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Atomically flat semiconductor nanoplatelets for light-emitting applications.
Bai, Bing; Zhang, Chengxi; Dou, Yongjiang; Kong, Lingmei; Wang, Lin; Wang, Sheng; Li, Jun; Zhou, Yi; Liu, Long; Liu, Baiquan; Zhang, Xiaoyu; Hadar, Ido; Bekenstein, Yehonadav; Wang, Aixiang; Yin, Zongyou; Turyanska, Lyudmila; Feldmann, Jochen; Yang, Xuyong; Jia, Guohua.
Afiliación
  • Bai B; Key Lab for Special Functional Materials, Ministry of Education, National and Local Joint Engineering Research Center for High-Efficiency Display and Lighting Technology, School of Materials Science and Engineering, and Collaborative Innovation Center of Nano Functional Materials and Applications, H
  • Zhang C; Key Laboratory of Advanced Display and System Applications of Ministry of Education, Shanghai University, Shanghai 200072, China. yangxy@shu.edu.cn.
  • Dou Y; Key Laboratory of Advanced Display and System Applications of Ministry of Education, Shanghai University, Shanghai 200072, China. yangxy@shu.edu.cn.
  • Kong L; Key Laboratory of Advanced Display and System Applications of Ministry of Education, Shanghai University, Shanghai 200072, China. yangxy@shu.edu.cn.
  • Wang L; Key Laboratory of Advanced Display and System Applications of Ministry of Education, Shanghai University, Shanghai 200072, China. yangxy@shu.edu.cn.
  • Wang S; Key Laboratory of Advanced Display and System Applications of Ministry of Education, Shanghai University, Shanghai 200072, China. yangxy@shu.edu.cn.
  • Li J; Key Lab for Special Functional Materials, Ministry of Education, National and Local Joint Engineering Research Center for High-Efficiency Display and Lighting Technology, School of Materials Science and Engineering, and Collaborative Innovation Center of Nano Functional Materials and Applications, H
  • Zhou Y; Key Lab for Special Functional Materials, Ministry of Education, National and Local Joint Engineering Research Center for High-Efficiency Display and Lighting Technology, School of Materials Science and Engineering, and Collaborative Innovation Center of Nano Functional Materials and Applications, H
  • Liu L; Key Lab for Special Functional Materials, Ministry of Education, National and Local Joint Engineering Research Center for High-Efficiency Display and Lighting Technology, School of Materials Science and Engineering, and Collaborative Innovation Center of Nano Functional Materials and Applications, H
  • Liu B; School of Electronics and Information Technology, Sun Yat-sen University, Guangzhou 510275, China.
  • Zhang X; Key Laboratory of Automobile Materials, Ministry of Education, College of Materials Science and Engineering, Jilin Provincial International Cooperation Key Laboratory of High-Efficiency Clean Energy Materials, Electron Microscopy Center, Jilin University, Changchun 130012, China.
  • Hadar I; Institute of Chemistry, and the Center for Nanoscience and Nanotechnology, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.
  • Bekenstein Y; Department of Materials Science and Engineering, Technion-Israel Institute of Technology, Haifa 32000, Israel.
  • Wang A; School of Chemistry and Chemical Engineering, Linyi University, Linyi 276005, P. R. China.
  • Yin Z; Research School of Chemistry, The Australian National University, ACT 2601, Australia.
  • Turyanska L; Faculty of Engineering, The University of Nottingham, Additive Manufacturing Building, Jubilee Campus, University Park, Nottingham NG7 2RD, UK.
  • Feldmann J; Chair for Photonics and Optoelectronics, Nano-Institute Munich and Department of Physics, Ludwig-Maximilians-Universität (LMU), Königinstr. 10, Munich 80539, Germany.
  • Yang X; Key Laboratory of Advanced Display and System Applications of Ministry of Education, Shanghai University, Shanghai 200072, China. yangxy@shu.edu.cn.
  • Jia G; School of Molecular and Life Sciences, Curtin University, Perth, WA 6102, Australia. guohua.jia@curtin.edu.au.
Chem Soc Rev ; 52(1): 318-360, 2023 Jan 03.
Article en En | MEDLINE | ID: mdl-36533300
ABSTRACT
The last decade has witnessed extensive breakthroughs and significant progress in atomically flat two-dimensional (2D) semiconductor nanoplatelets (NPLs) in terms of synthesis, growth mechanisms, optical and electronic properties and practical applications. Such NPLs have electronic structures similar to those of quantum wells in which excitons are predominantly confined along the vertical direction, while electrons are free to move in the lateral directions, resulting in unique optical properties, such as extremely narrow emission line width, short photoluminescence (PL) lifetime, high gain coefficient, and giant oscillator strength transition (GOST). These unique optical properties make NPLs favorable for high color purity light-emitting applications, in particular in light-emitting diodes (LEDs), backlights for liquid crystal displays (LCDs) and lasers. This review article first introduces the intrinsic characteristics of 2D semiconductor NPLs with atomic flatness. Subsequently, the approaches and mechanisms for the controlled synthesis of atomically flat NPLs are summarized followed by an insight on recent progress in the mediation of core/shell, core/crown and core/crown@shell structures by selective epitaxial growth of passivation layers on different planes of NPLs. Moreover, an overview of the unique optical properties and the associated light-emitting applications is elaborated. Despite great progress in this research field, there are some issues relating to heavy metal elements such as Cd2+ in NPLs, and the ambiguous gain mechanisms of NPLs and others are the main obstacles that prevent NPLs from widespread applications. Therefore, a perspective is included at the end of this review article, in which the current challenges in this stimulating research field are discussed and possible solutions to tackle these challenges are proposed.

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Chem Soc Rev Año: 2023 Tipo del documento: Article

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Chem Soc Rev Año: 2023 Tipo del documento: Article