Photovoltaics and Optoelectronic Devices Group, Departament de Física, Universitat Jaume I, 12071 Castelló, Spain.
Nat Commun. 2013;4:2272. doi: 10.1038/ncomms3272.
Colloidal quantum dot solar cells achieve spectrally selective optical absorption in a thin layer of solution-processed, size-effect tuned, nanoparticles. The best devices built to date have relied heavily on drift-based transport due to the action of an electric field in a depletion region that extends throughout the thickness of the quantum dot layer. Here we study for the first time the behaviour of the best-performing class of colloidal quantum dot films in the absence of an electric field, by screening using an electrolyte. We find that the action of selective contacts on photovoltage sign and amplitude can be retained, implying that the contacts operate by kinetic preferences of charge transfer for either electrons or holes. We develop a theoretical model to explain these experimental findings. The work is the first to present a switch in the photovoltage in colloidal quantum dot solar cells by purposefully formed selective contacts, opening the way to new strategies in the engineering of colloidal quantum dot solar cells.
胶体量子点太阳能电池在薄的溶液处理的、尺寸效应调谐的纳米粒子层中实现光谱选择性光吸收。迄今为止,构建的最好的器件严重依赖于基于漂移的输运,因为在耗尽区中存在电场,该电场延伸穿过量子点层的整个厚度。在这里,我们首次通过使用电解质进行屏蔽,在没有电场的情况下研究表现最好的胶体量子点膜的行为。我们发现,选择性接触对光电压符号和幅度的作用可以保留,这意味着接触通过电子或空穴的电荷转移的动力学偏好来操作。我们开发了一个理论模型来解释这些实验结果。这项工作首次通过有意形成的选择性接触在胶体量子点太阳能电池中实现了光电压的开关,为胶体量子点太阳能电池的工程设计开辟了新的策略。