Screening Cobalt-based Catalysts on Multicomponent CdSe@CdS Nanorods for Photocatalytic Hydrogen Evolution in Aqueous Media

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY ACS Applied Nano Materials Pub Date : 2024-06-18 DOI:10.1021/acsanm.4c01645
Marcel Boecker, Sarah Lander, Riccarda Müller, Anna-Laurine Gaus, Christof Neumann, Julia Moser, Mathias Micheel, Andrey Turchanin, Max von Delius, Christopher V. Synatschke, Kerstin Leopold, Maria Wächtler* and Tanja Weil*, 
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Abstract

We present CdSe@CdS nanorods coated with a redox-active polydopamine (PDA) layer functionalized with cobaloxime-derived photocatalysts for efficient solar-driven hydrogen evolution in aqueous environments. The PDA-coating provides reactive groups for the functionalization of the nanorods with different molecular catalysts, facilitates charge separation and transfer of electrons from the excited photosensitizer to the catalyst, and reduces photo-oxidation of the photosensitizer. X-ray photoelectron spectroscopy (XPS) confirms the successful functionalization of the nanorods with cobalt-based catalysts, whereas the catalyst loading per nanorod is quantified by total reflection X-ray fluorescence spectrometry (TXRF). A systematic comparison of different types of cobalt-based catalysts was carried out, and their respective performance was analyzed in terms of the number of nanorods and the amount of catalyst in each sample [turnover number, (TON)]. This study shows that the performance of these multicomponent photocatalysts depends strongly on the catalyst loading and less on the specific structure of the molecular catalyst. Lower catalyst loading is advantageous for increasing the TON because the catalysts compete for a limited number of charge carriers at the nanoparticle surface. Therefore, increasing the catalyst loading relative to the absolute amount of hydrogen produced does not lead to a steady increase in the photocatalytic activity. In our work, we provide insights into how the performance of a multicomponent photocatalytic system is determined by the intricate interplay of its components. We identify the stable attachment of the catalyst and the ratio between the catalyst and photosensitizer as critical parameters that must be fine-tuned for optimal performance.

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在多组分 CdSe@CdS 纳米棒上筛选钴基催化剂,用于水介质中的光催化氢气转化
我们展示了涂有氧化还原活性聚多巴胺(PDA)层的 CdSe@CdS 纳米棒,该纳米棒具有钴肟衍生光催化剂的功能,可在水环境中实现太阳能驱动的高效氢气进化。PDA 涂层为纳米棒与不同分子催化剂的功能化提供了反应基团,促进了电荷分离和电子从激发的光敏剂到催化剂的转移,并减少了光敏剂的光氧化。X 射线光电子能谱(XPS)证实了纳米棒与钴基催化剂的成功功能化,而每个纳米棒的催化剂负载量则通过全反射 X 射线荧光光谱法(TXRF)进行量化。对不同类型的钴基催化剂进行了系统比较,并根据纳米棒的数量和每个样品中催化剂的数量[周转数 (TON)]分析了它们各自的性能。这项研究表明,这些多组分光催化剂的性能主要取决于催化剂的负载量,而与分子催化剂的具体结构关系不大。较低的催化剂负载量有利于提高催化转换率,因为催化剂在纳米粒子表面竞争的电荷载流子数量有限。因此,相对于产生氢气的绝对量而言,增加催化剂负载量并不会导致光催化活性的稳定增长。在我们的工作中,我们深入了解了多组分光催化系统的性能是如何由其各组分之间错综复杂的相互作用决定的。我们将催化剂的稳定附着以及催化剂和光敏剂之间的比例确定为关键参数,必须对这些参数进行微调,才能获得最佳性能。
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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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