Stable NiOx-based inverted perovskite solar cells achieved by passivation of multifunctional star polymer

  • Xingyu Pu
  • , Junsong Zhao
  • , Yongjiang Li
  • , Yixin Zhang
  • , Hok Leung Loi
  • , Tong Wang
  • , Hui Chen
  • , Xilai He
  • , Jiabao Yang
  • , Xiaoyan Ma
  • , Xuanhua Li
  • , Qi Cao

Research output: Contribution to journalArticlepeer-review

48 Scopus citations

Abstract

Perovskite materials have excellent photoelectric properties and are a hot spot in international research. However, there are deep/shallow energy level traps in the grain boundaries (GBs)/surface of perovskite thin films, which affect the optoelectronic performance of perovskite solar cells (PSCs). Here, we design and synthesize a three-dimensional star-shaped polymer with various groups to regulate the light-absorbing layer of perovskite. The eight branched chains of multifunctional star polymer are rich in C[dbnd]O, N = N, N = O, and –CF3 functional groups, which are used to passivate uncoordinated lead ions and to immobilize methylamine, formamidine cations on the GBs/surface of perovskite films. Simultaneous passivation of deep-level defects and suppression the appearance of shallow-level defects on the perovskite surface/GBs, thereby greatly improving the optoelectronic performance of PSCs. Compared with the efficiency of 22.38 % of the reference device, the efficiency of the multifunctional star polymer incorporated inverted device reaches 24.03 %. Moreover, the multifunctional star-shaped polymer modified inverted-encapsulation device also exhibits excellent operational stability, maintaining 80 % of the initial efficiency for more than 5500 h.

Original languageEnglish
Article number108506
JournalNano Energy
Volume112
DOIs
StatePublished - Jul 2023

Keywords

  • Inverted perovskite solar cells
  • Multifunctional passivation
  • Operational stability
  • Star polymer

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