Title :
Hydrothermal Formation of Tungsten Trioxide Nanowire Networks on Seed-Free Substrates and Their Properties in Electrochromic Device
Author :
Chung Jung Hung ; Yi Hsuan Huang ; Chih Hao Chen ; Pang Lin ; Tseung Yuen Tseng
Author_Institution :
Dept. of Mater. Sci. & Eng., Nat. Chiao Tung Univ., Hsinchu, Taiwan
Abstract :
Facile and cost-efficient hydrothermally grown 3-D tungsten trioxide (WO3) nanowires (NWs) network film on seed-free fluorine-doped tin oxide (FTO) substrates without using additive or capping agent is reported. The NW networks are hexagonal phase and the morphologies are changed by adjusting the pH of precursor solutions. Growth mechanism of (WO3)NWs is also extensively discussed. The designed porous film exhibits remarkable enhancement of the electrochromic (EC) properties. In particular, a significant optical modulation (57% at 632 nm), fast color switching speed (bleaching: 7 s and coloration: 21 s), high coloration efficiency (120.3 cm2 C-1 at 632 nm), high Li+ diffusion coefficient (2.1410 ×-9 cm2 s-1), and excellent cycling stability (87% after 1000 cycles) are achieved for the 3-D NWs film. The improved EC properties are mainly attributed to the highly porous film, which makes the Li+diffusion becomes easier and provides larger specific surface area for charge-transfer reactions. Furthermore, we also reported an EC device (50 mm × 50 mm) with a simple two-electrode configuration showing high optical contrast. The 3-D WO3 NWs network film acts as an excellent EC material.
Keywords :
chemical interdiffusion; crystal growth from solution; electrochromic devices; electrochromism; nanowires; optical materials; porous materials; tungsten compounds; 3-D tungsten trioxide; Li+ diffusion coefficient; WO3; charge-transfer reactions; color switching speed; coloration efficiency; electrochromic device; electrochromic properties; hydrothermal formation; optical modulation; porous film; seed-free substrates; tungsten trioxide nanowire networks; two-electrode configuration; wavelength 632 nm; Color; Electrodes; Glass; Morphology; Substrates; Surface morphology; Tungsten; Electrochromic device; growth mechanism; nanowire; tungsten trioxide; tungsten trioxide.;
Journal_Title :
Components, Packaging and Manufacturing Technology, IEEE Transactions on
DOI :
10.1109/TCPMT.2014.2299554