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锐钛矿包覆的金红石纳米棒作为混合光阳极中用于可见光驱动析氧的有效电子收集器。

Anatase-Wrapped Rutile Nanorods as an Effective Electron Collector in Hybrid Photoanodes for Visible Light-Driven Oxygen Evolution.

作者信息

Gong Ruihao, Mitoraj Dariusz, Leiter Robert, Mundszinger Manuel, Mengele Alexander K, Krivtsov Igor, Biskupek Johannes, Kaiser Ute, Beranek Radim, Rau Sven

机构信息

Institute for Inorganic Chemistry I, Ulm University, Ulm, Germany.

Institute of Electrochemistry, Ulm University, Ulm, Germany.

出版信息

Front Chem. 2021 Aug 18;9:709903. doi: 10.3389/fchem.2021.709903. eCollection 2021.

Abstract

Arrays of single crystal TiO rutile nanorods (RNRs) appear highly promising as electron-collecting substrates in hybrid photoanodes as the RNRs offer direct charge carriers transport pathways, contrary to the conventional electrodes prepared from TiO powders that suffer from the numerous charge traps at the grain boundaries. However, the specific surface area of the nanorods is highly limited by their smooth morphology, which might be detrimental in view of utilizing the RNR as a substrate for immobilizing other functional materials. In this study, we developed a novel anatase-wrapped RNR (ARNR) material fabricated by a facile seed layer-free hydrothermal method. The ARNR comprises polycrystalline anatase nanoparticles formed on the surface of RNR, resulting in a large surface area that provides more deposition sites compared to the bare nanorods. Herein, we functionalize ARNR and RNR electrodes with polymeric carbon nitride (CN) coupled with a CoO(OH) cocatalyst for dioxygen evolution. The anatase wrapping of the rutile nanorod scaffold is found to be crucial for effective deposition of CN and for improved photoanode operation in visible light-driven ( > 420 nm) oxygen evolution, yielding a significant enhancement of photocurrent (by the factor of ∼3.7 at 1.23 V vs RHE) and faradaic efficiency of oxygen evolution (by the factor of ∼2) as compared to photoanodes without anatase interlayer. This study thus highlights the importance of careful interfacial engineering in constructing photoelectrocatalytic systems for solar energy conversion and paves the way for the use of ARNR-based electron collectors in further hybrid and composite photochemical architectures for solar fuel production.

摘要

单晶TiO金红石纳米棒(RNRs)阵列作为混合光阳极中的电子收集基板显得非常有前景,因为RNRs提供了直接的电荷载流子传输途径,这与由TiO粉末制备的传统电极不同,后者在晶界处存在大量电荷陷阱。然而,纳米棒的比表面积因其光滑的形态而受到极大限制,鉴于将RNR用作固定其他功能材料的基板,这可能是不利的。在本研究中,我们通过一种简便的无种子层水热法开发了一种新型的锐钛矿包裹的RNR(ARNR)材料。ARNR由在RNR表面形成的多晶锐钛矿纳米颗粒组成,与裸露的纳米棒相比,其表面积更大,提供了更多的沉积位点。在此,我们用聚合物氮化碳(CN)和用于析氧的CoO(OH)助催化剂对ARNR和RNR电极进行功能化。发现金红石纳米棒支架的锐钛矿包裹对于CN的有效沉积以及在可见光驱动(>420 nm)析氧中改善光阳极性能至关重要,与没有锐钛矿中间层的光阳极相比,光电流显著增强(在1.23 V vs RHE时提高约3.7倍),析氧的法拉第效率提高(约2倍)。因此,本研究突出了在构建用于太阳能转换的光电催化系统时进行精细界面工程的重要性,并为在进一步的用于太阳能燃料生产的混合和复合光化学结构中使用基于ARNR的电子收集器铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc67/8416449/4db1e10201ff/fchem-09-709903-g001.jpg

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