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Vertically Aligned ZnO Nanorods on Hot Filament Chemical Vapor Deposition Grown Graphene Oxide Thin Film Substrate: Solar Energy Conversion

机译:在热丝化学气相沉积生长的氧化石墨烯薄膜基板上垂直排列的ZnO纳米棒:太阳能转化

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Vertically aligned zinc oxide (ZnO) nanorods (NRs) were grown by the low-temperature hydrothermal method on graphene oxide (GO) coated FTO substrates, where GO was directly deposited on fluorine doped tin oxide (FTO) substrates using hydrogen (H2, 65 sccm) and methane (CH4, 50 sccm) through hot filament chemical vapor deposition (HFCVD) technique. The vertically aligned ZnO NRs were applied as effective photoanode for the fabrication of efficient dye sensitized solar cells (DSSCs). Highly uniform ZnO NRs were grown on GO deposited FTO substrate with the average length of ~2-4 μm and diameter of ~200-300 nm. The possible mechanism of grown ZnO NRs clearly revealed the significant role of GO on FTO in architecting the aligned growth of ZnO NRs. The grown vertically aligned ZnO NRs possessed a typical wurtzite hexagonal crystal structure. The structural and the optical studies confirmed the formation of partial hydrogen bonding between surface functional groups of GO and ZnO NRs. A solar-to-electricity conversion efficiency of ~2.5% was achieved by DSSC fabricated with ZnO NRs deposited on graphene oxide (GO-ZnO NRs) thin film photoanode. The presence of GO on FTO substrate expressively increased the surface area of GO-ZnO photoanode, which resulted in high dye loading as well as high light harvesting efficiency and thus ensued the increased photocurrent density and the improved performance of DSSCs.
机译:通过低温水热法在氧化石墨烯(GO)涂覆的FTO衬底上生长垂直排列的氧化锌(ZnO)纳米棒(NRs),其中GO使用氢(H2,65)直接沉积在掺氟氧化锡(FTO)衬底上sccm)和甲烷(CH4,50 sccm)通过热丝化学气相沉积(HFCVD)技术进行。垂直排列的ZnO NRs被用作有效的光电阳极,用于制造高效的染料敏化太阳能电池(DSSC)。高度均匀的ZnO NRs在GO沉积的FTO衬底上生长,平均长度约为2-4μm,直径约为200-300 nm。生长的ZnO NRs的可能机制清楚地揭示了GO在FTO中在设计ZnO NRs的定向生长中的重要作用。生长的垂直排列的ZnO NR具有典型的纤锌矿六方晶体结构。结构和光学研究证实,GO和ZnO NRs的表面官能团之间形成了部分氢键。用沉积在氧化石墨烯(GO-ZnO NRs)薄膜光电阳极上的ZnO NRs制成的DSSC,实现了约2.5%的太阳能转换效率。 FTO基板上GO的存在明显增加了GO-ZnO光电阳极的表面积,从而导致高染料负载以及高集光效率,从而确保了光电流密度的提高和DSSC的性能提高。

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