4.8 Review

Recent defect passivation drifts and role of additive engineering in perovskite photovoltaics

期刊

NANO ENERGY
卷 101, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.nanoen.2022.107579

关键词

Perovskite solar cells; Energy harvesting; Additive engineering; Defect passivation; Photovoltaics

资金

  1. National Key Research and Development Program of China [2017YFA0206600]
  2. Key Research Program of Frontier Science, Chinese Academy of Sciences [QYZDB- SSW-SLH006]
  3. Hundred Talents Program (Chinese Academy of Sci- ences) [21975245]
  4. National Natural Science Foundation of China
  5. Hundred Talents Program (Chinese Academy of Sciences) [21975245, 61674141, 51972300]
  6. Youth Innovation Promotion Association, Chinese Academy of sciences
  7. Beijing Nova Program [2020114]
  8. Zhejiang Provincial Natural Science Foundation of China [2020117]
  9. Basic Science Research Program [LZ20E050003]
  10. National Research Foundation - Korea Government [2021R1A6A1A10044950]
  11. [2020R1A2C1005735]
  12. National Research Foundation of Korea [2021R1A6A1A10044950] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

Hybrid lead halide perovskite photovoltaics have surpassed thin-film solar cells in terms of efficiency within a decade. However, defects related to undercoordinated ions, band offsets, grain boundaries, photocurrent hysteresis, and environmental instability have hindered the industrialization of perovskite photovoltaics. This comprehensive review provides insights into the nature, source, correlation, and effects of these defects, as well as strategies for defect passivation. Suggestions for next-generation perovskite solar cells are also recommended.
Rapid progress in the efficiency of hybrid lead halide perovskite photovoltaics surpassed the semiconductor thin-film solar cells such as CdTe (cadmium telluride), CZTS (copper zinc tin sulfide), and CIGS (copper indium gallium selenide) within a decade. Furthermore, low-cost solution processibility demonstrated the immense potential of perovskite solar cells (PSCs) as an alternative to commercially available light-harvesting materials. Despite the fast-track development in perovskite photovoltaic technology, several drawbacks are mainly linked with defects, including undercoordinated ions, band offsets, grain boundaries, photocurrent hysteresis, and environmental instability: restraint the industrialization of perovskite photovoltaics. Herein, we present the comprehensive knowledge of the source, nature, correlation with photophysical properties, and overlapping effects of these defects. The defects are categorized based on their energy levels within the conduction and valence bands, such as deep or shallow level defects, and their dimensionality (e.g., point defects such as va-cancies, dislocation, grain boundaries, and cracks are regarded as zero-, one-, two-, and three-dimensional de-fects). Furthermore, we developed the fundamental understanding of defect-mediated, nonradiative recombination, ion migration, carrier trapping, and their cross-link with device performance and photocurrent hysteresis. Besides, an overview of topical defect passivation strategies on perovskite absorber, materials interface, charge transport layers, surface passivation, contact passivation, and additive engineering has been spotlighted. Finally, based on past and present defect healing drifts, we have summarized and recommended suggestions for next-generation PSCs, which will pave the way for swift industrialization.

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