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Catalyst- and template-free low-temperature in situ growth of n-type CdS nanowire on p-type CdTe film and p-n heterojunction properties

机译:在p型CdTe膜上的N型Cds纳米线的催化剂和无催化剂低温在p型CdTe膜和P-N异质结石上

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CdS is an important semiconductor used in optoelectronic devices. Simple techniques for growing CdS nanostructures are thus essential at a low cost. This study presents a novel method for growing single-crystal n-type CdS nanowires on p-type CdTe films by thermal annealing in an H2S/N2 mixed gas flow, which does not require the help of a catalyst or template. The formation process and growth mechanism of the nanowires are investigated. Well-dispersed whiskerlike CdS nanostructures are obtained at an appropriate annealing temperature and duration. We suggest that the stress-driving mechanism of nanowire formation may contribute to the growth of CdS nanowires, and that the evaporation of Te through the boundaries of the CdS grain seeds plays an important role in the sustainable growth of nanowire. In addition, CdS/CdTe heterojunction device is fabricated on Mo glass. The I-V characteristic of the heterojunction in dark shows typical rectifying diode behavior. The turn-on voltage can be regulated by annealing conditions. Meanwhile, the obvious photovoltaic effect is obtained on the in situ growth heterojunction prepared at low annealing temperature. Hence, this is a new fabricated method for CdTe-based materials in the field of energy conversion.
机译:CD是光电器件中使用的重要半导体。因此,用于生长CD纳米结构的简单技术以低成本是必需的。该研究提出了一种新的用于通过H 2 S / N 2混合气流中的热退火在p型CdTe膜上生长单晶n型Cds纳米线的新方法,其不需要催化剂或模板的帮助。研究了纳米线的形成过程和生长机制。在适当的退火温度和持续时间内获得分散良好的粉末状CDS纳米结构。我们建议纳米线形成的应力驱动机制可能有助于CDS纳米线的生长,并且TE通过CDS晶粒种子的界限的蒸发在纳米线的可持续生长中起重要作用。此外,CDS / CDTE异质结装置在MO玻璃上制造。黑暗中异质结的I-V特征显示典型的整流二极管行为。可以通过退火条件调节导通电压。同时,在低退火温度下制备的原位生长异质结上得到明显的光伏效果。因此,这是能量转换领域的基于CDTE的材料的新制造方法。

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