An embedded interfacial network stabilizes inorganic CsPbI3 perovskite thin films

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作者
Julian A. Steele
Tom Braeckevelt
Vittal Prakasam
Giedrius Degutis
Haifeng Yuan
Handong Jin
Eduardo Solano
Pascal Puech
Shreya Basak
Maria Isabel Pintor-Monroy
Hans Van Gorp
Guillaume Fleury
Ruo Xi Yang
Zhenni Lin
Haowei Huang
Elke Debroye
Dmitry Chernyshov
Bin Chen
Mingyang Wei
Yi Hou
Robert Gehlhaar
Jan Genoe
Steven De Feyter
Sven M. J. Rogge
Aron Walsh
Edward H. Sargent
Peidong Yang
Johan Hofkens
Veronique Van Speybroeck
Maarten B. J. Roeffaers
机构
[1] KU Leuven,cMACS, Department of Microbial and Molecular Systems
[2] University of California,Department of Chemistry
[3] The University of Queensland,School of Mathematics and Physics
[4] Ghent University,Center for Molecular Modeling (CMM)
[5] KU Leuven,Department of Chemistry
[6] University of Toronto,Department of Electrical and Computer Engineering
[7] ALBA synchrotron light source,NCD
[8] Université de Toulouse,SWEET beamline
[9] IMEC,CEMES/CNRS
[10] KU Leuven,Department of Electrical Engineering (ESAT)
[11] Lawrence Berkeley National Laboratory,The Molecular Foundry
[12] Lawrence Berkeley National Laboratory,Materials Sciences Division
[13] University of California,Department of Materials Science and Engineering
[14] Swiss-Norwegian Beamlines at the European Synchrotron Radiation Facility,Department of Materials
[15] Imperial College London,Department of Materials Science and Engineering
[16] Yonsei University,undefined
[17] Kavli Energy Nano Science Institute,undefined
[18] Max Plank Institute for Polymer Research,undefined
来源
Nature Communications | / 13卷
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摘要
The black perovskite phase of CsPbI3 is promising for optoelectronic applications; however, it is unstable under ambient conditions, transforming within minutes into an optically inactive yellow phase, a fact that has so far prevented its widespread adoption. Here we use coarse photolithography to embed a PbI2-based interfacial microstructure into otherwise-unstable CsPbI3 perovskite thin films and devices. Films fitted with a tessellating microgrid are rendered resistant to moisture-triggered decay and exhibit enhanced long-term stability of the black phase (beyond 2.5 years in a dry environment), due to increasing the phase transition energy barrier and limiting the spread of potential yellow phase formation to structurally isolated domains of the grid. This stabilizing effect is readily achieved at the device level, where unencapsulated CsPbI3 perovskite photodetectors display ambient-stable operation. These findings provide insights into the nature of phase destabilization in emerging CsPbI3 perovskite devices and demonstrate an effective stabilization procedure which is entirely orthogonal to existing approaches.
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