氮化铪和氮化锆作为热载体吸收剂的评价

S. Shrestha, S. Chung, N. Gupta, Yu Feng, X. Wen, H. Xia, G. Conibeer
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引用次数: 5

摘要

热载流子(HC)太阳能电池旨在通过在热载流子热化之前收集热载流子来解决传统太阳能电池的主要损失。计算出的HC太阳能电池效率非常接近无限串联电池的极限效率。HC太阳能电池需要具有低电子带隙的吸收器,以便它可以吸收大部分太阳光谱。重要的是,吸收器必须充分减缓载流子冷却的速度,以便有足够的时间来收集热载流子。在这项工作中,载流子冷却的主要机制和限制这些机制的可能方法将被讨论。提出了氮化铪和氮化锆作为HC太阳能电池的潜在吸收材料。除了有较大的“声子带隙”适合阻断主载流子冷却机制外,这些材料还具有合理的丰度,可以大规模实施。还将介绍新南威尔士大学最近在制造这些材料方面的工作。
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Evaluation of hafnium nitride and zirconium nitride as Hot Carrier absorber
The Hot Carrier (HC) solar cell aims to tackle a major loss in conventional solar cells by collecting the hot carriers before they thermalise. The calculated efficiency of the HC solar cell is very close to the limiting efficiency for an infinite tandem cell. The HC solar cell requires an absorber with a low electronic band gap so that it can absorb a large fraction of the solar spectrum. Importantly the absorber must sufficiently slow down the rate of carrier cooling so that adequate time is available to collect the hot carriers. In this work the main mechanisms of carrier cooling and possible approaches to restrict these mechanisms will be discussed. Hafnium nitride and zirconium nitride are presented as potential absorber materials for HC solar cells. Besides a large “phononic band gap” suitable to block the main carrier cooling mechanism, these materials have reasonable abundance to allow large scale implementation. Recent work on the fabrication of these materials at UNSW will also be presented.
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