Laboratoire MOLTECH-Anjou, CNRS, Université d'Angers, 49045 Angers, France.
Chemistry. 2010 Dec 17;16(47):14051-9. doi: 10.1002/chem.201001875.
We report on the acid ethylenedithiotetrathiafulvaleneamidoglycine (EDT-TTF-CO-NH-CH(2)-CO(2)H; 1; EDT-TTF=ethylenedithiotetrathiafulvalene) and the 1:1 adduct [(EDT-TTF)(·+)-CO-NH-CH(2)-(CO(2))(-)][(EDT-TTF)-CO-NH-CH(2)-(CO(2)H)]·CH(3)OH (2), a new type of hydrogen-bonded, 1:1 acid/zwitterion hybrid embrace of redox peptidics into a two-dimensional architecture, an example of a system deliberately fashioned so that oxidation of π-conjugated cores toward the radical-cation form would interfere with the activity of the appended ionizable residues in the presence of a templating base during crystal growth. First-principles calculations demonstrate that, notwithstanding preconceived ideas, a metallic state is more stable than the hole-localized alternatives for a neat 1:1 neutral acid/zwitterion hybrid. The inhomogeneous Coulomb field associated with proton-shared, interstacks O-H···O hydrogen bonds between the ionizable residues distributed on both sides of the two-dimensional π-conjugated framework leads, however, to a weak hole localization responsible for the activated but high conductivity of 1 S cm(-1). This situation is reminiscent of the role of the environment on electron transfer in tetraheme cytochrome c, in which the protonation state of a heme propionate becomes paramount, or ion-gated transport phenomena in biology. These observations open rather intriguing opportunities for the construction of electronic systems at the interface of chemistry and biology.
我们报告了酸乙基二硫代四噻吩三硫富瓦烯酰胺甘氨酸(EDT-TTF-CO-NH-CH(2)-CO(2)H; 1; EDT-TTF=乙基二硫代四噻吩三硫富瓦烯)和 1:1 加合物[(EDT-TTF)(·+)-CO-NH-CH(2)-(CO(2))(-)][(EDT-TTF)-CO-NH-CH(2)-(CO(2)H)]·CH(3)OH(2),这是一种将氧化还原肽整合到二维结构中的新型氢键、1:1 酸/两性离子混合体,是一种系统的示例,该系统故意设计为在晶体生长过程中,当存在模板碱基时,π-共轭核的氧化向自由基阳离子形式的氧化会干扰附加的可离子化残基的活性。第一性原理计算表明,尽管存在先入为主的观念,但对于整洁的 1:1 中性酸/两性离子混合体,金属态比孔局域化的替代物更稳定。与分布在二维π-共轭框架两侧的可离子化残基之间的质子共享、层间 O-H···O 氢键相关的非均匀库仑场导致了弱孔局域化,这负责了 1 S cm(-1)的活化但高导电性。这种情况让人想起环境在四血红素细胞色素 c 中的电子转移中的作用,其中血红素丙酸酯的质子化状态变得至关重要,或者离子门控运输现象在生物学中。这些观察结果为在化学和生物学的交叉点构建电子系统开辟了相当有趣的机会。