Catalytic synergy in palladium-enriched tungsten oxide nanogranules: redefining electrochromic dynamics and energy storage capabilities
- Authors
- Morankar, Pritam J.; Amate, Rutuja U.; Teli, Aviraj M.; Hussain, Iftikhar; Beknalkar, Sonali A.; Jeon, Chan-Wook
- Issue Date
- Apr-2025
- Publisher
- Royal Society of Chemistry
- Keywords
- Fluorine; Oxide; Tin Oxide; Tungsten; Crystal Cutting; Electrochromic Devices; Electrochromism; Glass; Indicators (chemical); Layered Semiconductors; Oxide Films; Oxygen Cutting; Palladium; Palladium Compounds; Semiconductor Doping; Electrochromic Materials; Electrochromics; Energy; Energy Storage Technologies; Intelligent Electronic Systems; Multifunctionals; Nanogranules; Real- Time; Storage Capability; Tungsten Oxide; Amorphous Films; Fluorine; Oxide; Palladium; Tin Oxide; Tungsten; Article; Catalysis; Controlled Study; Electrode; Electrodeposition; Energy; Light Emitting Diode; Pharmaceutics; Scanning Electron Microscopy; X Ray Diffraction
- Citation
- Nanoscale, v.17, no.15, pp 9569 - 9587
- Pages
- 19
- Indexed
- SCIE
SCOPUS
- Journal Title
- Nanoscale
- Volume
- 17
- Number
- 15
- Start Page
- 9569
- End Page
- 9587
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/58102
- DOI
- 10.1039/d5nr00207a
- ISSN
- 2040-3364
2040-3372
- Abstract
- The fusion of electrochromic (EC) materials with energy storage technologies has unlocked a new frontier in compact, intelligent electronic systems. This innovative synergy enables EC materials to serve as real-time visual indicators of energy levels while simultaneously enhancing energy storage performance. In this study, amorphous palladium enriched tungsten oxide (Pd-WO3) (WPd) thin films were synthesized via a streamlined single-step electrodeposition process, with Pd doping significantly enhancing material properties. Structural analysis revealed subtle crystal modifications through X-ray diffraction and a highly uniform, interconnected nanogranular matrix through scanning electron microscopy. The WPd-3 film, containing 3 wt% Pd, emerged as a remarkable material, combining exceptional EC and energy storage capabilities. It demonstrated outstanding optical modulation of 79.73%, superior coloration efficiency of 90.18 cm2 C-1, and impressive cycling stability with 98.11% reversibility. On the energy storage front, it delivered a remarkable areal capacitance of 64.66 mF cm-2, an energy density of 0.020 mW h cm-2, and a power density of 0.075 mW cm-2, retaining 84.79% of its capacitance after 10 000 cycles. The multifunctional WPd-3 device, employing fluorine-doped tin oxide (FTO) electrodes, efficiently powered red LEDs, underscoring its practical viability. These findings position WPd-3 as a cutting-edge material, paving the way for next-generation multifunctional, adaptive electrochromic energy storage (EES) systems.
- Files in This Item
- There are no files associated with this item.
- Appears in
Collections - College of Engineering > Department of Electronics and Electrical Engineering > 1. Journal Articles

Items in ScholarWorks are protected by copyright, with all rights reserved, unless otherwise indicated.