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Tunable Near Infrared Localized Surface Plasmon Resonance of F, In co-doped CdO Nanocrystals.

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Nanocrystals (NCs) of transparent conducting oxides with a localized surface plasmon resonance (LSPR) in the near infrared (NIR) spectral region show promising electrochromic properties for the development of a new… Click to show full abstract

Nanocrystals (NCs) of transparent conducting oxides with a localized surface plasmon resonance (LSPR) in the near infrared (NIR) spectral region show promising electrochromic properties for the development of a new generation of dynamic "smart windows". In this regard, we exploit thin films of F, In co-doped CdO (FICO) NCs as active coatings for electrochromic devices. The control over the dopants concentration in FICO NCs results in a fine tuning of their LSPR across the NIR region of the electromagnetic spectrum. Highly transparent mesoporous electrodes were prepared from colloidal FICO NCs by in-situ ligand exchange of the pristine organic capping ligands. This approach preserves the optical and electrical properties of native NCs and delivers highly homogeneous, non-scattering films with a good electronic coupling between NCs. We achieved a dynamic control over the LSPR frequency by reversible electrochemical doping, hence a spectrally selective modulation of the optical transmittance in the NIR region of the solar spectrum which carries nearly 50% of the whole solar heat. Spectroelectrochemical characterization, coloration efficiency and switching kinetics results indicate that thin film based on FICO NCs are potential candidates for plasmonic electrochromic applications. Moreover, the high electron mobility and wide optical band gap of FICO makes NCs of this material suitable for large area devices capable of dynamically controlling the heat load coming from the solar infrared radiation without affecting the visible light transmittance.

Keywords: near infrared; doped cdo; surface plasmon; localized surface; plasmon resonance; fico ncs

Journal Title: ACS applied materials & interfaces
Year Published: 2019

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