Motovilov K A, Grinenko V, Savinov M, Gagkaeva Z V, Kadyrov L S, Pronin A A, Bedran Z V, Zhukova E S, Mostert A B, Gorshunov B P
Moscow Institute of Physics and Technology 141701 Institutsky lane 9, Dolgoprudny Russia
Institute for Solid State and Materials Physics, TU Dresden 01069 Dresden Germany.
RSC Adv. 2019 Jan 29;9(7):3857-3867. doi: 10.1039/c8ra09093a. eCollection 2019 Jan 25.
Conductive biomolecular systems are investigated for their promise of new technologies. One biomolecular material that has garnered interest for device applications is eumelanin. Its unusual properties have led to its incorporation in a wide set of platforms including transistor devices and batteries. Much of eumelanin's conductive properties are due to a solid state redox comproportionation reaction. However, most of the work that has been done to demonstrate the role of the redox chemistry in eumelanin has been control of eumelanin's hydration content with scant attention given to temperature dependent behavior. Here we demonstrate for the first time consistency between hydration and temperature effects for the comproportionation conductivity model utilizing dielectric spectroscopy, heat capacity measurements, frequency scaling phenomena and recognizing that activation energies in the range of ∼0.5 eV correspond to proton dissociation events. Our results demonstrate that biomolecular conductivity models should account for temperature and hydration effects coherently.
人们对导电生物分子系统在新技术方面的前景进行了研究。一种引起设备应用兴趣的生物分子材料是真黑素。其独特的性质使其被纳入包括晶体管器件和电池在内的广泛平台。真黑素的许多导电特性归因于固态氧化还原归中反应。然而,为证明氧化还原化学在真黑素中的作用所做的大部分工作都是控制真黑素的水合含量,而很少关注温度依赖性行为。在这里,我们首次利用介电谱、热容量测量、频率标度现象,并认识到约0.5 eV范围内的活化能对应于质子解离事件,证明了归中电导率模型的水合效应和温度效应之间的一致性。我们的结果表明,生物分子电导率模型应连贯地考虑温度和水合效应。