4.8 Article

Abnormal spatial heterogeneity governing the charge-carrier mechanism in efficient Ruddlesden-Popper perovskite solar cells

期刊

ENERGY & ENVIRONMENTAL SCIENCE
卷 14, 期 9, 页码 4915-4925

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ee00984b

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资金

  1. Global Frontier R&D Program of the Center for Multiscale Energy Systems - National Research Foundation under the Ministry of Education, Science and Technology, Korea [2012M3A6A7054855]
  2. Basic Science Research Program, through the National Research Foundation of Korea (NRF) - Ministry of Education [2020R1I1A1A01066243]
  3. National Natural Science Foundation of China [11574248, 61505161]
  4. National Research Foundation of Korea [2020R1I1A1A01066243] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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This research reveals the correlation between the charge-carrier mechanism and the spatially heterogeneous RPP bulks induced by distinct sublattice cations in RPP devices. The study also discovered the design principle of promoting charge-carrier dynamics through heterogeneity in structures.
Layered Ruddlesden-Popper perovskite (RPP) photovoltaics have gained substantial attention owing to their excellent air stability. However, their photovoltaic performance is still limited by the unclear real-time charge-carrier mechanism of operating devices. Herein, we report the correlation between the charge-carrier mechanism and the spatially heterogeneous RPP bulks induced by distinct sublattice cations in the state-of-the-art antisolvent-driven RPP devices. In particular, abnormal heterogeneities ranging from the lateral long-range to local sub-grain scale and corresponding charge-carrier behaviours are visualized for triple-cation RPPs. We discovered that such heterogeneities with a unitary 2D/3D hybrid suppress lattice vibrations and reduce Frohlich interactions by about 2 times, significantly promoting charge-carrier dynamics. Consequently, optimized triple-cation RPP solar cells greatly outperform their mono-cation counterparts. Furthermore, this principle can be applicable irrespective of 2D layer thickness (n > 2) and substrate type. This work provides a rationale for leveraging a disordered structure to stimulate charge-carrier motion and suggests the design principle of low-dimensional perovskites.

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