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首页> 外文期刊>RSC Advances >One-step synthesis of solution processed time-dependent highly efficient and stable PbS counter electrodes for quantum dot-sensitized solar cells
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One-step synthesis of solution processed time-dependent highly efficient and stable PbS counter electrodes for quantum dot-sensitized solar cells

机译:量子点敏化太阳能电池的固溶时效高效稳定的PbS对电极的一步合成

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The performance of quantum dot-sensitized solar cells (QDSSC) is restricted due to the insufficient electrocatalytic activity and stability of counter electrodes (CEs), which are critical but challenging issues. The exploration of CE catalysts to match the redox couples has become a feasible route in the pursuit of high power conversion efficiency, stability, and reduction of fabrication costs. Electrodes were made by the deposition of a PbS thin film on a fluorine-doped tin oxide substrate at various growth times by a facile one-step chemical bath deposition approach. They were used as a highly catalytic CE without any post-treatments for QDSSCs filled with aqueous sulfide/polysulfide (S2-/S-n(2-) electrolyte. The morphology, thickness, crystal structure, composition, and optical properties are dependent on the growth time of PbS and were characterized by SEM, XRD, XPS, EDS, and UV-vis analysis. In addition to surface morphology, the increase in the atomic ratio of S in PbS plays a key role in increasing the electrocatalytic activity of the CE. These PbS nano-cubes were used as an effective CE material in QDSSCs to show high electrocatalytic activity for catalyzing the reduction of the polysulfide electrolyte, which contributes to significant improvement in the short current density and fill factor. The QDSSC with the optimized PbS CE exhibits a power conversion efficiency of 4.61%, which is much higher than that of Pt CE (1.34%). Furthermore, this PbS CE shows high and consistent electrocatalytic activity toward polysulfide reduction, which was confirmed by electrochemical measurements. This leads to improved photovoltaic performance and superior stability of the QDSSC.
机译:量子点敏化太阳能电池(QDSSC)的性能受到限制,因为对电极(CE)的电催化活性和稳定性不足,这是至关重要但具有挑战性的问题。为了匹配高功率转换效率,稳定性和降低制造成本,探索与氧化还原对匹配的CE催化剂已经成为可行的途径。电极是通过一种简便的一步化学浴沉积方法在不同的生长时间将PbS薄膜沉积在掺氟的氧化锡衬底上制成的。它们被用作具有高催化活性的CE,无需对填充了硫化氢/多硫化物(S2- / Sn(2-)电解质)的QDSSC进行任何后处理,其形态,厚度,晶体结构,组成和光学性质取决于其生长。通过SEM,XRD,XPS,EDS和UV-vis分析对PbS的时间进行表征,除了表面形态外,PbS中S原子比的增加在提高CE的电催化活性方面也起着关键作用。这些PbS纳米立方体在QDSSC中被用作有效的CE材料,显示出高的电催化活性以催化多硫化物电解质的还原,从而极大地改善了短电流密度和填充因子。功率转换效率为4.61%,远高于Pt CE(1.34%),而且该PbS CE对多硫化物还原具有高且一致的电催化活性,因此通过电化学测量来确定。这导致改进的光伏性能和QDSSC的出色稳定性。

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