4.8 Review

Controlling upconversion in emerging multilayer core-shell nanostructures: from fundamentals to frontier applications

Journal

CHEMICAL SOCIETY REVIEWS
Volume 51, Issue 5, Pages 1729-1765

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1cs00753j

Keywords

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Funding

  1. National Natural Science Foundation of China [51972119, 51702101, 51472088]
  2. Fundamental Research Funds for the Central Universities [2020ZYGXZR100]
  3. State Key Laboratory of Luminescent Materials and Devices [Skllmd-2021-01]
  4. Local Innovative and Research Teams Project of Guangdong Pearl River Talents Program [2017BT01X137]

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Lanthanide-based upconversion nanomaterials have excellent properties and the emergence of multi-layer core-shell nanostructures provides a powerful tool for precise manipulation and functional integration. It offers unprecedented opportunities for energy transfer control, emission color modification, and new functionalities.
Lanthanide-based upconversion nanomaterials have recently attracted considerable attention in both fundamental research and various frontier applications owing to their excellent photon upconversion performance and favourable physicochemical properties. In particular, the emergence of multi-layer core-shell (MLCS) nanostructures offers a versatile and powerful tool to realize well-defined matrix compositions and spatial distributions of the dopant on the nanometer length scale. In contrast to the conventional nanomaterials and commonly investigated core-shell nanoparticles, the rational design of MLCS nanostructures allows us to deliberately introduce more functional properties into an upconversion system, thus providing unprecedented opportunities for the precise manipulation of energy transfer channels, the dynamic control of upconversion processes, the fine tuning of switchable emission colours and new functional integration at a single-particle level. In this review, we present a summary and discussion on the key aspects of the recent progress in lanthanide-based MLCS nanoparticles, including the manipulation of emission and lifetime, the switchable multicolour output and the lanthanide ionic interactions on the nanoscale. Benefitting from the multifunctional and versatile luminescence properties, the MLCS nanostructures exhibit great potential in diversities of frontier applications such as three-dimensional display, upconversion laser, optical memory, anti-counterfeiting, thermometry, bioimaging, and therapy. The outlook and challenges as well as perspectives for the research in MLCS nanostructure materials are also provided. This review would be greatly helpful in exploring new structural designs of lanthanide-based materials to further manipulate the upconversion phenomenon and expand their application boundaries.

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