Rehman Abdul, van de Kruijs Robbert W E, van den Beld Wesley T E, Sturm Jacobus M, Ackermann Marcelo
Industrial Focus Group XUV Optics, MESA+ Institute for Nanotechnology, University of Twente, Drienerlolaan 5, 7522NB Enschede, The Netherlands.
J Phys Chem Lett. 2025 Mar 13;16(10):2592-2598. doi: 10.1021/acs.jpclett.4c03404. Epub 2025 Mar 3.
Hydrogen, crucial for the green energy transition, poses a challenge due to its tendency to degrade surrounding wall materials. To harness hydrogen's potential, it is essential to identify the parameter(s) of materials that modulates hydrogen-material interaction. In a recent publication, we have shown that the reduction (denitridation) of transition metal (TM) nitrides in hydrogen radicals (H*) stops when their work function drops below a threshold limit. In this work, we tailor the work function of a complex TM oxide by tuning the relative contents of its constituent TM atoms. We show that increasing the fraction of a low-work function TM decreases the work function of the complex oxide, thereby decreasing its reducibility (deoxidation) in H*. This leads to the stabilization of the higher oxidation states of a high-work function TM, which otherwise would be readily reduced in H*. We propose that the work function serves as a tunable parameter, modulating the interaction of hydrogen with TM compounds.
氢对于绿色能源转型至关重要,但由于其会降解周围的壁材料,因此带来了挑战。为了利用氢的潜力,确定调节氢与材料相互作用的材料参数至关重要。在最近的一篇出版物中,我们表明,当过渡金属(TM)氮化物在氢自由基(H*)中的功函数降至阈值以下时,其还原(脱氮)过程就会停止。在这项工作中,我们通过调整复合TM氧化物中组成TM原子的相对含量来调整其功函数。我们表明,增加低功函数TM的比例会降低复合氧化物的功函数,从而降低其在H中的还原性(脱氧)。这导致高功函数TM的较高氧化态得以稳定,否则这些氧化态在H中会很容易被还原。我们提出,功函数作为一个可调参数,调节氢与TM化合物的相互作用。