Kamano Yusuke, Tabata Yuki, Uji Hirotaka, Kimura Shunsaku
Department of Material Chemistry, Graduate School of Engineering, Kyoto University Kyoto-Daigaku Katsura, Nishikyo-ku Kyoto 615-8510 Japan
RSC Adv. 2019 Jan 28;9(7):3618-3624. doi: 10.1039/c8ra10466b. eCollection 2019 Jan 25.
Two kinds of peptide nanotubes are prepared from cyclo(β-Asp(flavin)-β-alanine-β-alanine) (C3FAA) and cyclo(β-Asp(flavin)-ethylenediamine-succinic acid) (C3FES). The flavin chromophores are protruding on the C3FAA and C3FES peptide nanotube surfaces in random and chiral ways, respectively. The surface potentials of the C3FAA nanotube bundles on a gold substrate become larger than the C3FES nanotube bundles of the corresponding thicknesses. The converse piezoelectric coefficients are as small as less than 1 pm V. The peptide nanotube bundles are subjected to a thermal anneal treatment which raises up all the surface potentials and also the converse piezoelectricity of the C3FES nanotube bundles of 3 pm V. The macrodipole of the C3FAA nanotube and the chiral arrangement of the flavin groups in the C3FES nanotube are considered to contribute influentially to the surface potential and the piezoelectricity, respectively.
由环(β-天冬氨酸(黄素)-β-丙氨酸-β-丙氨酸)(C3FAA)和环(β-天冬氨酸(黄素)-乙二胺-琥珀酸)(C3FES)制备了两种肽纳米管。黄素发色团分别以随机和手性方式突出在C3FAA和C3FES肽纳米管表面。金基底上C3FAA纳米管束的表面电位比相应厚度的C3FES纳米管束更大。逆压电系数小至小于1皮米伏。对肽纳米管束进行热退火处理,这提高了所有表面电位,也提高了3皮米伏的C3FES纳米管束的逆压电性。C3FAA纳米管的大偶极子和C3FES纳米管中黄素基团的手性排列分别被认为对表面电位和压电性有显著贡献。