Manna Manoj K, Pandey Sushil K, Maity Indrajit, Mukherjee Shaibal, Das Apurba K
Department of Chemistry, Indian Institute of Technology Indore, Indore (India).
Hybrid Nanodevice Research Group (HNRG), Discipline of Electrical Engineering, Indian Institute of Technology Indore, Indore (India).
Chempluschem. 2015 Mar;80(3):583-590. doi: 10.1002/cplu.201402348. Epub 2015 Jan 9.
Aromatic organic molecules serve as optoelectronic materials owing to their intrinsic optical and electronic properties. Herein, self-assembled lamellar nanostructures as photoconductor hybrids, which are obtained from naphthalene-2-methoxycarbonyl (Nmoc)-capped peptide amphiphiles, are described. Hybrid nanostructures are constructed in a controlled manner by an electrochemical deposition technique in combination with the inorganic Zn(OH) phase. Inorganic Zn(OH) layers turn into semiconductor ZnO layers upon annealing at 150 °C and lamellar nanostructures are formed in a periodic manner. Synergistic effects of hydrogen bonding and π-π stacking interactions of aromatic peptide amphiphiles are the driving force for the formation of self-assembled lamellar nanostructures. Morphological, structural, and optical studies of such lamellar hybrid nanostructures are reported. Photoconduction of these hybrid nanostructures is also examined in detail.
芳香族有机分子因其固有的光学和电子特性而用作光电子材料。在此描述了由萘 - 2 - 甲氧基羰基(Nmoc)封端的肽两亲物获得的作为光电导体杂化物的自组装层状纳米结构。通过电化学沉积技术与无机Zn(OH)相相结合,以可控方式构建杂化纳米结构。无机Zn(OH)层在150°C退火时转变为半导体ZnO层,并以周期性方式形成层状纳米结构。芳香族肽两亲物的氢键和π-π堆积相互作用的协同效应是形成自组装层状纳米结构的驱动力。报道了此类层状杂化纳米结构的形态、结构和光学研究。还详细研究了这些杂化纳米结构的光电导性。