Preparation of uniform gold nanoparticles of different quantity deposited on zinc oxide nanorods for photoelectrochemical water splitting

被引:9
作者
Yu, Juyoung [1 ]
Kim, Jongsung [1 ]
机构
[1] Gachon Univ, Dept Chem & Biol Engn, Seongnarn 1342, Seongnam Si 13120, Gyeonggi Do, South Korea
基金
新加坡国家研究基金会;
关键词
Gold nanoparticle; Zinc oxide nanorod; Dye degradation; Water splitting; Photoconversion efficiency; MODIFIED ZNO NANORODS; HYDROTHERMAL SYNTHESIS; DOPED ZNO; AU; DRIVEN; PHOTOCATALYSTS; DEGRADATION; SUBSTRATE; REDUCTION; GROWTH;
D O I
10.1016/j.chemosphere.2021.132168
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
For the photocatalytic test, gold nanoparticles (AuNPs) were prepared using trisodium citrate dehydrate (TCD), following which they were combined on the surface of zinc oxide (ZnO) to prepare ZnO decorated with uniform AuNPs (ZnO/AuNP) photocatalysts. The photocatalytic performance with the ZnO/AuNP was estimated through the rhodamine B (RB) dye degradation under solar irradiation. ZnO/AuNP-30 showed the greatest photocatalytic performance, achieving dye degradation efficiency up to 78.65%. Photoelectrochemical (PEC) measurements were performed using the ZnO/AuNP photoanodes. With AuNP doping amounts of 10, 20, and 30 mL on the ZnO surface, photocurrent densities of 47.46, 63.74, and 68.64 mA cm(-2), respectively, were achieved at an applied voltage of 1.5 V. These values indicated that the doping of AuNPs on the ZnO surface is advantageous for enhancing its PEC water-splitting activity. The highest solar-to-hydrogen (STH) efficiency is 22% with the ZnO/ AuNP-30 photoanode at an applied voltage of 0.88 V. The interfacial charge-transfer resistances at the interface were 40 and 2.2 k Omega cm(2) for the ZnO and ZnO/AuNP-30 photoanodes, respectively.
引用
收藏
页数:11
相关论文
共 73 条
[1]   Arginine-assisted immobilization of silver nanoparticles on ZnO nanorods: an enhanced and reusable antibacterial substrate without human cell cytotoxicity [J].
Agnihotri, Shekhar ;
Bajaj, Geetika ;
Mukherji, Suparna ;
Mukherji, Soumyo .
NANOSCALE, 2015, 7 (16) :7415-7429
[2]   Ammonium ion detection in solution using vertically grown ZnO nanorod based field-effect transistor [J].
Ahmad, Rafiq ;
Tripathy, Nirmalya ;
Khan, Muhammad Yasir ;
Bhat, Kiesar Sideeq ;
Ahn, Min-sang ;
Hahn, Yoon-Bong .
RSC ADVANCES, 2016, 6 (60) :54836-54840
[3]  
Ahmed M. A., 2019, Environmental Nanotechnology, Monitoring and Management, V12, P313, DOI 10.1016/j.enmm.2019.100217
[4]   XPS and optical studies of different morphologies of ZnO nanostructures prepared by microwave methods [J].
Al-Gaashani, R. ;
Radiman, S. ;
Daud, A. R. ;
Tabet, N. ;
Al-Douri, Y. .
CERAMICS INTERNATIONAL, 2013, 39 (03) :2283-2292
[5]  
Al-Kahtani A.A., 2017, J BIOMATERIALS NANOB, V8, P66, DOI [DOI 10.4236/JBNB.2017.81005, 10.4236/jbnb.2017.81005]
[6]  
Anshu Ashwini, 2017, IOP Conference Series: Materials Science and Engineering, V263, DOI 10.1088/1757-899X/263/2/022007
[7]   Self-Assembled Vertically Aligned Hetero-Epitaxial ZnO/CdS Core/Shell Array by all CBD Process: Platform for Enhanced Visible-Light-Driven PEC Performance [J].
Bai, Rekha ;
Kurnar, Dinesh ;
Chaudhary, Sujeet ;
Pandya, Dinesh K. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2018, 122 (26) :14408-14419
[8]   3D-Branched ZnO/CdS Nanowire Arrays for Solar Water Splitting and the Service Safety Research [J].
Bai, Zhiming ;
Yan, Xiaoqin ;
Li, Yong ;
Kang, Zhuo ;
Cao, Shiyao ;
Zhang, Yue .
ADVANCED ENERGY MATERIALS, 2016, 6 (03)
[9]   Enhancement of Photoelectrochemical Performance of Ag@ZnO Nanowires: Experiment and Mechanism [J].
Cai, Yu ;
Yao, Chengbao ;
Yuan, Jie .
JOURNAL OF NANOMATERIALS, 2020, 2020
[10]   Study of blueshift of optical band gap in zinc oxide (ZnO) nanoparticles prepared by low-temperature wet chemical method [J].
Debanath, M. K. ;
Karmakar, S. .
MATERIALS LETTERS, 2013, 111 :116-119