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  4. Confined Flash Printing and Synthesis of Stable Perovskite Nanofilms under Ambient Conditions
 
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Confined Flash Printing and Synthesis of Stable Perovskite Nanofilms under Ambient Conditions

Publikationstyp
Journal Article
Date Issued
2024-11-14
Sprache
English
Author(s)
Liu, Yuxin  
Knaus, Tanja
Wei, Zheng  
Zhang, Junfang  
Damian, Matteo  
Ronneberger, Sebastian  
Zhu, Xingjun
Mutti, Francesco G.
Seeberger, Peter H.  
Zhang, Hong  
Loeffler, Felix F.  
TORE-URI
https://hdl.handle.net/11420/60766
Journal
Advanced materials  
Volume
36
Issue
46
Article Number
2409592
Citation
Advanced Materials 36 (46): 2409592 (2024)
Publisher DOI
10.1002/adma.202409592
Scopus ID
2-s2.0-85204489801
ISSN
09359648
The fabrication of stable perovskite nanofilm patterns is important for the development of functional optical devices. However, current production approaches are limited by the requirement for strict inert gas protection and long processing times. Here, a confined flash printing synthesis method is presented to generate perovskite nanofilms under ambient conditions, combining precursor transfer, perovskite synthesis, crystallization, and polymer protection in a single step within milliseconds. A laser simultaneously prints and induces the flash synthesis, confined in a polymer nanofilm, under normal ambient conditions. Due to its simplicity and flexibility, the method enables the combination and screening of many different perovskite precursor materials on various substrates. Besides for the development of novel perovskite materials and devices, the nanofilms can be applied for biodetection. The unique H<inf>2</inf>O<inf>2</inf>-responsive property of the ultrathin perovskite quantum dot film is applied for biomolecule detection based on oxidase-catalyzed enzymatic reactions.
Subjects
biosensor
high-throughput
laser-induced forward transfer
material synthesis
perovskites
DDC Class
600: Technology
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