Fu Nianqing, Huang Chun, Liu Yan, Li Xing, Lu Wei, Zhou Limin, Peng Feng, Liu Yanchun, Huang Haitao
School of Chemistry and Chemical Engineering, South China University of Technology , Guangzhou 510640, China.
The Key Laboratory of Energy-Efficient Functional Ceramics and Applied Technology of Guangdong Province, Guangzhou Redsun Gas Applications Co., LTD, Guangzhou 510435, China.
ACS Appl Mater Interfaces. 2015 Sep 2;7(34):19431-8. doi: 10.1021/acsami.5b05672. Epub 2015 Aug 21.
Recently, the synthesis of fine TiO2 paste with organic-free binder emerged as an indispensable technique for plastic photovoltaics due to the low temperature processing requirement. In this study, pure anatase TiO2 nanoparticles and organic-free TiO2-sol were successfully synthesized individually in organic-free solution. By mixing the pure anatase TiO2 with the newly developed TiO2-sol binder, mechanically robust and well-interconnected TiO2 films were prepared via UV-irradiation at low temperature for applications in plastic dye-sensitized solar cells (p-DSSCs). The structural, electrical, and photovoltaic properties of the films as well as the devices were investigated by various techniques. The dye-loading amount of the obtained film is 2.6 times that of the P25 electrodes. As revealed by electrochemical impedance spectroscopy results, the film derived from the as-prepared anatase TiO2 paste (A-TiO2) exhibits much smaller charge transport resistance and lower electron recombination rate than the P25 film, while the introduction of TiO2-sol into the paste can further remarkably decrease the resistance of the produced film (AS-TiO2). The p-DSSCs employing AS-TiO2 photoanode yield a high efficiency up to 7.51%, which is 86% higher than the P25 reference cells and also 31% higher than the A-TiO2 cell. As a proof of concept, the newly developed AS-TiO2 paste was also applied to low temperature processed perovskite solar cells (PSCs), and a promising high efficiency up to 9.95% was achieved.
最近,由于低温加工要求,合成无有机粘合剂的精细二氧化钛浆料成为塑料光伏领域不可或缺的技术。在本研究中,在无有机溶液中分别成功合成了纯锐钛矿型二氧化钛纳米颗粒和无有机二氧化钛溶胶。通过将纯锐钛矿型二氧化钛与新开发的二氧化钛溶胶粘合剂混合,在低温下通过紫外线照射制备了机械坚固且相互连接良好的二氧化钛薄膜,用于塑料染料敏化太阳能电池(p-DSSC)。通过各种技术研究了薄膜以及器件的结构、电学和光伏性能。所得薄膜的染料负载量是P25电极的2.6倍。电化学阻抗谱结果表明,由制备的锐钛矿型二氧化钛浆料(A-TiO2)衍生的薄膜比P25薄膜表现出更小的电荷传输电阻和更低的电子复合率,而将二氧化钛溶胶引入浆料中可以进一步显著降低所制备薄膜(AS-TiO2)的电阻。采用AS-TiO2光阳极的p-DSSC产生高达7.51%的高效率,比P25参考电池高86%,也比A-TiO2电池高31%。作为概念验证,新开发的AS-TiO2浆料也应用于低温加工的钙钛矿太阳能电池(PSC),并实现了高达9.95%的有前景的高效率。