Ryzhkov Nikolay, Colson Nora, Ahmed Essraa, Pobedinskas Paulius, Haenen Ken, Braun Artur, Janssen Paul J
Empa. Swiss Federal Laboratories for Materials Science and Technology, Laboratory for High Performance Ceramics, Dübendorf CH-8600, Switzerland.
Institute for Materials Research (IMO), Hasselt University, Wetenschapspark 1, Diepenbeek B-3590, Belgium.
ACS Omega. 2024 Jul 17;9(30):32949-32961. doi: 10.1021/acsomega.4c03925. eCollection 2024 Jul 30.
We present the change of light absorption of cyanobacteria in response to externally applied electrical polarization. Specifically, we studied the relation between electrical polarization and changes in light absorbance for a biophotoelectrode assembly comprising boron-doped diamond as semiconducting electrode and live PCC 8005 trichomes embedded in either polysaccharide (agar) or conductive conjugated polymer (PEDOT-PSS) matrices. Our study involves the monitoring of cyanobacterial absorbance and the measurement of photocurrents at varying wavelengths of illumination for switched electric fields, i.e., using the bioelectrode either as an anode or as cathode. We observed changes in the absorbance characteristics, indicating a direct causal relationship between electrical polarization and absorbing properties of . Our finding opens up a potential avenue for optimization of the performance of biophotovoltaic devices through controlled polarization. Furthermore, our results provide fundamental insights into the wavelength-dependent behavior of a bio photovoltaic system using live cyanobacteria.
我们展示了蓝细菌光吸收对外加电极化的响应变化。具体而言,我们研究了由掺硼金刚石作为半导体电极以及嵌入多糖(琼脂)或导电共轭聚合物(PEDOT - PSS)基质中的活PCC 8005丝状体组成的生物光电极组件的电极化与光吸收变化之间的关系。我们的研究包括监测蓝细菌的吸光度以及在开关电场下不同照明波长下光电流的测量,即使用生物电极作为阳极或阴极。我们观察到吸光度特性的变化,表明电极化与蓝细菌的吸收特性之间存在直接因果关系。我们的发现为通过控制极化优化生物光伏器件的性能开辟了一条潜在途径。此外,我们的结果为使用活蓝细菌的生物光伏系统的波长依赖性行为提供了基本见解。