Jäker Philipp, Aegerter Dino, Kyburz Till, Städler Roman, Fonjallaz Rea, Detlefs Blanka, Koziej Dorota
Department of Materials, Laboratory for Multifunctional Materials, ETH Zürich, Zurich, Vladimir-Prelog-Weg 5, 8093, Switzerland.
Institutes of Nanostructure and Solid State Physics, Center for Hybrid Nanostructures, University of Hamburg, Hamburg, Luruper Chaussee 149, 22607, Germany.
Open Res Eur. 2022 Dec 23;2:74. doi: 10.12688/openreseurope.14433.2. eCollection 2022.
Photo-electro-chemical (PEC) water splitting represents a promising technology towards an artificial photosynthetic device but many fundamental electronic processes, which govern long-term stability and energetics, are not yet fully understood. X-ray absorption spectroscopy (XAS), and particularly its high energy resolution fluorescence-detected (HERFD) mode, emerges as a powerful tool to study photo-excited charge carrier behavior under operating conditions. The established thin film device architecture of PEC cells provides a well-defined measurement geometry, but it puts many constraints on conducting XAS experiments. It remains a challenge to establish a standardized thin film exchange procedure and concurrently record high-quality photoelectrochemical and X‑ray absorption spectroscopy data that is unperturbed by bubble formation. Here we address and overcome these instrumental limitations for photoelectrochemical HERFD-XAS. We constructed a novel photo-electro-chemical cell by computer numerical control milling, guided by the materials' X‑ray and visible light absorption properties to optimize signal detection. To test the cell's functionality, semiconducting thin film photoelectrodes have been fabricated solution deposition and their photoelectrochemical responses under simulated solar light were studied using a commercial potentiostat in a three-electrode configuration during HERFD-XAS experiments at a synchrotron. We demonstrate the cell's capabilities to measure and control potentiostatically and in open‑circuit, to detect X‑ray signals unperturbed by bubbles and to fluently exchange different thin film samples by collecting high-resolution Fe K-edge spectra of hematite ( -Fe O ) and ferrite thin film ( Fe O , = Zn, Ni) photoelectrodes during water oxidation. Our cell establishes a measurement routine that will provide experimental access of photo-electro-chemical HERFD-XAS experiments to a broader scientific community, particularly due to the ease of sample exchange. We believe to enable a broad range of experiments which acquired fundamental insights will spur further photoelectrochemical research and commercialization of water splitting technologies.
光电化学(PEC)水分解是一种很有前景的人工光合作用装置技术,但许多决定长期稳定性和能量学的基本电子过程尚未得到充分理解。X射线吸收光谱(XAS),尤其是其高能分辨率荧光检测(HERFD)模式,已成为研究工作条件下光激发电荷载流子行为的有力工具。PEC电池已确立的薄膜器件结构提供了明确的测量几何结构,但对进行XAS实验施加了许多限制。建立标准化的薄膜交换程序并同时记录不受气泡形成干扰的高质量光电化学和X射线吸收光谱数据仍然是一项挑战。在这里,我们解决并克服了光电化学HERFD-XAS的这些仪器限制。我们通过计算机数控铣削构建了一种新型光电化学电池,以材料的X射线和可见光吸收特性为指导来优化信号检测。为了测试该电池的功能,通过溶液沉积制备了半导体薄膜光电极,并在同步加速器进行HERFD-XAS实验期间,使用三电极配置的商用恒电位仪研究了它们在模拟太阳光下的光电化学反应。我们展示了该电池在恒电位和开路状态下进行测量和控制的能力,检测不受气泡干扰的X射线信号的能力,以及通过收集赤铁矿(α-Fe₂O₃)和铁氧体薄膜(Fe₃O₄,M = Zn、Ni)光电极在水氧化过程中的高分辨率铁K边光谱来流畅地交换不同薄膜样品的能力。我们的电池建立了一种测量程序,这将为更广泛的科学界提供进行光电化学HERFD-XAS实验的途径,特别是由于样品交换的便利性。我们相信能够开展广泛的实验,获得的基本见解将推动进一步的光电化学研究和水分解技术的商业化。