研究目的
To demonstrate a facile and robust approach for realizing the electrochemical switching of plasmonic colors based on colloidal plasmonic nanocrystals coated with polyaniline, enabling dynamic control of plasmonic colors for applications such as flat-panel displays, smart windows, and wearable devices.
研究成果
The study demonstrated the electrochemical switching of plasmonic colors based on PANI-coated plasmonic nanocrystals, achieving a modulation depth of up to 11 dB, fast switching (~5 ms), and excellent stability (over 1000 switching cycles). A transparent electrochemical device was successfully fabricated, showcasing the potential of colloidal plasmonic nanocrystals for dynamic optical applications.
研究不足
The switching contrasts show a trend of red > green > blue, with the scattering intensities at the OFF state being approximately 20%, 30%, and 40% of those at the ON state for the red, green, and blue colors, respectively. The switching rate is limited by the charge diffusion process through the PANI layer, and the non-uniform coating of PANI on the Ag nanocrystals causes a longer switching time.
1:Experimental Design and Method Selection:
The study employed a seed-mediated growth method for synthesizing plasmonic nanocrystals (Au nanorods, Au nanospheres, and Ag nanocubes) and coated them with polyaniline (PANI) to enable electrochemical switching of plasmonic colors.
2:Sample Selection and Data Sources:
Highly uniform plasmonic nanocrystals with localized surface plasmon resonances (LSPRs) across the visible range were synthesized.
3:List of Experimental Equipment and Materials:
Instruments included a JEOL JSM-7800F Schottky field-emission microscope, FEI Tecnai Spirit microscope, Lambda 950 UV/visible/near-infrared spectrophotometer, and an Olympus BX53M dark-field microscope. Materials included HAuCl4, AgNO3, CTAB, SDS, aniline, KPS, and PVA.
4:Experimental Procedures and Operational Workflow:
The nanocrystals were synthesized, coated with PANI, and then subjected to electrochemical switching using a three-electrode system with an ITO substrate as the working electrode.
5:Data Analysis Methods:
Single-particle dark-field scattering images and spectra were acquired and analyzed to study the plasmonic color switching.
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