Biosystems Technology, Institute of Life Sciences and Biomedical Technologies, Technical University of Applied Sciences Wildau, Hochschulring 1, Wildau 15745, Germany.
Biophysics of Photosynthesis, Institute for Biology, Humboldt University of Berlin, Philippstraße 13, Berlin 10115, Germany.
ACS Appl Mater Interfaces. 2021 Mar 10;13(9):11237-11246. doi: 10.1021/acsami.1c01142. Epub 2021 Feb 23.
Photobioelectrodes represent one of the examples where artificial materials are combined with biological entities to undertake semi-artificial photosynthesis. Here, an approach is described that uses reduced graphene oxide (rGO) as an electrode material. This classical 2D material is used to construct a three-dimensional structure by a template-based approach combined with a simple spin-coating process during preparation. Inspired by this novel material and photosystem I (PSI), a biophotovoltaic electrode is being designed and investigated. Both direct electron transfer to PSI and mediated electron transfer via cytochrome from horse heart as redox protein can be confirmed. Electrode preparation and protein immobilization have been optimized. The performance can be upscaled by adjusting the thickness of the 3D electrode using different numbers of spin-coating steps during preparation. Thus, photocurrents up to ∼14 μA/cm are measured for 12 spin-coated layers of rGO corresponding to a turnover frequency of 30 e PSI s and external quantum efficiency (EQE) of 0.07% at a thickness of about 15 μm. Operational stability has been analyzed for several days. Particularly, the performance at low illumination intensities is very promising (1.39 μA/cm at 0.1 mW/cm and -0.15 V vs Ag/AgCl; EQE 6.8%).
光生物电极是将人工材料与生物实体结合起来进行半人工光合作用的一个例子。在这里,描述了一种使用还原氧化石墨烯(rGO)作为电极材料的方法。这种经典的二维材料通过基于模板的方法与简单的旋涂工艺相结合,在制备过程中被构建成三维结构。受这种新型材料和光系统 I(PSI)的启发,设计并研究了一种生物光伏电极。通过直接向 PSI 传递电子和通过马心脏细胞色素 c 作为氧化还原蛋白进行中介电子传递都可以得到证实。已经对电极的制备和蛋白质固定化进行了优化。通过在制备过程中使用不同数量的旋涂步骤来调整 3D 电极的厚度,可以对性能进行扩展。因此,对于 12 层旋涂的 rGO,测量到的光电流高达约 14 μA/cm,相当于 30 e PSI s 的周转率和约 15 μm 厚时 0.07%的外量子效率(EQE)。已经分析了几天的运行稳定性。特别是,在低光照强度下的性能非常有前景(0.1 mW/cm 时为 1.39 μA/cm 和-0.15 V 相对于 Ag/AgCl;EQE 为 6.8%)。