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CuS_x hole transport layer for PbS quantum dot solar cell

机译:用于PBS量子点太阳能电池的CUS_X空穴传输层

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Lead sulfide (PbS) colloidal quantum dot solar cells (CQDSCs) are emerging photovoltaic technology due to their outstanding light-harvesting ability in the visible and near-infrared spectral region, long-term air stability, multiple exciton generation and solution processability. However, PbS CQDSCs have been limited by the unsatisfactory carrier collection in the CQD films. Band alignment engineering using p-type hole transport layer (HTL) was proved to efficiently promote the carrier collection in cells with both planar and ordered bulky heterojunctional (OBH) structures. Nevertheless, seeking for proper p-type materials suitable for the PbS CQDSCs is still an open question. Herein, we reported a new p-type metal-organic material, CuSx, could act as HTL of PbS CQDSCs with OBH structure. The CuS x possesses a Fermi level E-F (-5.02 eV), shallower valence band energy (-5.48 eV) and conduction band energy (-3.19 eV), inducing a proper band alignment at the PbS light-harvesting layer/CuSx interface. This not only enhanced hole extraction proved by the increase of short-circuit current density (J(sc)) from 19.12 to 22.33 mA/cm(2), but also blocked back electron demonstrated by the extended carrier lifetime. Consequently, cells with CuSx HTL generated a power conversion efficiency of 5.2%, leading to a PCE increase of 13% compared with that of reference HTL-free cell (4.6%). Our work introduced a promoting CuSx hole extraction material which shows great potential application in quantum-dot-based devices suffering from the insufficient carrier collection.
机译:硫化铅(PBS)胶体量子点太阳能电池(CQDSC)是由于它们在可见光和近红外光谱区域,长期空气稳定性,多种激子生成和溶液加工性中出现的光伏技术而产生的光伏技术。然而,PBS CQDSCS受到CQD薄膜中不令人满意的载体收集的限制。证明使用P型空穴传输层(HTL)的带对准工程以有效地促进具有平面和有序的庞大异质官能(OBH)结构的细胞中的载体收集。尽管如此,寻求适合PBS CQDSCS的适当的P型材料仍然是一个开放的问题。在此,我们报道了一种新的P型金属 - 有机材料,CUSX可以用作具有OBH结构的PBS CQDSCS的HTL。 CUS X拥有FERMI级E-F(-5.02eV),浅价频带能量(-5.48eV)和传导能量(-3.19eV),诱导PBS光收集层/ CUSX接口的适当的带对准。这不仅通过19.12至22.33mA / cm(2)的短路电流密度(J(SC))的增加而得到了增强的孔提取,还通过延伸的载体寿命延伸而被阻挡了背电子。因此,具有CUSX HTL的细胞产生5.2%的功率转换效率,导致PCE增加13%,而不是参考HTL的细胞(4.6%)。我们的作品介绍了一种促进CUSX孔提取材料,其概率在患有载体收集不足的量子点的装置中具有很大的潜在应用。

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