Radiation and Photochemistry Division, Bhabha Atomic Research Centre, Mumbai, 400085, India.
Institute of Nano Science and Technology, Mohali, Punjab, 160062, India.
Chemphyschem. 2019 Oct 16;20(20):2662-2667. doi: 10.1002/cphc.201900379. Epub 2019 Jun 27.
In this paper, we have investigated the possibility of utilizing CdZnS and CdZnSe alloy nanocrystals (NCs) as sensitizers in quantum-dot solar cells (QDSCs). The alloy NCs were synthesized by a high-temperature hot injection method and subsequently characterized through high photoluminescence quantum yield, along with larger size compared to binary NCs. Femtosecond transient absorption measurements revealed long-lived charge carriers in the alloy structure due to more structural rigidity and less defect states. Finally, the solar-cell efficiencies of the CdZnS (CdZnSe) NCs were found to be 3.05 % (3.69 %) as compared to 1.23 % (3.12 %) efficiencies for CdS (CdSe) NCs. Thus, common anion ternary NCs have been successfully utilized for solar-cell assembly and can be helpful for constructing tandem solar cells to harvest the high-energy portion of solar radiation.
在本文中,我们研究了将 CdZnS 和 CdZnSe 合金纳米晶体(NCs)用作量子点太阳能电池(QDSCs)敏化剂的可能性。合金 NCs 通过高温热注射法合成,并通过高光致发光量子产率以及与二元 NCs 相比更大的尺寸进行了表征。飞秒瞬态吸收测量表明,由于结构刚性更大且缺陷态更少,合金结构中存在长寿命电荷载流子。最后,与 CdS(CdSe)NCs 的 1.23%(3.12%)效率相比,CdZnS(CdZnSe)NCs 的太阳能电池效率分别为 3.05%(3.69%)。因此,已经成功地将常见的阴离子三元 NCs 用于太阳能电池组件,并且可以有助于构建串联太阳能电池以收集太阳能辐射的高能部分。