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形态学对氧化锌纳米结构实现高效光电化学活性及产氢的作用

Role of Morphology on Zinc Oxide Nanostructures for Efficient Photoelectrochemical Activity and Hydrogen Production.

作者信息

Fallatah Ahmad, Kuku Mohammed, Alqahtani Laila, Bubshait Almqdad, Almutairi Noha S, Padalkar Sonal, Alotaibi Abdullah M

机构信息

Future Mobility Institute, King Abdulaziz City for Science and Technology, Riyadh 11442, Saudi Arabia.

Desalination Technologies Institute, King Abdulaziz City for Science and Technology, Riyadh 11442, Saudi Arabia.

出版信息

Materials (Basel). 2024 Oct 21;17(20):5135. doi: 10.3390/ma17205135.

Abstract

Energy generation today heavily relies on the field of photocatalysis, with many conventional energy generation strategies now superseded by the conversion of solar energy into chemical or thermal energy for a variety of energy-related applications. Global warming has pointed to the urgent necessity of moving away from non-renewable energy sources, with a resulting emphasis on creating the best photocatalysts for effective solar conversion by investigating a variety of material systems and material combinations. The present study explores the influence of morphological changes on the photoelectrochemical activity of zinc oxide nanostructures by exploiting electrodeposition and capping agents to control the growth rates of different ZnO facets and obtain well-defined nanostructures and orientations. A zinc nitrate (Zn (NO)) bath was used to electrodeposit ZnO nanostructures on an indium tin oxide glass (ITO) substrate at 70 °C with an applied potential of -1.0 V. Ethylenediamine (EDA) or ammonium fluoride (NHF) were added as capping agents to the zinc nitrate bath. Extensive evaluation and characterization of the photoelectrochemical (PEC) capabilities of the resulting morphology-controlled zinc oxide nanostructures confirmed that altering the ZnO morphology can have positive impacts on PEC properties.

摘要

如今,能源生产严重依赖光催化领域,许多传统能源生产策略现已被太阳能转化为化学能或热能以用于各种能源相关应用所取代。全球变暖凸显了摆脱不可再生能源的迫切必要性,因此人们着重通过研究各种材料体系和材料组合来制备用于高效太阳能转化的最佳光催化剂。本研究通过利用电沉积和封端剂来控制不同ZnO晶面的生长速率,从而探索形态变化对氧化锌纳米结构光电化学活性的影响,并获得明确的纳米结构和取向。使用硝酸锌(Zn(NO))镀液在70°C、-1.0 V的外加电势下将ZnO纳米结构电沉积在氧化铟锡玻璃(ITO)基板上。向硝酸锌镀液中添加乙二胺(EDA)或氟化铵(NHF)作为封端剂。对所得形态可控的氧化锌纳米结构的光电化学(PEC)性能进行的广泛评估和表征证实,改变ZnO形态对PEC性能有积极影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a565/11509430/5d406c24c670/materials-17-05135-g001.jpg

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