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首页> 外文期刊>Journal of Sol-Gel Science and Technology >Preparation of dye-sensitized solar cells using template free TiO2 nanotube arrays for enhanced power conversion
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Preparation of dye-sensitized solar cells using template free TiO2 nanotube arrays for enhanced power conversion

机译:使用模板自由TiO2纳米管阵列制备染料敏化太阳能电池,用于增强功率转换

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By using the vertically aligned ZnO nanorod arrays (NRAs), TiO2 nanoparticles attached ZnO nanorods (TiO2@ZnO) and TiO2 nanotube arrays (NTAs) were prepared from feasible seed-induced template free sol-gel dip coating method. TiO2 NTAs were prepared by removing the ZnO nanorod cores using wet-chemical etching. By using TiO2 NTAs as working electrode, dye-sensitized solar cell with enhanced power conversion efficiency was obtained. To verify the formation of TiO2 NTAs various characterization techniques such as X-ray diffraction, UV-VIS absorbance spectra, Field Emission Scanning Electron Microscopy (FESEM), Energy-Dispersive Spectra (EDS), and High-Resolution Transmission Electron Microscopy (HRTEM) have been used. X-ray diffraction patterns of ZnO NRAs and TiO2@ZnO NRAs indicate that prepared films possess both the ZnO wurtzite (002) and TiO2 anatase (101) phase. FESEM image clearly shows that vertically aligned ZnO nanorods having the diameter and length of similar to 180-240 nm and similar to 1.5 mu m, respectively, have been formed. The FESEM image also clearly showed that diameter and length of TiO2@ZnO NRAs are similar to 250-320 nm and similar to 1.5 mu m, respectively. By using UV-VIS absorption spectra, the band gap of vertically aligned ZnO NRAs, TiO2@ZnO NRAs, and TiO2 NTAs have been calculated and its values were 3.14, 3.20, and 3.52 eV, respectively. The dye-sensitized solar cell was prepared by using three different working electrodes ZnO NRAs, TiO2@ZnO, and TiO2 NTAs. The power conversion efficiency of dye-sensitized solar cells prepared using ZnO NRAs, TiO2@ZnO, and TiO2 NTAs are 3.53%, 4.04%, and 5.18%, respectively. TiO2 NTAs with 10 s HCl etching exhibited the highest photoelectric conversion efficiency of 5.18% with short-circuit photocurrent density (J (sc)) = 13.34 mA/cm(2) and open-circuit photovoltage (V (oc)) = 0.63 V.
机译:通过使用垂直对准的ZnO纳米棒阵列(NRAS),由可行的种子诱导的模板游离溶胶浸涂方法制备连接的ZnO纳米粒子(TiO 2 ZnO)和TiO2纳米管阵列(NTAS)。通过使用湿化学蚀刻除去ZnO纳米棒芯来制备TiO2 NTA。通过使用TiO2 NTA作为工作电极,获得具有增强功率转换效率的染料敏化太阳能电池。为了验证TiO 2 NTA的形成,例如X射线衍射,UV-VIS吸光度谱,场发射扫描电子显微镜(FESEM),能量分散谱(EDS)和高分辨率透射电子显微镜(HRTEM)被用过。 ZnO NRAS和TiO 2的X射线衍射图案@ ZnO NRA表示制备的薄膜具有ZnO Wurtzite(002)和TiO 2锐钛矿(101)相。 FeSEM图像清楚地表明,已经形成了具有直径和长度的垂直对齐的ZnO纳米棒,其分别具有与180-240nm的长度和类似于1.5μm。 FeSEM图像还清楚地表明TiO 2的直径和长度与250-320nm相似,分别类似于1.5μm。通过使用UV-Vis吸收光谱,已经计算出垂直对齐的ZnO NRAS,TiO 2 @ ZnO NRA和TiO2 NTA的带隙,分别为3.14,3.20和3.52eV。通过使用三种不同的工作电极ZnO NRA,TiO 2 ZnO和TiO 2 NTA制备染料敏化太阳能电池。使用ZnO NRAS,TiO2 @ ZnO和TiO2 NTA制备的染料敏化太阳能电池的功率转换效率分别为3.53%,4.04%和5.18%。具有10 S HCl蚀刻的TiO2 NTA,具有短路光电流密度(J(SC))= 13.34mA / cm(2)和开路光电图(V(OC))= 0.63 V的最高光电转换效率为5.18% 。

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