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Updated: Jan 12, 2026

Fabrication of Ultra-thin Color Films with Highly Absorbing Media Using Oblique Angle Deposition
Published on: August 29, 2017
Enhanced Coloration Efficiency and Cycling Stability in Ultrathin NiOx Films Utilizing Zeroth-Order Fabry-Perot
Dilkhush Khicher1,2, Evan Roy1,2, Nishtha Shelly1,2
1School of Physics, Trinity College Dublin, Dublin D02TK33, Ireland.
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Electrochromic materials exhibit a reversible change of color on application of external voltage and have important applications in smart windows, low energy display technology, and active camouflage. Transition metal oxides have better long-term stability than organics but are limited by their narrow range of colors. For good optical contrast, the active electrochromic layer has a typical thickness of 0.1-1 μm, which determines the energy requirement for switching and the response time. Thicker layers have better optical contrast between states but can be brittle, or prone to delamination, limiting their long-term stability and use on flexible surfaces. In this work, we investigate the electrochromic properties of ultrathin (<100 nm) inorganic electrochromic films. We show that with the addition of a metal backing, we can use an optical resonance known as the zeroth-order Fabry-Perot mode to achieve a high optical contrast of 41.2%. Coloration efficiency values of 205 cm2/C are demonstrated for films as thin as 25 nm and a time response of 2.1 s and 2.5 s for coloring and bleaching, respectively. Cycling stability and optical memory (bistability) are key parameters for practical electrochromic applications. We demonstrate that a sub1 nm Ti adhesion layer is sufficient to stabilize the films for >250 cycles without degrading the optical contrast. The adhesion layer is shown to also significantly improve the optical memory (bistability) of the films. With an extremely low energy consumption of 1.76 mJ/cm2 per switch and an optical contrast loss rate of 3% per hour, the films have a power requirement of 170 nW/cm2 when refreshed every 3 h. Compared to the state of the art, we demonstrate a reduction of 10 times the energy required to switch using 20 times less material.

