Anodic electrochromic (EC) oxides are of major interest as counter electrodes for smart window applications owing to their unique optical properties upon charge insertion and extraction. However, performance optimization of such oxides has been hampered by limited understanding of their EC mechanism, particularly in Li+-conducting electrolytes. This paper reports on NiOx films with 1.16 x 1.32, prepared by sputter deposition. These films are immersed in an electrolyte of lithium perchlorate in propylene carbonate, and EC properties are studied by cyclic voltammetry and in situ optical transmittance measurements. The electrochromism is significantly enhanced at large values of x. It has been found that charge exchange in Ni oxide is mainly d...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
AbstractElectrochromic ‘smart windows’, capable of dynamically adjusting light transmittance, glare ...
Anodic electrochromic (EC) oxides are of major interest as counter electrodes for smart window appli...
Anodic electrochromic (EC) oxides are of major interest as counter electrodes for smart window appli...
Ni oxide thin films are widely used in electrochromic (EC) devices with variable throughput of visib...
Ni oxide thin films are widely used in electrochromic (EC) devices with variable throughput of visib...
Thin films of Ni oxide, which is a promising anodic electrochromic material, were deposited by react...
Electrochromic thin films can effectively regulate the visible and infrared light passing through a ...
Electrochromic (EC) materials are able to change their optical properties, reversibly and persistent...
Electrochromic (EC) materials are able to change their optical properties, reversibly and persistent...
Electrochromic (EC) materials are able to change their optical properties, reversibly and persistent...
Electrochromic (EC) materials are able to change their optical properties, reversibly and persistent...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
AbstractElectrochromic ‘smart windows’, capable of dynamically adjusting light transmittance, glare ...
Anodic electrochromic (EC) oxides are of major interest as counter electrodes for smart window appli...
Anodic electrochromic (EC) oxides are of major interest as counter electrodes for smart window appli...
Ni oxide thin films are widely used in electrochromic (EC) devices with variable throughput of visib...
Ni oxide thin films are widely used in electrochromic (EC) devices with variable throughput of visib...
Thin films of Ni oxide, which is a promising anodic electrochromic material, were deposited by react...
Electrochromic thin films can effectively regulate the visible and infrared light passing through a ...
Electrochromic (EC) materials are able to change their optical properties, reversibly and persistent...
Electrochromic (EC) materials are able to change their optical properties, reversibly and persistent...
Electrochromic (EC) materials are able to change their optical properties, reversibly and persistent...
Electrochromic (EC) materials are able to change their optical properties, reversibly and persistent...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
Films of electrochromic Ni oxide, with thickness in the ∼100–1000-nm range, were prepared by reactiv...
AbstractElectrochromic ‘smart windows’, capable of dynamically adjusting light transmittance, glare ...