Xu Xiao, Zhou Jiazheng, Yin Kang, Wang Jinlin, Lou Licheng, Jiao Menghan, Zhang Bowen, Li Dongmei, Shi Jiangjian, Wu Huijue, Luo Yanhong, Meng Qingbo
Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences (CAS), Beijing, 100190, China.
School of Physical Sciences, University of Chinese Academy of Sciences, Beijing, 100049, China.
Nat Commun. 2023 Oct 20;14(1):6650. doi: 10.1038/s41467-023-42460-7.
Kesterite CuZnSn(S, Se) is considered one of the most competitive photovoltaic materials due to its earth-abundant and nontoxic constituent elements, environmental friendliness, and high stability. However, the preparation of high-quality Kesterite absorbers for photovoltaics is still challenging for the uncontrollability and complexity of selenization reactions between metal element precursors and selenium. In this study, we propose a solid-liquid/solid-gas (solid precursor and liquid/vapor Se) synergistic reaction strategy to precisely control the selenization process. By pre-depositing excess liquid selenium, we provide the high chemical potential of selenium to facilitate the direct and rapid formation of the Kesterite phase. The further optimization of selenium condensation and subsequent volatilization enables the efficient removal of organic compounds and thus improves charge transport in the absorber film. As a result, we achieve high-performance Kesterite solar cells with total-area efficiency of 13.6% (certified at 13.44%) and 1.09 cm-area efficiency of 12.0% (certified at 12.1%).
由于其组成元素在地壳中储量丰富且无毒、环境友好以及稳定性高,硫铜锡锌矿CuZnSn(S, Se)被认为是最具竞争力的光伏材料之一。然而,由于金属元素前驱体与硒之间的硒化反应难以控制且复杂,制备用于光伏的高质量硫铜锡锌矿吸收层仍然具有挑战性。在本研究中,我们提出了一种固液/固气(固体前驱体与液态/气态硒)协同反应策略,以精确控制硒化过程。通过预沉积过量的液态硒,我们提供了高化学势的硒,以促进硫铜锡锌矿相的直接快速形成。对硒的冷凝及随后挥发的进一步优化能够有效去除有机化合物,从而改善吸收层薄膜中的电荷传输。结果,我们制备出了高性能的硫铜锡锌矿太阳能电池,其总面积效率达到13.6%(认证效率为13.44%),1.09平方厘米面积效率达到12.0%(认证效率为12.1%)。