Synthesis and characterization of tungstite (WO3•H2O) nanoleaves and nanoribbons

被引:59
作者
Ahmadi, Majid [1 ]
Guinel, Maxime J. -F. [1 ,2 ]
机构
[1] Univ Puerto Rico, Coll Nat Sci, Dept Phys, San Juan, PR 00936 USA
[2] Univ Puerto Rico, Coll Nat Sci, Dept Chem, San Juan, PR 00936 USA
基金
美国国家科学基金会;
关键词
Tungsten oxide; Colloidal chemistry; HRTEM; SEM; UV/Vis; ELECTRONIC-STRUCTURE; GROWTH; NANOPARTICLES; DEPOSITION; NANOWIRES; VACANCY; SYSTEM; FILMS; RAMAN; CDS;
D O I
10.1016/j.actamat.2014.01.055
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
An environmentally benign method capable of producing large quantities of materials was used to synthesize tungstite (WO3 center dot H2O) leaf-shaped nanoplatelets (LNPs) and nanoribbons (NRs). These materials were simply obtained by the aging of colloidal solutions prepared by adding hydrochloric acid (HCl) to dilute sodium tungstate solutions (Na2WO4 center dot 2H(2)0) at a temperature of 5-10 degrees C. The aging medium and the pH of the precursor solutions were also investigated. Crystallization and growth occurred by Ostwald ripening during the aging of the colloidal solutions at ambient temperature for 24-48 h. When dispersed in water, the LNPs and NRs take many days to settle, which is a clear advantage for some applications (e.g., photocatalysis). The materials were characterized using scanning and transmission electron microscopy, Raman and ultraviolet/visible spectroscopies. The current vs. voltage characteristics of the tungstite NRs showed that the material behaved as a Schottky diode with a breakdown electric field of 3.0 x 10(5) V m(-1). They can also be heat-treated at relatively low temperatures (300 degrees C) to form tungsten oxide (WO3) NRs and can be used as photoanodes for photoelectrochemical water splitting. (C) 2014 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:203 / 209
页数:7
相关论文
共 46 条
[1]   Photoelectrochemical Transients for Chlorine/Hypochlorite Formation at "Roll-On" Nano-WO3 Film Electrodes [J].
Ahmed, Safeer ;
Hassan, Ibrahim A. I. ;
Roy, Hayley ;
Marken, Frank .
JOURNAL OF PHYSICAL CHEMISTRY C, 2013, 117 (14) :7005-7012
[2]   INNER SHELL EDGE PROFILES IN ELECTRON-ENERGY LOSS SPECTROSCOPY [J].
AHN, CC ;
REZ, P .
ULTRAMICROSCOPY, 1985, 17 (02) :105-115
[3]   Surfactant-ligand co-assisted solvothermal technique for the synthesis of different-shaped US nanorod-based materials [J].
Bao, CY ;
Jin, M ;
Lu, R ;
Xue, PC ;
Zhang, QL ;
Wang, DJ ;
Zhao, YY .
JOURNAL OF SOLID STATE CHEMISTRY, 2003, 175 (02) :322-327
[4]   Synthesis of CdS and ZnS nanowires using single-source molecular precursors [J].
Barrelet, CJ ;
Wu, Y ;
Bell, DC ;
Lieber, CM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (38) :11498-11499
[5]   The oxygen vacancy in crystal phases of WO3 [J].
Chatten, R ;
Chadwick, AV ;
Rougier, A ;
Lindan, PJD .
JOURNAL OF PHYSICAL CHEMISTRY B, 2005, 109 (08) :3146-3156
[6]   Ultrathin, Single-Crystal WO3 Nanosheets by Two-Dimensional Oriented Attachment toward Enhanced Photocatalystic Reduction of CO2 into Hydrocarbon Fuels under Visible Light [J].
Chen, Xiaoyu ;
Zhou, Yong ;
Liu, Qi ;
Li, Zhengdao ;
Liu, Jianguo ;
Zou, Zhigang .
ACS APPLIED MATERIALS & INTERFACES, 2012, 4 (07) :3372-3377
[7]   Crystal engineering with urea and thiourea hydrogen-bonding groups [J].
Custelcean, Radu .
CHEMICAL COMMUNICATIONS, 2008, (03) :295-307
[8]   INFRARED AND RAMAN SPECTROSCOPIES OF RF SPUTTERED TUNGSTEN-OXIDE FILMS [J].
DANIEL, MF ;
DESBAT, B ;
LASSEGUES, JC ;
GARIE, R .
JOURNAL OF SOLID STATE CHEMISTRY, 1988, 73 (01) :127-139
[9]   Characterization of the zirconia-supported tungsten oxide system by laser Raman and diffuse reflectance spectroscopies [J].
Gazzoli, D ;
Valigi, M ;
Dragone, R ;
Marucci, A ;
Mattei, G .
JOURNAL OF PHYSICAL CHEMISTRY B, 1997, 101 (51) :11129-11135
[10]   Tungsten oxide nanowires on tungsten substrates [J].
Gu, G ;
Zheng, B ;
Han, WQ ;
Roth, S ;
Liu, J .
NANO LETTERS, 2002, 2 (08) :849-851