Gul Sheraz, Ng Jia Wei Desmond, Alonso-Mori Roberto, Kern Jan, Sokaras Dimosthenis, Anzenberg Eitan, Lassalle-Kaiser Benedikt, Gorlin Yelena, Weng Tsu-Chien, Zwart Petrus H, Zhang Jin Z, Bergmann Uwe, Yachandra Vittal K, Jaramillo Thomas F, Yano Junko
Physical Biosciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.
Phys Chem Chem Phys. 2015 Apr 14;17(14):8901-12. doi: 10.1039/c5cp01023c. Epub 2015 Mar 6.
Multielectron catalytic reactions, such as water oxidation, nitrogen reduction, or hydrogen production in enzymes and inorganic catalysts often involve multimetallic clusters. In these systems, the reaction takes place between metals or metals and ligands to facilitate charge transfer, bond formation/breaking, substrate binding, and release of products. In this study, we present a method to detect X-ray emission signals from multiple elements simultaneously, which allows for the study of charge transfer and the sequential chemistry occurring between elements. Kβ X-ray emission spectroscopy (XES) probes charge and spin states of metals as well as their ligand environment. A wavelength-dispersive spectrometer based on the von Hamos geometry was used to disperse Kβ signals of multiple elements onto a position detector, enabling an XES spectrum to be measured in a single-shot mode. This overcomes the scanning needs of the scanning spectrometers, providing data free from temporal and normalization errors and therefore ideal to follow sequential chemistry at multiple sites. We have applied this method to study MnOx-based bifunctional electrocatalysts for the oxygen evolution reaction (OER) and the oxygen reduction reaction (ORR). In particular, we investigated the effects of adding a secondary element, Ni, to form MnNiOx and its impact on the chemical states and catalytic activity, by tracking the redox characteristics of each element upon sweeping the electrode potential. The detection scheme we describe here is general and can be applied to time-resolved studies of materials consisting of multiple elements, to follow the dynamics of catalytic and electron transfer reactions.
多电子催化反应,如酶和无机催化剂中的水氧化、氮还原或产氢反应,通常涉及多金属簇。在这些体系中,反应发生在金属之间或金属与配体之间,以促进电荷转移、键的形成/断裂、底物结合以及产物的释放。在本研究中,我们提出了一种同时检测多种元素X射线发射信号的方法,该方法可用于研究电荷转移以及元素之间发生的连续化学反应。KβX射线发射光谱(XES)可探测金属的电荷和自旋状态及其配体环境。基于冯哈莫斯几何结构的波长色散光谱仪用于将多种元素的Kβ信号分散到位置探测器上,从而能够以单次测量模式测量XES光谱。这克服了扫描光谱仪的扫描需求,提供了不受时间和归一化误差影响的数据,因此非常适合跟踪多个位点的连续化学反应。我们已将此方法应用于研究用于析氧反应(OER)和氧还原反应(ORR)的基于MnOₓ的双功能电催化剂。特别是,我们通过在扫描电极电位时跟踪每种元素的氧化还原特性,研究了添加第二元素Ni形成MnNiOₓ的效果及其对化学状态和催化活性的影响。我们在此描述的检测方案具有通用性,可应用于对由多种元素组成的材料进行时间分辨研究,以跟踪催化和电子转移反应的动力学。