Bulk and interfacial engineering of Ta3N5 nanotube arrays by Sn(iv) doping, proper passivation and co-catalysts for efficient solar water oxidation

被引:5
作者
Das, Pran Krisna [1 ]
Arunachalam, Maheswari [2 ,3 ]
Sivasankaran, Ramesh Poonchi [2 ,3 ]
Ahn, Kwang-Soon [4 ]
Ha, Jun-Seok [5 ]
Kang, Soon Hyung [2 ,3 ]
机构
[1] Chonnam Natl Univ, Dept Adv Chem & Engn, Gwangju 61186, South Korea
[2] Chonnam Natl Univ, Dept Chem Educ, Gwangju 61186, South Korea
[3] Chonnam Natl Univ, Optoelect Convergence Res Ctr, Gwangju 61186, South Korea
[4] Yeungnam Univ, Dept Chem Engn, Gyongsan 712749, South Korea
[5] Chonnam Natl Univ, Dept Chem Engn, Gwangju 61186, South Korea
基金
新加坡国家研究基金会;
关键词
HYDROGEN-PRODUCTION; TANTALUM NITRIDE; NANOROD ARRAYS; FILM PHOTOANODE; PERFORMANCE; LAYER; PHOTOELECTRODES; SEMICONDUCTORS; CATALYST; FUELS;
D O I
10.1039/d2cy01232d
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Nowadays, photoelectrochemical (PEC) water oxidation is evaluated as an encouraging technology for the production of renewable H-2 fuels. The design or foundation of efficient photoelectrodes is regarded as one of critical keys to realize highly efficient devices for H-2 production. Due to their high light absorption, visible absorbing materials have been widely investigated to achieve high PEC performance. Recently, tantalum nitride (Ta3N5) with a band gap of similar to 2.1 eV has been actively investigated because it can capture the entire visible light. In the present study, an n-type Ta3N5 nanotube (NT) film in a fluorinated-based electrolyte was developed by a two-time electrochemical anodization technique using a Ta foil. To improve the electronic conductivity and retard chemical dissolution, tin cations (Sn4+) were incorporated into the amorphous TaOx NT, followed by a high-temperature treatment in a N-2/NH3 gas mixture environment to obtain enhanced crystallinity and quality of films. Inductively coupled plasma-reactive ion etching (ICP-RIE) was performed to remove the blocking layer made on the top surface region after the electrochemical anodization reaction probably resulting from reaction remains and some oxide contaminants. The Sn-doped Ta3N5 NT photoelectrodes showed an improved photocurrent density (J(SC)) of similar to 1.49 mA cm(-2) at 1.23 V vs. RHE (reversible hydrogen electrode, briefly V-RHE), which was comparatively higher (similar to 0.84 mA cm(-2)) than that of a bare Ta3N5 NT film, which could be ascribed to the enhanced charge transfer/separation yield as well as the suppressed defect state. When transition metal sites were substituted by Sn doping, the electrical conductivity improved, promoting bulk charge separation and transfer with enhanced water reduction ability and a lower onset potential of Ta3N5 NTs. Moreover, to obtain a stable Sn-doped Ta3N5 NT photoelectrode, thin gallium nitride (GaN) was passivated onto a Ta3N5 NT film as a hole storage layer to prevent a quick electron-hole recombination process. As an alternative, anchoring a layer of Co(OH)(x) co-catalyst on Ta3N5 NT substantially enhanced the photoelectrochemical (PEC) performance, showing a J(sc) value of similar to 4.58 mA cm(-2) at 1.23 V-RHE under solar light irradiation with more sustainable stability.
引用
收藏
页码:6444 / 6457
页数:14
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