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Mercury Chalcogenide Quantum Dots: Material Perspective for Device Integration

Charlie GrébovalCNRS, Institut des NanoSciences de Paris, INSP, Sorbonne Université, F-75005 Paris, FranceAudrey ChuCNRS, Institut des NanoSciences de Paris, INSP, Sorbonne Université, F-75005 Paris, FranceNicolas GoubetCNRS, Laboratoire de la Molécule aux Nano-objets; Réactivité, Interactions et Spectroscopies, MONARIS, Sorbonne Université, 4 Place Jussieu, Case Courier 840, F-75005 Paris, FranceClément LivacheCNRS, Institut des NanoSciences de Paris, INSP, Sorbonne Université, F-75005 Paris, FranceSandrine IthurriaLaboratoire de Physique et d’Etude des Matériaux, ESPCI-Paris, PSL Research University, Sorbonne Université Univ Paris 06, CNRS UMR 8213, 10 rue Vauquelin 75005 Paris, FranceEmmanuel LhuillierCNRS, Institut des NanoSciences de Paris, INSP, Sorbonne Université, F-75005 Paris, France
2021en
ABI

Аннотация

Nanocrystals (NCs) are one of the few nanotechnologies to have attained mass market applications with their use as light sources for displays. This success relies on Cd- and In-based wide bandgap materials. NCs are likely to be employed in more applications as they provide a versatile platform for optoelectronics, specifically, infrared optoelectronics. The existing material technologies in this range of wavelengths are generally not cost-effective, which limits the spread of technologies beyond a few niche domains, such as defense and astronomy. Among the potential candidates to address the infrared window, mercury chalcogenide (HgX) NCs exhibit the highest potential in terms of performance. In this review, we discuss how material developments have facilitated device enhancements. Because these materials are mainly used for their infrared optical features, we first review the strategies for their colloidal growth and their specific electronic structure. The review is organized considering three main device-related applications: light emission, electronic transport, and infrared photodetection.

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