College of Chemistry, Chemical Engineering and Materials Science, Soochow University , Suzhou, Jiangsu 215123, China.
ACS Appl Mater Interfaces. 2017 Aug 9;9(31):26234-26241. doi: 10.1021/acsami.7b04833. Epub 2017 Jul 26.
Owing to the high charge mobility and low processing temperature, ZnO is regarded as an ideal candidate for electron transport layer (ETL) material in thin-film solar cells. For the film preparation, the presently dominated sol-gel (SG) and hydrolysis-condensation (HC) methods show great potential; however, the effect of these two methods on the performance of the resulting devices has not been investigated in the same frame. In this study, the ZnO films made through SG and HC methods were applied in perovskite solar cells (Pero-SCs), and the performances of corresponding devices were compared under parallel conditions. We found that the surface morphologies and the conductivities of the films prepared by SG and HC methods showed great differences. The HC-ZnO films with higher conductivity led to relatively higher device performance, and the best power conversion efficiencie (PCE) of 12.9% was obtained; meanwhile, for Pero-SCs based on SG-ZnO, the best PCE achieved was 10.9%. The better device performance of Pero-SCs based on HC-ZnO should be attributed to the better charge extraction and transportation ability of HC-ZnO film. Moreover, to further enhance the performance of Pero-SCs, a thin layer of pristine C was introduced between HC-ZnO and perovskite layers. By doing so, the quality of perovskite films was improved, and the PCE was elevated to 14.1%. The preparation of HC-ZnO film involves relatively lower-temperature (maximum 100 °C) processing; the films showed better charge extraction and transportation properties and can be a more promising ETL material in Pero-SCs.
由于高电荷迁移率和低处理温度,氧化锌被认为是薄膜太阳能电池中电子传输层(ETL)材料的理想候选材料。对于薄膜制备,目前占主导地位的溶胶-凝胶(SG)和水解缩合(HC)方法显示出巨大的潜力;然而,这两种方法对所得器件性能的影响尚未在同一框架内进行研究。在本研究中,通过 SG 和 HC 方法制备的 ZnO 薄膜应用于钙钛矿太阳能电池(Pero-SCs)中,并在平行条件下比较了相应器件的性能。我们发现,SG 和 HC 方法制备的薄膜的表面形貌和电导率有很大的差异。具有较高电导率的 HC-ZnO 薄膜导致了相对较高的器件性能,获得了最佳的功率转换效率(PCE)为 12.9%;同时,对于基于 SG-ZnO 的 Pero-SCs,最佳的 PCE 为 10.9%。基于 HC-ZnO 的 Pero-SCs 具有更好的器件性能,应该归因于 HC-ZnO 薄膜具有更好的电荷提取和传输能力。此外,为了进一步提高 Pero-SCs 的性能,在 HC-ZnO 和钙钛矿层之间引入了一层原始的 C。通过这样做,改善了钙钛矿薄膜的质量,将 PCE 提高到 14.1%。HC-ZnO 薄膜的制备涉及相对较低的温度(最高 100°C)处理;薄膜显示出更好的电荷提取和传输性能,在 Pero-SCs 中可能是一种更有前途的 ETL 材料。