2D II-VI Semiconductor Nanoplatelets: From Material Synthesis to Optoelectronic Integration

被引:131
作者
Diroll, Benjamin T. [1 ]
Guzelturk, Burak [2 ]
Po, Hong [3 ]
Dabard, Corentin [3 ]
Fu, Ningyuan [3 ]
Makke, Lina [3 ]
Lhuillier, Emmanuel [4 ]
Ithurria, Sandrine [3 ]
机构
[1] Ctr Nanoscale Mat, Argonne Natl Lab, Lemont, IL 60439 USA
[2] Adv Photon Source, Xray Sci Div, Argonne Natl Lab, Lemont, IL 60439 USA
[3] Univ Paris 06, PSL Res Univ, Lab Phys & Etud Mat, ESPCI Paris,Sorbonne Univ,CNRS UMR 8213, F-75005 Paris, France
[4] Sorbonne Univ, Inst NanoSci, CNRS, INSP, F-75005 Paris, France
基金
欧洲研究理事会;
关键词
LIGHT-EMITTING-DIODES; COLLOIDAL QUANTUM-WELLS; AMPLIFIED SPONTANEOUS EMISSION; NONRADIATIVE ENERGY-TRANSFER; THRESHOLD STIMULATED-EMISSION; CORE-SHELL NANOPLATELETS; DANGLING-BOND SPINS; CDSE NANOPLATELETS; OPTICAL GAIN; CATION-EXCHANGE;
D O I
10.1021/acs.chemrev.2c00436
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The field of colloidal synthesis of semiconductors emerged 40 years ago and has reached a certain level of maturity thanks to the use of nanocrystals as phosphors in commercial displays. In particular, II-VI semiconductors based on cadmium, zinc, or mercury chalcogenides can now be synthesized with tailored shapes, composition by alloying, and even as nanocrystal heterostructures. Fifteen years ago, II-VI semiconductor nanoplatelets injected new ideas into this field. Indeed, despite the emergence of other promising semiconductors such as halide perovskites or 2D transition metal dichalcogenides, colloidal II-VI semiconductor nanoplatelets remain among the narrowest room -temperature emitters that can be synthesized over a wide spectral range, and they exhibit good material stability over time. Such nanoplatelets are scientifically and technologically interesting because they exhibit optical features and production advantages at the intersection of those expected from colloidal quantum dots and epitaxial quantum wells. In organic solvents, gram-scale syntheses can produce nanoparticles with the same thicknesses and optical properties without inhomogeneous broadening. In such nano platelets, quantum confinement is limited to one dimension, defined at the atomic scale, which allows them to be treated as quantum wells. In this review, we discuss the synthetic developments, spectroscopic properties, and applications of such nanoplatelets. Covering growth mechanisms, we explain how a thorough understanding of nanoplatelet growth has enabled the development of nanoplatelets and heterostructured nanoplatelets with multiple emission colors, spatially localized excitations, narrow emission, and high quantum yields over a wide spectral range. Moreover, nanoplatelets, with their large lateral extension and their thin short axis and low dielectric surroundings, can support one or several electron-hole pairs with large exciton binding energies. Thus, we also discuss how the relaxation processes and lifetime of the carriers and excitons are modified in nanoplatelets compared to both spherical quantum dots and epitaxial quantum wells. Finally, we explore how nanoplatelets, with their strong and narrow emission, can be considered as ideal candidates for pure-color light emitting diodes (LEDs), strong gain media for lasers, or for use in luminescent light concentrators.
引用
收藏
页码:3543 / 3624
页数:82
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