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具有超过 6%效率和高稳定性的 CdSe(x)Te(1-x) 合金量子点敏化太阳能电池的近红外吸收。

Near infrared absorption of CdSe(x)Te(1-x) alloyed quantum dot sensitized solar cells with more than 6% efficiency and high stability.

机构信息

State Key Laboratory of Bioreactor Engineering, Institute of Applied Chemistry, East China University of Science and Technology, Shanghai 200237, China.

出版信息

ACS Nano. 2013 Jun 25;7(6):5215-22. doi: 10.1021/nn400947e. Epub 2013 May 30.

Abstract

CdSe0.45Te0.55 alloyed quantum dots (QDs) with excitonic absorption onset at 800 nm and particle size of 5.2 nm were prepared via a noninjection high-temperature pyrolysis route and used as a sensitizer in solar cells. A postsynthesis assembly approach with use of bifunctional linker molecule mercaptopropionic acid (MPA) capped water-soluble QDs, obtained via ex situ ligand exchange from the initial oil-dispersible QDs, was adopted for tethering QDs onto mesoporous TiO2 film. With the combination of high loading of the QD sensitizer and intrinsic superior optoelectronic properties (wide absorption range, high conduction band edge, high chemical stability, etc., relative to their constituents CdSe and CdTe) of the adopted CdSe0.45Te0.55 QD sensitizer, the resulting CdSexTe1-x alloyed QD-based solar cells exhibit a record conversion efficiency of 6.36% (Jsc = 19.35 mA/cm(2), Voc = 0.571 V, FF = 0.575) under full 1 sun illumination, which is remarkably better than that of the reference CdSe and CdTe QD based ones. Furthermore, the solar cells with Cu2S counter electrodes based on eletrodeposition of Cu on conductive glass show long-term (more than 500 h) stability.

摘要

通过非注入高温热解路线制备了具有 800nm 激子吸收起始波长和 5.2nm 粒径的 CdSe0.45Te0.55 合金量子点(QD),并将其用作太阳能电池中的敏化剂。采用后合成组装方法,使用双官能链接分子巯基丙酸(MPA)封端的水溶性 QD,通过初始油分散 QD 的原位配体交换获得,将 QD 接枝到介孔 TiO2 薄膜上。由于采用的 CdSe0.45Te0.55 QD 敏化剂具有高载量的 QD 敏化剂和固有优越的光电性能(与组成部分 CdSe 和 CdTe 相比,具有宽吸收范围、高导带边缘、高化学稳定性等),所得 CdSexTe1-x 合金 QD 基太阳能电池在全 1 太阳光照下表现出创纪录的 6.36%的转换效率(Jsc=19.35mA/cm(2),Voc=0.571V,FF=0.575),明显优于参考 CdSe 和 CdTe QD 基太阳能电池。此外,基于在导电玻璃上电沉积 Cu 的 Cu2S 对电极的太阳能电池表现出长期(超过 500 小时)稳定性。

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