Longatte Guillaume, Guille-Collignon Manon, Lemaître Frédéric
PASTEUR, Département de Chimie, École Normale Supérieure, UPMC Univ. Paris 06, CNRS, PSL Research University, 75005, Paris, France.
Sorbonne Universités, UPMC Univ Paris 06, ENS, CNRS, PASTEUR, 75005, Paris, France.
Chemphyschem. 2017 Oct 6;18(19):2643-2650. doi: 10.1002/cphc.201700351. Epub 2017 Sep 1.
In the past years, many strategies have been implemented to benefit from oxygenic photosynthesis to harvest photosynthetic electrons and produce a significant photocurrent. Therefore, electrochemical tools were considered and have globally relied on the electron transfer(s) between the photosynthetic chain and a collecting electrode. In this context, we recently reported the implementation of an electrochemical set-up at the preparative scale to produce photocurrents from a Chlamydomonas reinhardtii algae suspension with an appropriate mediator (2,6-DCBQ) and a carbon gauze as the working electrode. In the present work, we wish to describe a mathematical modeling of the recorded photocurrents to better understand the effects of the experimental conditions on the photosynthetic extraction of electrons. In that way, we established a general model of an electrocatalytic mechanism at the preparative scale (that is, assuming a homogenous bulk solution at any time and a constant diffusion layer, both assumptions being valid under forced convection) in which the chemical step involves a Michaelis-Menten-like behaviour. Dependences of transient and steady-state corresponding currents were analysed as a function of different parameters by means of zone diagrams. This model was tested to our experimental data related to photosynthesis. The corresponding results suggest that competitive pathways beyond photosynthetic harvesting alone should be taken into account.
在过去几年中,人们实施了许多策略,以利用氧光合作用来捕获光合电子并产生可观的光电流。因此,电化学工具被考虑并在全球范围内依赖于光合链与集电极之间的电子转移。在此背景下,我们最近报道了在制备规模上实施一种电化学装置,以通过适当的媒介物(2,6 - 二氯苯醌)和碳丝网作为工作电极,从莱茵衣藻藻类悬浮液中产生光电流。在本工作中,我们希望描述所记录光电流的数学模型,以更好地理解实验条件对光合电子提取的影响。通过这种方式,我们建立了一个制备规模的电催化机制通用模型(即假设在任何时候本体溶液均一且扩散层恒定,这两个假设在强制对流下均有效),其中化学步骤涉及类似米氏行为。通过区域图分析了瞬态和稳态相应电流与不同参数的函数关系。该模型针对我们与光合作用相关的实验数据进行了测试。相应结果表明,除了光合捕获之外的竞争途径也应予以考虑。