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Enhanced charge transport and photovoltaic performance induced by incorporating rare-earth phosphor into organic-inorganic hybrid solar cells

机译:通过将稀土磷光体掺入有机-无机混合太阳能电池中,可增强电荷传输和光伏性能

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In this work, dysprosium ion decorated yttrium oxide (Dy~(3+):Y2O3) nanocrystal phosphors were incorporated into TiO2 acceptor thin film in a bid to enhance the light harvest, charge separation and transfer in the hybrid solar cells. The results show that the energy level offset between the donor (P3HT) and the acceptor (Dy~(3+):Y2O3-TiO2) has been narrowed down, thus leading to the enhanced electron and hole transports, and also photovoltaic performances as compared to pure TiO2 without incorporating Dy~(3+):Y2O3. By applying femtosecond transient optical spectroscopy, after the incorporation of dopant Dy~(3+):Y2O3 into TiO2 at 6 wt%, both the hot electron and hole transfer lifetimes have been shortened, that is, from 30.2 ps and 6.94 ns to 25.1 ps and 1.26 ns, respectively, and an enhanced efficiency approaching 3% was achieved as compared to 2.0% without doping, indicating that the energetic charges are captured more efficiently benefitting a higher power conversion efficiency. Moreover, these results reveal that both the conduction band (CB) and valence band (VB) edges of the acceptor were elevated by 0.57 and 0.32 eV, respectively, after incorporating 6 wt% Dy~(3+):Y2O3. This work demonstrates that distinct energy level alignment engineered by Dy~(3+):Y2O3 phosphor has an important role in pursuing efficient future solar cells and underscores the promising potential of rare-earth phosphor in solar applications.
机译:在这项工作中,decorated离子修饰的氧化钇(Dy〜(3 +):Y2O3)纳米晶体荧光粉被掺入TiO2受体薄膜中,以增强混合太阳能电池的光收集,电荷分离和转移。结果表明,供体(P3HT)和受体(Dy〜(3 +):Y2O3-TiO2)之间的能级偏移被缩小,从而导致电子和空穴传输增强,并且光电性能与无需掺入Dy〜(3 +):Y2O3即可制得纯TiO2。通过应用飞秒瞬态光谱法,在将掺杂剂Dy〜(3 +):Y2O3以6 wt%的含量掺入TiO2中之后,热电子和空穴传输寿命都从30.2 ps和6.94 ns缩短到25.1。分别为ps和1.26 ns,实现了接近3%的增强效率,而未掺杂的效率为2.0%,这表明能量电荷被更有效地捕获,从而受益于更高的功率转换效率。此外,这些结果表明,在掺入6wt%的Dy〜(3 +):Y2O3后,受体的导带(CB)和价带(VB)边缘分别提高了0.57和0.32eV。这项工作表明,由Dy〜(3 +):Y2O3磷光体设计的独特的能级取向在追求高效的未来太阳能电池方面具有重要作用,并强调了稀土磷光体在太阳能应用中的潜力。

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