Key Laboratory for Micro-Nano Physics and Technology of Hunan Province, College of Physics and Microelectronics Science, Hunan University, Changsha (410082), China.
Phys Chem Chem Phys. 2013 Feb 28;15(8):2912-6. doi: 10.1039/c2cp43718j. Epub 2013 Jan 22.
Composition-tunable semiconductor alloy nanowires are emerging as an important class of materials for the realization of high-performance laterally-arranged multiple bandgap (LAMB) solar cells. Here we report the first growth of GaZnSeAs quaternary alloy nanowires with composed elements between two different groups using a temperature/space-selective CVD route. Under laser excitation, these special quaternary alloy nanowires exhibit composition-related characteristic emissions, with peak wavelengths gradually tunable from 470 nm (2.64 eV) to 832 nm (1.49 eV), covering almost the entire visible spectrum. Surface photovoltage measurements further reveal that these alloy nanowires have tunable bandgaps along the length of the substrate, making them promising candidates for developing high-efficiency LAMB solar cells. These quaternary alloy nanowires represent a new advancement in material synthesis and would have potential applications in a variety of function-tunable and broadband-response optoelectronic devices.
可调组成的半导体合金纳米线作为实现高性能横向排列多带隙(LAMB)太阳能电池的一类重要材料正在兴起。在这里,我们报告了首次使用温度/空间选择性 CVD 路线生长由两种不同族元素组成的 GaZnSeAs 四元合金纳米线。在激光激发下,这些特殊的四元合金纳米线表现出与组成相关的特征发射,其峰值波长可从 470nm(2.64eV)逐渐调谐至 832nm(1.49eV),几乎覆盖整个可见光范围。表面光电压测量进一步表明,这些合金纳米线在沿衬底长度方向上具有可调带隙,这使它们成为开发高效 LAMB 太阳能电池的有前途的候选材料。这些四元合金纳米线代表了材料合成的新进展,在各种功能可调谐和宽带响应的光电子器件中具有潜在的应用。