Keyword search (4,163 papers available)

"Majewski MB" Authored Publications:

Title Authors PubMed ID
1 Mn sup 2+ /sup -doped CsPbBr sub 3 /sub perovskite supercrystals: enhancing morphology and substrate variation Lapointe V; Majewski MB; 41190408
CNSR
2 Manganese-enriched CsPbCl3 perovskite nanocrystals for self-assembled supercrystals Lapointe V; Majewski MB; 39347586
CNSR
3 Charge separation in a copper(I) donor-chromophore-acceptor assembly for both photoanode and photocathode sensitization Singh Z; Chiong JD; Ricardo-Noordberg JF; Kamal S; Majewski MB; 39258478
CHEMBIOCHEM
4 A Modular and Catalytic Methodology To Access 2,5-Furan-Based Phenylene/Thiophene Oligomers through a One-Pot Decarboxylative Cross-Coupling from 5-Bromofurfural Cigana B; Lapointe V; Majewski MB; Forgione P; 38808994
CHEMBIOCHEM
5 Long live(d) CsPbBr3 superlattices: colloidal atomic layer deposition for structural stability Lapointe V; Green PB; Chen AN; Buonsanti R; Majewski MB; 38516096
CNSR
6 Effects of increasing ligand conjugation in Cu(I) photosensitizers on NiO semiconductor surfaces Singh Z; Chiong JD; Kamal S; Majewski MB; 38497406
CHEMBIOCHEM
7 Photonic enhancement in photoluminescent metal halide perovskite-photonic crystal bead hybrids Lapointe V; Imperiale CJ; Chengadu S; Pomilio CM; Ganesh M; Kéna-Cohen S; Majewski MB; 37548908
PHYSICS
8 Binary Cu2-xS Templates Direct the Formation of Quaternary Cu2ZnSnS4 (Kesterite, Wurtzite) Nanocrystals Yarur Villanueva F; Green PB; Qiu C; Ullah SR; Buenviaje K; Howe JY; Majewski MB; Wilson MWB; 34705409
CNSR
9 A historical perspective on porphyrin-based metal-organic frameworks and their applications Zhang X; Wasson MC; Shayan M; Berdichevsky EK; Ricardo-Noordberg J; Singh Z; Papazyan EK; Castro AJ; Marino P; Ajoyan Z; Chen Z; Islamoglu T; Howarth AJ; Liu Y; Majewski MB; Katz MJ; Mondloch JE; Farha OK; 33678810
CNSR
10 Molecular Copper(I)-Copper(II) Photosensitizer-Catalyst Photoelectrode for Water Oxidation. Singh Z, Donnarumma PR, Majewski MB 32909755
CNSR

 

Title:Long live(d) CsPbBr3 superlattices: colloidal atomic layer deposition for structural stability
Authors:Lapointe VGreen PBChen ANBuonsanti RMajewski MB
Link:https://pubmed.ncbi.nlm.nih.gov/38516096/
DOI:10.1039/d3sc06662b
Publication:Chemical science
Keywords:
PMID:38516096 Category: Date Added:2024-03-22
Dept Affiliation: CNSR
1 Department of Chemistry and Biochemistry, Centre for NanoScience Research, Concordia University 7141 Sherbrooke Street West Montreal Quebec H4B 1R6 Canada marek.majewski@concordia.ca.
2 Laboratory of Nanochemistry for Energy, Institute of Chemical Sciences and Engineering, École Polytechnique Fédérale de Lausanne Sion CH-1950 Switzerland.

Description:

Superlattice formation afforded by metal halide perovskite nanocrystals has been a phenomenon of interest due to the high structural order induced in these self-assemblies, an order that is influenced by the surface chemistry and particle morphology of the starting building block material. In this work, we report on the formation of superlattices from aluminum oxide shelled CsPbBr3 perovskite nanocrystals where the oxide shell is grown by colloidal atomic layer deposition. We demonstrate that the structural stability of these superlattices is preserved over 25 days in an inert atmosphere and that colloidal atomic layer deposition on colloidal perovskite nanocrystals yields structural protection and an enhancement in photoluminescence quantum yields and radiative lifetimes as opposed to gas phase atomic layer deposition on pre-assembled superlattices or excess capping group addition. Structural analyses found that shelling resulted in smaller nanocrystals that form uniform supercrystals. These effects are in addition to the increasingly static capping group chemistry initiated where oleic acid is installed as a capping ligand directly on aluminum oxide. Together, these factors lead to fundamental observations that may influence future superlattice assembly design.





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