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Fundamental losses in solar cells

机译:太阳能电池的基本损失

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This paper considers intrinsic loss processes that lead to fundamental limits in solar cell efficiency. Five intrinsic loss processes are quantified, accounting for all incident solar radiation. An analytical approach is taken to highlight physical mechanisms, obscured in previous numerical studies. It is found that the free energy available per carrier is limited by a Carnot factor resulting from the conversion of thermal energy into entropy free work, a Boltzmann factor arising from the mismatch between absorption and emission angles and also carrier thermalisation. It is shown that in a degenerate band absorber, a free energy advantage is achieved over a discrete energy level absorber due to entropy transfer during carrier cooling. The non-absorption of photons with energy below the bandgap and photon emission from the device are shown to be current limiting processes. All losses are evaluated using the same approach providing a complete mathematical and graphical description of intrinsic mechanisms leading to limiting efficiency. Intrinsic losses in concentrator cells and spectrum splitting devices are considered and it is shown that dominant intrinsic losses are theoretically avoidable with novel device designs.
机译:本文考虑了导致太阳能电池效率受到根本限制的内在损耗过程。量化了五个内在损耗过程,考虑了所有入射太阳辐射。采取了一种分析方法来强调物理机制,这在以前的数值研究中是模糊的。已经发现,每个载体可用的自由能受到热能转换成无熵功的卡诺因子,由吸收和发射角之间的不匹配以及载体热化引起的玻尔兹曼因子的限制。结果表明,在简并的带吸收器中,由于载流子冷却过程中的熵转移,相对于离散能级吸收器获得了自由能优势。具有低于带隙的能量的光子的不吸收和来自器件的光子发射被证明是电流限制过程。使用相同的方法对所有损失进行评估,从而提供导致效率受限的内在机理的完整数学和图形描述。考虑了集中器单元和频谱分离设备中的固有损耗,并且表明,新颖的设备设计在理论上可以避免主要固有损耗。

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