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100 internal quantum efficiency in polychiral single-walled carbon nanotube bulk heterojunction/silicon solar cells

机译:多丘单壁碳纳米管散装/硅太阳能电池100%内部量子效率

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摘要

Bulk heterojunction films made of polychiral single-walled carbon nanotubes () form efficient heterojunction solar cells with n-type crystalline silicon (), due to their superior electronic, optical, and electrical properties. The films are multi-functional, since their hierarchical surface morphology provides a biomimetical anti-reflective, air-stable, and hydrophobic encapsulation for Si. Also, the films have a large effective area conferring them high optical absorption, which actively contribute to the solar energy harvesting together with Si. Here, we report photovoltaic devices with photoconversion efficiency up to 12% and a record 100% internal quantum efficiency (). Such unprecedented IQE value is truly remarkable and indicates that every absorbed photon from the device, at some wavelengths, generates a pair of separated charge carriers, which are collected at the electrodes. The SWCNT/Si devices favor high and broadband carrier photogeneration; charge dissociation of ultra-fast hot excitons; transport of electrons through n-Si and high-mobility holes through the SWCNT percolative network. Moreover, by varying the film thickness, it is possible tailoring the physical properties of such a two-dimensional interacting system, therefore the overall device features. These results not only pave the way for low-cost, high-efficient, and broadband photovoltaics, but also are promising for the development of generic SWCNT-based optoelectronic applications.
机译:()制成polychiral单壁碳纳米管的本体异质结薄膜形成有效的异质结太阳能电池具有n型结晶硅(),由于它们的优异的电子,光学,和电性能。该膜是多官能的,因为它们的分层表面形态提供了一种biomimetical防反射,空气稳定的,并且疏水性进行封装的Si。而且,膜具有大的有效面积,赋予他们高光学吸收,这积极有Si向太阳能收集在一起。这里,我们报告与光转换效率高达光伏器件12%和记录100%的内部量子效率()。这样前所未有IQE值是真正了不起的,指示每一个从设备被吸收的光子,在一部分的波长,产生一对分离的电荷载流子,其在电极收集的。的SWCNT / Si器件有利于高和宽带载体光生;超快速的热激子的解离充电;通过SWCNT渗流网络,通过正Si和电子的传输的高迁移率的孔。此外,通过改变膜厚度,能够剪裁这样的二维相互作用系统的物理性质,因此整个装置的功能。这些结果不仅铺平了低成本,高效率和宽带光伏的方式,但也有希望用于通用基于SWCNT的光电应用的开发。

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