Unveiling Energy Conversion Mechanisms and Regulation Strategies in Perovskite Solar Cells.
Zhenhai AiTianshu MaYuqi ZhangYining BaoLuolei ShiZhenhai YangYaohui ZhanLinling QinGuoyang CaoXiaofeng LiPublished in: Small (Weinheim an der Bergstrasse, Germany) (2024)
Despite recent revolutionary advancements in photovoltaic (PV) technology, further improving cell efficiencies toward their Shockley-Queisser (SQ) limits remains challenging due to inherent optical, electrical, and thermal losses. Currently, most research focuses on improving optical and electrical performance through maximizing spectral utilization and suppressing carrier recombination losses, while there is a serious lack of effective opto-electro-thermal coupled management, which, however, is crucial for further improving PV performance and the practical application of PV devices. In this article, the energy conversion and loss processes of a PV device (with a specific focus on perovskite solar cells) are detailed under both steady-state and transient processes through rigorous opto-electro-thermal coupling simulation. By innovatively coupling multi-physical behaviors of photon management, carrier/ion transport, and thermodynamics, it meticulously quantifies and analyzes energy losses across optical, electrical, and thermal domains, identifies heat components amenable to regulation, and proposes specific regulatory means, evaluates their impact on device efficiency and operating temperature, offering valuable insights to advance PV technology for practical applications.
Keyphrases
- perovskite solar cells
- high speed
- high resolution
- room temperature
- single cell
- genome wide
- signaling pathway
- magnetic resonance imaging
- mental health
- cell therapy
- physical activity
- transcription factor
- dna repair
- oxidative stress
- living cells
- heat stress
- dna methylation
- mass spectrometry
- bone marrow
- brain injury
- subarachnoid hemorrhage
- ionic liquid