomimetic nanochannels with a bistable conductance state under light stimulus are demonstrated. In this system, two molecules, cis-bis-(4,4'-dicarboxy-2,2'-bipyridine) dithiocyanato ruthenium(II) (N3) and spiropyran 1'-(3-carboxypropyl)-3',3'-dimethyl-6-nitro-spiro[2H-1]benzopyran-2,2'-indoline (SP-COOH), each with unique photoresponsive properties, are modified in alumina nanochannels. The two segments of the hourglass-shaped alumina nanochannels are designated to graft a certain molecule. Under ultraviolet (UV) or visible light (vis) irradiation, electrons belonging to N3 are excited, resulting in negatively charged surfaces on the sides of nanochannels modified with N3 molecules. Only under UV stimulus, the conformation change of the SP-COOH molecules leads to positively charged surfaces of nanochannels in the SP-COOH occupied sides. Benefiting from the joint effect of N3 and SP-COOH, low, medium, and high (i.e., "0," "1," and "2") ternary levels of ion conductance are established under the dark-vis-UV alternate stimuli. The multistage current switching containing "0-1-2-0" and "0-1-2-1-0" procedures is stable and robust. Additionally, the diode-like ion transport behavior of the nanochannels could be exploited to support a multivalued logical gating with the management of light signals.
许多天然的光调控纳米通道被研究,对生物活性至关重要。展示了在光刺激下具有双稳态电导状态的仿生纳米通道。在该系统中,两种分子,顺式-双-(4,4'-二羧酸-2,2'-联吡啶)二硫氰酸根合钌(II)(N3)和螺吡喃 1'-(3-羧丙基)-3',3'-二甲基-6-硝基螺[2H-1]苯并吡喃-2,2'-吲哚(SP-COOH),各具有独特的光响应特性,被修饰在氧化铝纳米通道中。沙漏形氧化铝纳米通道的两个部分被指定为接枝特定的分子。在紫外(UV)或可见光(vis)照射下,属于 N3 的电子被激发,导致修饰有 N3 分子的纳米通道侧面带负电荷。只有在 UV 刺激下,SP-COOH 分子的构象变化导致 SP-COOH 占据侧纳米通道的表面带正电荷。得益于 N3 和 SP-COOH 的共同作用,在暗-可见-UV 交替刺激下建立了低、中、高(即“0”、“1”和“2”)三级离子电导。包含“0-1-2-0”和“0-1-2-1-0”程序的多步电流开关稳定且稳健。此外,纳米通道的二极管样离子输运行为可用于支持具有光信号管理的多值逻辑门控。