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The 0D cesium lead halide perovskite Cs PbBr has drawn remarkable interest due to its highly efficient robust green emission compared to its 3D CsPbBr counterpart. However, seizing the advantages of the superior photoluminescence properties for practical light-emitting devices remains elusive. To date, Cs PbBr has been employed only as a higher-bandgap nonluminescent matrix to passivate or provide quantum/dielectric confinement to CsPbBr in light-emitting devices and to enhance its photo-/thermal/environmental stability. To resolve this disparity, a novel solvent engineering method to incorporate highly luminescent 0D Cs PbBr nanocrystals (perovskite nanocrystals (PNCs)) into a 3D CsPbBr film, forming the active emissive layer in single-layer perovskite light-emitting electrochemical cells (PeLECs) is designed. A dramatic increase of the maximum external quantum efficiency and luminance from 2.7% and 6050 cd m for a 3D-only PeLEC to 8.3% and 11 200 cd m for a 3D-0D PNC device with only 7% by weight of 0D PNCs is observed. The majority of this increase is driven by the efficient inherent emission of the 0D PNCs, while the concomitant morphology improvement also contributes to reduced leakage current, reduced hysteresis, and enhanced operational lifetime (half-life of 129 h), making this one of the best-performing LECs reported to date.
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http://dx.doi.org/10.1002/adma.202203226 | DOI Listing |
Nanoscale Adv
August 2025
Department of Chemistry and Industrial Chemistry & INSTM RU, University of Genoa Via Dodecaneso 31 16146 Genova (GE) Italy
Bismuth ferrite (BiFeO), a perovskite oxide with both ferroelectric and antiferromagnetic properties, has emerged as a promising material for environmental cleanup due to its piezo-photocatalytic activity. The material's ability to degrade organic pollutants, such as azo dyes, under both light irradiation and mechanical stress (ultrasonic waves) offers a dual-action mechanism for efficient wastewater treatment. In this work, we explore the synthesis of BiFeO nanoparticles a simple sol-gel method, followed by characterization of their structural, magnetic, and photocatalytic properties.
View Article and Find Full Text PDFThe formation of heterostructure interfaces from quantum dots (or nanocrystals) and lower-dimensional (2D or quasi-2D) materials enables interfacial and optoelectronic property tuning. However, this strategy has not been sufficiently characterized, for example, the application of cesium halide nanocrystals to quasi-2D perovskite structures is underexplored, and the mechanisms of the resulting structural modifications and specific nanocrystal roles are not fully understood. Herein, the effects of postsynthetically surface-modifying quasi-2D perovskite films with CsX ( = Cl, Br, I) nanocrystals are examined to bridge this gap.
View Article and Find Full Text PDFJ Am Chem Soc
September 2025
Department of Applied Chemistry for Environment, Kwansei Gakuin University, 1 Gakuen Uegahara, Sanda, Hyogo 669-1330, Japan.
Colloidal semiconductor quantum dots (QDs) can generate multiple excitons (MXs) within a single QD. Owing to their large absorption cross-section, efficient utilization of MX is anticipated for the development of light-harvesting systems. However, MXs typically undergo nonradiative decay via Auger recombination (AR).
View Article and Find Full Text PDFACS Appl Mater Interfaces
September 2025
School of Chemistry & Materials Engineering, Fuyang Normal University, Fuyang 236037, China.
Halide perovskite quantum dots (QDs) have demonstrated outstanding performance in light-emitting applications. However, the performance of blue perovskite QDs lags far behind that of their red and green counterparts, especially those with color coordinates approaching (0.131, 0.
View Article and Find Full Text PDFACS Appl Mater Interfaces
September 2025
State Key Laboratory of Flexible Electronics, Nanjing University of Posts and Telecommunications, 9 Wenyuan Road, Nanjing 210023, China.
Achieving uniform perovskite thin films via inkjet printing remains a significant challenge due to the pervasive coffee-ring effect. Here, we present a solute engineering strategy that incorporates shape-anisotropic perovskite nanorods into a single-solvent ink formulation, effectively suppressing coffee-ring formation and yielding ultraflat films with an average roughness (Ra) as low as 0.226 nm.
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