Patel Malkeshkumar, Park Hyeong-Ho, Bhatnagar Priyanka, Kumar Naveen, Lee Junsik, Kim Joondong
Photoelectric and Energy Device Application Lab (PEDAL), Multidisciplinary Core Institute for Future Energies (MCIFE), 119 Academy Rd. Yeonsu, Incheon, 22012, Republic of South Korea.
Department of Electrical Engineering, Incheon National University, 119 Academy Rd., Yeonsu, Incheon, 22012, Republic of South Korea.
Nat Commun. 2024 Apr 24;15(1):3466. doi: 10.1038/s41467-024-47483-2.
Thermal losses in photoelectric devices limit their energy conversion efficiency, and cyclic input of energy coupled with pyroelectricity can overcome this limit. Here, incorporating a pyroelectric absorber into a photovoltaic heterostructure device enables efficient electricity generation by leveraging spontaneous polarization based on pulsed light-induced thermal changes. The proposed pyroelectric-photovoltaic device outperforms traditional photovoltaic devices by 2.5 times due to the long-range electric field that occurs under pulse illumination. Optimization of parameters such as pulse frequency, scan speed, and illumination wavelength enhances power harvesting, as demonstrated by a power conversion efficiency of 11.9% and an incident-photon-to-current conversion efficiency of 200% under optimized conditions. This breakthrough enables reconfigurable electrostatic devices and presents an opportunity to accelerate technology that surpasses conventional limits in energy generation.
光电器件中的热损耗限制了其能量转换效率,而与热释电效应相结合的能量循环输入可以克服这一限制。在此,将热释电吸收体集成到光伏异质结构器件中,能够利用基于脉冲光致热变化的自发极化实现高效发电。由于脉冲光照下会产生长程电场,所提出的热释电-光伏器件的性能比传统光伏器件高出2.5倍。脉冲频率、扫描速度和光照波长等参数的优化提高了能量收集效率,在优化条件下,功率转换效率达到11.9%,入射光子到电流的转换效率达到200%,这证明了上述结论。这一突破使得可重构静电装置成为可能,并为加速超越传统能量产生限制的技术提供了契机。