Li Jianjun, Wang Dongxiao, Li Xiuling, Zeng Yu, Zhang Yi
Institute of Photoelectronic Thin Film Devices and Technology and Key Laboratory of Photoelectronic Thin Film Devices and Technology Tianjin Nankai University Tianjin 300071 China.
Institute of New Energy Technology Jinan University Guangzhou 510632 China.
Adv Sci (Weinh). 2018 Jan 29;5(4):1700744. doi: 10.1002/advs.201700744. eCollection 2018 Apr.
As a promising candidate for low-cost and environmentally friendly thin-film photovoltaics, the emerging kesterite-based CuZnSn(S,Se) (CZTSSe) solar cells have experienced rapid advances over the past decade. However, the record efficiency of CZTSSe solar cells (12.6%) is still significantly lower than those of its predecessors Cu(In,Ga)Se (CIGS) and CdTe thin-film solar cells. This record has remained for several years. The main obstacle for this stagnation is unanimously attributed to the large open-circuit voltage () deficit. In addition to cation disordering and the associated band tailing, unpassivated interface defects and undesirable energy band alignment are two other culprits that account for the large deficit in kesterite solar cells. To capture the great potential of kesterite solar cells as prospective earth-abundant photovoltaic technology, current research focuses on cation substitution for CZTSSe-based materials. The aim here is to examine recent efforts to overcome the limit of kesterite solar cells by cation substitution and to further illuminate several emerging prospective strategies, including: i) suppressing the cation disordering by distant isoelectronic cation substitution, ii) optimizing the junction band alignment and constructing a graded bandgap in absorber, and iii) engineering the interface defects and enhancing the junction band bending.
作为低成本且环保的薄膜光伏领域的一个有潜力的候选材料,新兴的基于硫锡铜矿的CuZnSn(S,Se)(CZTSSe)太阳能电池在过去十年中取得了快速进展。然而,CZTSSe太阳能电池的最高效率(12.6%)仍显著低于其前辈Cu(In,Ga)Se(CIGS)和CdTe薄膜太阳能电池。这一纪录已经保持了数年。这种停滞的主要障碍一致被归因于较大的开路电压() deficit。除了阳离子无序化及其相关的能带尾,未钝化的界面缺陷和不理想的能带排列是另外两个导致硫锡铜矿太阳能电池中出现较大 deficit的罪魁祸首。为了挖掘硫锡铜矿太阳能电池作为有前景的富含地球元素的光伏技术的巨大潜力,当前的研究集中在对基于CZTSSe的材料进行阳离子替代。这里的目的是研究通过阳离子替代克服硫锡铜矿太阳能电池的 限制的近期努力,并进一步阐明几种新兴的潜在策略,包括:i)通过远距离等电子阳离子替代抑制阳离子无序化,ii)优化结的能带排列并在吸收体中构建渐变带隙,以及iii)设计界面缺陷并增强结的能带弯曲。