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In Situ Surface Sulfidation of CsPbI3 for Inverted Perovskite Solar Cells AITranslate

East China Normal University; East China Normal University; East China Normal University; East China Normal University; East China Normal University; East China Normal University; East China Normal University; East China Normal University; East China Normal University; East China Normal University; East China Normal University
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Publisher: ACS
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Abstract AITranslate

Inverted CsPbI3 commonly exhibits a more p-type surface than bulk, which induces severe interfacial recombination and, thus, limits the device’s Voc and efficiency in inverted perovskite solar cells (PSCs). Here, a gradual CsPbI3/PbS heterojunction is constructed to inhibit such recombination through in situ chemical sulfidation with N,N′-diphenylthiourea (DPhTA). DPhTA can directly react with CsPbI3 to form PbS and induce a p- to n-type transition at the CsPbI3 surface, which leads to the energy level bending downward and establishing a gradual CsPbI3/PbS heterojunction at the top of the surface region. PSCs with DPhTA exhibit a high Voc of 1.20 V and reach over 20% efficiency (stabilized efficiency of 19.5%), which is among the highest efficiencies of inverted CsPbI3 PSCs. In addition, the strong Pb–S bond and well-matched crystal lattice of PbS will protect and stabilize the CsPbI3 layer beneath, thereby greatly improving the device’s stability. Resulting PSCs retain over 95% of the initial efficiency whether after maximum power point (MPP) tracking for 1200 h or N2 storage for 300 days.

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DOI:https://doi.org/10.1021/acsenergylett.3c01855

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Inverted CsPbI3 commonly exhibits a more p-type surface than bulk, which induces severe interfacial recombination and, thus, limits the device’s Voc and efficiency in inverted perovskite solar cells (PSCs). Here, a gradual CsPbI3/PbS heterojunction is constructed to inhibit such recombination through in situ chemical sulfidation with N,N′-diphenylthiourea (DPhTA). DPhTA can directly react with CsPbI3 to form PbS and induce a p- to n-type transition at the CsPbI3 surface, which leads to the energy level bending downward and establishing a gradual CsPbI3/PbS heterojunction at the top of the surface region. PSCs with DPhTA exhibit a high Voc of 1.20 V and reach over 20% efficiency (stabilized efficiency of 19.5%), which is among the highest efficiencies of inverted CsPbI3 PSCs. In addition, the strong Pb–S bond and well-matched crystal lattice of PbS will protect and stabilize the CsPbI3 layer beneath, thereby greatly improving the device’s stability. Resulting PSCs retain over 95% of the initial efficiency whether after maximum power point (MPP) tracking for 1200 h or N2 storage for 300 days.

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GB/T 7714-2015 [1] Xuemin Guo, Chunyan Lu, Wenxiao Zhang, et al. ACS Energy Letters, 2024(9). DOI:10.1021/acsenergylett.3c01855.
MLA [1] Xuemin Guo, et al., ACS Energy Letters, no. 9, 2024, https://doi.org/10.1021/acsenergylett.3c01855.
APA [1] Xuemin Guo, Chunyan Lu, Wenxiao Zhang, Haobo Yuan, Hui Yang, Acan Liu, Zhengbo Cui, Wen Li, Yuyang Hu, Xiaodong Li, & Junfeng Fang. (2024). ACS Energy Letters(9). https://doi.org/10.1021/acsenergylett.3c01855
IEEE [1] Xuemin Guo, Chunyan Lu, Wenxiao Zhang, Haobo Yuan, Hui Yang, Acan Liu, Zhengbo Cui, Wen Li, Yuyang Hu, Xiaodong Li, and Junfeng Fang, ACS Energy Letters, no. 9, 2024, doi: 10.1021/acsenergylett.3c01855.