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含氧化锌微棒的染料敏化太阳能电池的光伏性能

Photovoltaic Performance of Dye-Sensitized Solar Cells Containing ZnO Microrods.

作者信息

Cho Seong Il, Sung Hye Kyeong, Lee Sang-Ju, Kim Wook Hyun, Kim Dae-Hwan, Han Yoon Soo

机构信息

School of Advanced Materials and Chemical Engineering, Daegu Catholic University, Gyeongbuk 38430, Korea.

Department of Organic Material Science and Engineering, Pusan National University, Busan 46241, Korea.

出版信息

Nanomaterials (Basel). 2019 Nov 20;9(12):1645. doi: 10.3390/nano9121645.

Abstract

At an elevated temperature of 90 °C, a chemical bath deposition using an aqueous solution of Zn(NO)·6HO and (CH)N resulted in the formation of both nanoflowers and microrods of ZnO on F-doped SnO glass with a seed layer. The nanoflowers and microrods were sensitized with dyes for application to the photoelectrodes of dye-sensitized solar cells (DSSCs). By extending the growth time of ZnO, the formation of nanoflowers was reduced and the formation of microrods favored. As the growth time was increased from 4 to 6 and then to 8 h, the open circuit voltage () values of the DSSCs were increased, whilst the short circuit current () values varied only slightly. Changes in the dye-loading amount, dark current, and electrochemical impedance were monitored and they revealed that the increase in was found to be due to a retardation of the charge recombination between photoinjected electrons and I ions and resulted from a reduction in the surface area of ZnO microrods. A reduced surface area decreased the dye contents adsorbed on the ZnO microrods, and thereby decreased the light harvesting efficiency (LHE). An increase in the electron collection efficiency attributed to the suppressed charge recombination counteracted the decreased LHE, resulting in comparable J values regardless of the growth time.

摘要

在90°C的高温下,使用Zn(NO)·6HO和(CH)N的水溶液进行化学浴沉积,在具有种子层的F掺杂SnO玻璃上形成了ZnO纳米花和微棒。纳米花和微棒用染料敏化,用于染料敏化太阳能电池(DSSC)的光电极。通过延长ZnO的生长时间,纳米花的形成减少,微棒的形成占优势。随着生长时间从4小时增加到6小时,然后增加到8小时,DSSC的开路电压()值增加,而短路电流()值仅略有变化。监测了染料负载量、暗电流和电化学阻抗的变化,结果表明,的增加是由于光注入电子与I离子之间的电荷复合受到抑制,这是由于ZnO微棒表面积减小所致。表面积减小会降低吸附在ZnO微棒上的染料含量,从而降低光捕获效率(LHE)。归因于电荷复合抑制的电子收集效率的提高抵消了LHE的降低,导致无论生长时间如何,J值都相当。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e90e/6956303/afeff24952fc/nanomaterials-09-01645-g001.jpg

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