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Laurent Lermusiaux

Publications and source records attributed to Laurent Lermusiaux.

2 recordsLinked to original sources

Synthesis, Solvent-dependent Self-Assembly and Partial Oxidation of Ultrathin Cerium Fluoride Nanoplatelets

Two-dimensional colloidal nanoplatelets (NPLs) with atomically defined thickness exhibit unique physical properties, yet understanding their formation mechanism and assembly remains essential for tuning their collective behavior. We report an optimized synthesis of triangular cerium-based NPLs with narrow size and shape distributions via thermal decomposition of cerium trifluoroacetate. Combining X-ray diffraction, XPS, and high-resolution STEM, we show that the expected CeF3 NPL structure undergoes partial oxidation, yielding an oxyfluoride composition CeOxFy. Beyond their composition, we investigate how these oleic acid-capped NPLs organize in solution and at interfaces. The choice of solvent governs both the solution-phase organization and the resulting superstructures formed upon evaporation at the liquid--air interface. In solvents that promote face-to-face stacking in solution, evaporation produces films organized into columnar assemblies tens of micrometers long, with the NPL planes oriented perpendicular to the interface. In contrast, solvents in which NPLs remain individually dispersed yield extended hexagonally ordered superlattices with edge-to-edge stacking spanning several micrometers, where the NPLs lie parallel to the interface in an edge-to-edge arrangement. These results highlight that solvent-mediated interactions and pre-existing organization in solution are decisive factors in determining the outcome of evaporative self-assembly of colloidal nanocrystals.

cond-mat.soft↗

Enhanced Control of Quantum Dot Photoluminescence in Hybrid Assemblies

The distance-dependent interaction of an emitter with a plasmonic nanoparticle or surface forms the basis of the field of plexitonics. Semiconductor quantum dots (QDs) are robust emitters due to their photostability, and offer the possibility of understanding the fundamental photophysics between one emitter and one metal nanoparticle. A key enabling challenge is the formation of systems containing both QDs and plasmonic nanoparticles in high purity. We present the translation of DNA-based self-assembly techniques to assemble metal and semiconductor nanocrystals into discrete hybrid structures, including dimers, of high purity. This method gives control over the interparticle separation, geometry, and ratio of QD:metal nanoparticle, as well as the spectral properties of the metal/QD components in the assembly to allow investigation of plasmon-exciton interaction. The hybrid assemblies show the expected enhancement in steady-state photoluminescence accompanied by an increase in the QD emission rate for assemblies with a strong overlap between the QD emission and localised surface plasmon resonance. In contrast, lengthening of the QD emission lifetime (a reduction of the emission rate) of up to 1.7-fold, along with an enhancement in steady-state PL of 15-75% is observed upon detuning of the QD and metal nanoparticle spectral properties. This understood in terms of the Purcell effect, where the gold nanoparticle acts as a damped, nanoscale cavity. Considering the metal nanoparticle using generalised nonlocal optical response theory (GNOR) and the QD as an open quantum system, the response is driven by the interference experienced by the emitter for parallel and perpendicular field orientations. This provides a mechanism for control of the emission rate of a QD by a metal nanoparticle across a much wider range of lifetimes than previously understood.

cond-mat.mes-hall↗