Publications by authors named "E Stratakis"

Metal halide perovskites (MHPs) have attracted significant attention owing to their simple manufacturing process and unique optoelectronic properties. Their reversible electrical or optical property changes in response to oxidizing or reducing environments make them prospective materials for gas detection technologies. Despite advancements in perovskite-based sensor research, the mechanisms behind perovskite-gas interactions, vital for sensor performance, are still inconclusive.

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Hybrid metal-semiconductor nanostructures unifying plasmonic and high-refractive-index materials in a single resonant system demonstrate a wide set of unique optical properties. Such systems are a perspective for a broad palette of applications, but the link between their inner structure and optical properties is a very sensitive issue, which is still not revealed. Here, we describe the influence of internal microstructure of a hybrid gold-silicon nanoparticle (the gold nanoparticle with embedded silicon nanograins) on the up-conversion white-light photoluminescence.

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Second harmonic generation is a non-linear optical phenomenon in which coherent radiation with frequency interacts with a non-centrosymmetric material and produces coherent radiation at frequency 2. Owing to the exciting physical phenomena that take place during the non-linear optical excitation at the nanoscale, there is currently extensive research in the non-linear optical responses of nanomaterials, particularly in low-dimensional materials. Here, we review recent advancements in the polarization-resolved second harmonic generation propertied from atomically thin two-dimensional (2D) crystals and present a unified theoretical framework to account for their nonlinear optical response.

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Article Synopsis
  • The study introduces a new hybrid photocatalytic nanomaterial made from porphyrin-carbon dot conjugates that generates hydrogen using visible light.
  • The researchers created M-TCPP-NCDots hybrids through amide coupling of metallated tetra-carboxyphenyl porphyrins with nitrogen-doped carbon dots, enabling hydrogen production without needing expensive metallic co-catalysts.
  • Key findings highlight that the covalent attachment and zinc-metallation of the porphyrin component are crucial for improving the system's efficiency, presenting a novel method for artificial photosynthesis.
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Porphyrin-based derivatives have been extensively investigated in photocatalytic, electrocatalytic, and photoelectrocatalytic H production systems as both photosensitizers and catalysts. Recently, their combination with two-dimensional materials, such as graphene oxide, reduced graphene oxide, and graphene quantum dots, has attracted significant attention for hydrogen evolution due to the advanced electronic properties, good stability, and low-cost fabrication of these materials. This mini-review summarizes the recent developments concerning the application of porphyrin-graphene ensembles in catalytic H generation.

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