Enhancing pyroelectric performance with an electrically-controlled thermal switch
ORAL
Abstract
While photovoltaic cells have had widespread success in converting solar energy to electrical energy, their efficiency diminishes when operating at high temperatures, limiting their suitability for high-power applications. In contrast, pyroelectric materials offer distinct advantages in such scenarios; their efficiency is enhanced under elevated temperatures, creating the best candidates for energy conversion applications. However, a continuous output from the pyroelectric device requires efficient, fast heating and cooling cycles. Here, we report a tunable thermal switch with high reflectance modulation to increase pyroelectric materials’ performance. The thermal switch comprises a thin-film stack of ITO/WO3/Ta2O5/NiO/Au on glass substrate. The layers’ thicknesses are optimized for higher reflectance modulation, fast response time, and lower power dissipation. We achieved reflectance modulation of 60% (79% to 19%), with a coloration time of 7.8 seconds and a bleaching time of 3.5 seconds. Coupling this thermal switch with the pyroelectric (550-µm-thick PZT) material’s heating/cooling processes, the energy density output increased significantly (~89%) in comparison to a device lacking such tunability.
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Presenters
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Bimal Nepal
University of Louisville
Authors
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Bimal Nepal
University of Louisville
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Jacob Hannah
University of Louisville
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Sergio B Mendes
University of Louisville
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Bikram Bhatia
University of Lousiville
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Dip Dutta
University of Louisville
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Dominic Smith
University of Louisville