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HYBRID EVENT: Join us in person in Rome, Italy or attend virtually from anywhere.

7th Edition of

Chemistry World Conference

June 21-23, 2027 | Rome, Italy

Chemistry 2027

Durable surface-confined metal-terpyridine architectures for electrochromic applications

Speaker at Chemistry World Conference 2027 - Olena Zenkina
Ontario Tech University, Canada
Title : Durable surface-confined metal-terpyridine architectures for electrochromic applications

Abstract:

Electrochromic (EC) devices, including “smart” windows, are promising energy-saving technologies that can reduce building energy consumption by dynamically controlling the transmission of light and heat. These devices exploit electrochromism- the reversible change in colour or optical transparency induced by a small applied voltage. EC materials based on transition-metal complexes offer an attractive alternative to conventional inorganic systems because they provide low-cost, molecularly tunable optical properties without requiring noble metals. We developed multiple methodologies to create surface-confined, efficient, and robust EC materials based on monolayers or oligomers of late transition-metal complexes (Fe, Ru, and Os) covalently embedded on surface-enhanced, conductive, screen-printed metal-oxide supports.1 We demonstrated that molecular structures-including both the metal complexes and their anchoring linkers—can be tuned prior to deposition or modified directly on the surface to control the colour, switching behaviour, and stability of electrochromic monolayers.2 Our approach further enables the integration of different transition-metal complexes within a single conductive support, allowing selective electrochemical addressing of individual metal centres and enabling multiple colour-to-colour transitions within one film. Through controlled deposition strategies, we demonstrated sequential access to multiple coloured states and effective “colour mixing” directly on the surface.3 We also established that tailoring the composition, morphology, and porosity of the conductive support can substantially enhance colouration efficiency and provide exceptionally long-term operational stability.4 Beyond optical switching, we explored the energy-storage capabilities of hybrid electrochromic devices and investigated their electrochemical kinetics and plausible degradation pathways.5 Finally, we developed novel double-sided device architectures capable of operating in both unilateral and bilateral switching modes, demonstrating unprecedented durability (100,000+ cycles) while maintaining high electrochromic performance.6-7

Biography:

Dr. Olena V. Zenkina is a Full Professor at Ontario Tech University and an internationally recognized researcher in inorganic, organometallic chemistry, and materials science. Her interdisciplinary program develops “smart,” molecularly defined multifunctional materials with programmable properties for sensors, catalysts, coatings, and sustainable energy technologies. Her research leadership has been recognized through the CNC/IUPAC Travel Award (2020), Emerging Materials Chemistry Investigators Lecture Award (2020), Faculty of Science Collaborative R&D Award (2022), Research Excellence Mid-Career Researcher Award (2024), and Research Excellence Chair in Advanced Materials (2022–2024; 2026–2029). She has published 60+ papers, a book, a book chapter, four patents, received ~3,900 citations, and delivered 40+ invited talks. See full publication list here: http://bit.ly/ovzenkina.

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