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Alloy formation is ubiquitous in inorganic materials science, and it strongly depends on the similarity between the alloyed atoms. Since molecules have widely different shapes, sizes and bonding properties, it is highly challenging to make alloyed molecular crystals. Here we report the generation of homogenous molecular alloys of organic light emitting diode materials that leads to tuning in their bandgaps and fluorescence emission. Tris(8-hydroxyquinolinato)aluminium (Alq) and its Ga, In and Cr analogues (Gaq, Inq, and Crq) form homogeneous mixed crystal phases thereby resulting in binary, ternary and even quaternary molecular alloys. The M M'q alloy crystals are investigated using X-ray diffraction, energy dispersive X-ray spectroscopy and Raman spectroscopy on single crystal samples, and photoluminescence properties are measured on the exact same single crystal specimens. The different series of alloys exhibit distinct trends in their optical bandgaps compared with their parent crystals. In the Al Gaq alloys the emission wavelengths lie in between those of the parent crystals, while the Al Inq and Ga Inq alloys have red shifts. Intriguingly, efficient fluorescence quenching is observed for the M Crq alloys (M = Al, Ga) revealing the effect of paramagnetic molecular doping, and corroborating the molecular scale phase homogeneity.
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http://dx.doi.org/10.1039/d1sc03714e | DOI Listing |
Adv Mater
September 2025
School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou, 510006, China.
Perovskite materials have revolutionized optoelectronics by virtue of their tunable bandgaps, exceptional optoelectronic properties, and structural flexibility. Notably, the state-of-the-art performance of perovskite solar cells has reached 27%, making perovskite materials a promising candidate for next-generation photovoltaic technology. Although numerous reviews regarding perovskite materials have been published, the existing reviews generally focus on individual material systems (e.
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 PDFACS Nano
September 2025
Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea.
Visible-light activation is highly desirable for gas sensors due to its energy-efficient operation and broad accessibility. Photocatalysis offers a promising strategy for visible-light activation; however, a limited understanding of the band engineering-mediated activation process restricts the rational design of photocatalysts for gas sensors. In this work, we systematically investigate the impact of band tuning in photocatalysts on the nitrogen dioxide (NO) sensing performance of InO-based sensors, employing graphene quantum dots (GQDs) as photosensitizers.
View Article and Find Full Text PDFJ Mater Chem B
September 2025
Department of Chemistry & Biochemistry, Texas Tech University, Lubbock, Texas 79409, USA.
Near-infrared (NIR) emitting materials underpin emerging medical diagnostics and therapeutic bionanotechnologies. Conjugated polymer nanoparticles offer unique advantages due to their remarkable absorption cross-sections, photostability, synthetic tunability, and biocompatibility. Despite the vast library of NIR-absorbing conjugated polymers, relatively few narrow bandgap structures have been explored for NIR imaging.
View Article and Find Full Text PDFACS Appl Mater Interfaces
September 2025
Faculty of Science, Kunming University of Science and Technology, No. 727 Jingming South Road, Kunming 650500, China.
Electrode contact properties with two-dimensional (2D) channel materials decisively determine the nanodevice's overall performance. A recently synthesized semiconducting CuSe monolayer has emerged as a promising candidate for high-performance device channels due to its high carrier mobility, excellent environmental stability, and a reversible thermal-driven phase transition accompanied by a direct-to-indirect band-gap variation. Herein, to identify promising high-quality electrodes for CuSe, the contact properties with various metals (Al, Ag, Au, Ni, and Co), as well as the modulation effects of graphene and -BN interlayers, are systematically investigated based on first-principles calculations.
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