Sun Baoquan, Findikoglu Alp T, Sykora Milan, Werder Donald J, Klimov Victor I
Chemistry Division, Materials Physics & Applications Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.
Nano Lett. 2009 Mar;9(3):1235-41. doi: 10.1021/nl9001469.
Semiconductor nanocrystals (NCs) are promising materials for applications in photovoltaic (PV) structures that could benefit from size-controlled tunability of absorption spectra, the ease of realization of various tandem architectures, and, perhaps, increased conversion efficiency in the ultraviolet region through carrier multiplication. The first practical step toward utilization of the unique properties of NCs in PV technologies could be through their integration into traditional silicon-based solar cells. Here, we demonstrate an example of such hybrid PV structures that combine colloidal NCs with amorphous silicon. In these structures, NCs and silicon are electronically coupled, and the regime of this coupling can be tuned by altering the alignment of NC energy states with regard to silicon band edges. For example, using wide-gap CdSe NCs we demonstrate a photoresponse which is exclusively due to the NCs. On the other hand, in devices comprising narrow-gap PbS NCs, both the NCs and silicon contribute to photocurrent, which results in PV response extending from the visible to the near-infrared region. The hybrid silicon/PbS NC solar cells show external quantum efficiencies of approximately 7% at infrared energies and 50% in the visible and a power conversion efficiency of up to 0.9%. This work demonstrates the feasibility of hybrid PV devices that combine advantages of mature silicon fabrication technologies with the unique electronic properties of semiconductor NCs.
半导体纳米晶体(NCs)是用于光伏(PV)结构的有前景的材料,这些结构可受益于吸收光谱的尺寸可控可调性、实现各种串联架构的简易性,以及或许通过载流子倍增在紫外区域提高转换效率。在光伏技术中利用NCs独特性质的第一个实际步骤可能是将它们集成到传统的硅基太阳能电池中。在此,我们展示了这样一种混合光伏结构的示例,它将胶体NCs与非晶硅结合在一起。在这些结构中,NCs和硅是电耦合的,并且这种耦合的状态可以通过改变NC能量状态相对于硅带边的排列来调节。例如,使用宽带隙CdSe NCs,我们展示了一种仅由NCs引起的光响应。另一方面,在包含窄带隙PbS NCs的器件中,NCs和硅都对光电流有贡献,这导致光伏响应从可见光延伸到近红外区域。硅/PbS NC混合太阳能电池在红外能量下的外量子效率约为7%,在可见光下为50%,功率转换效率高达0.9%。这项工作证明了结合成熟硅制造技术的优势与半导体NCs独特电子性质的混合光伏器件的可行性。