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MXene quantum lands: emerging trends and breakthroughs

  • Mahdi Hasanzadeh Azar
  • , Fatemeh Etehadi
  • , Nima Mohamadbeigi
  • , Hessam Shahbazi
  • , Sara Salehi Siouki
  • , Ali Mirsepah
  • , Mohammad Reza Rahmani Taji Boyuk
  • , Sayed Alem
  • , Amir Hatamie
  • , Abdolreza Simchi
  • , Shayan Angizi
  • University of Waterloo
  • Karlsruher Institut für Technologie
  • Leibniz Institute for Composite Materials GmbH
  • Imam Khomeini International University
  • University of Illinois Chicago
  • Universität Isfahan
  • University of Tehran
  • Institute for Advanced Studies in Basic Science, Zanjan
  • Fraunhofer Institut für Fertigungstechnik und angewandte Materialforschung
  • University of Toronto

Publikation: Beitrag in FachzeitschriftÜbersichtsartikelBegutachtung

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Abstract

Chemically stable two-dimensional MXene quantum dots (MQDs) have gained significant attention owing to their exceptional optical properties, tunable surface chemistry, and promising biocompatibility. Leveraging these properties, MQDs have found broad applicability across diverse domains, including optoelectronics (LEDs, lasers, detectors, and solar cells), energy storage (batteries and supercapacitors) and energy conversion (CO 2 reduction and hydrogen evolution), sensing, and biomedicine. This review provides a comprehensive overview of recent advancements in eco-friendly synthesis and surface modification strategies aimed at enhancing the radiative recombination efficiency of fluorescent MQDs. Furthermore, we critically assess the wide-ranging practical applications of MQDs and evaluate the progress achieved through both experimental and computational approaches. Special emphasis is placed on the most promising avenues for improving their optical performance and integration into high-efficiency devices. Finally, we outline key challenges and offer insights into future research directions. This review bridges fundamental understanding with technological development, reinforcing the transformative potential of MQDs in next-generation applications.

OriginalspracheEnglisch
Seiten (von - bis)1250-1315
Seitenumfang66
FachzeitschriftNanoscale
Jahrgang2026
AusgabenummerVolume 18, Issue 3
Frühes Online-Datum19 Dez. 2025
DOIs
PublikationsstatusVeröffentlicht - 22 Jan. 2026

Bibliographische Notiz

Publisher Copyright:
This journal is © The Royal Society of Chemistry, 2026

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