Carbon dot/rare-earth compound composites: design principles, synthetic strategies, mechanisms, and applications

The integration of carbon dots (CDs) with rare-earth compounds (RE-compounds) has emerged as an important strategy for constructing multifunctional photofunctional systems capable of overcoming the intrinsic limitations of single-component luminescent materials. Owing to their broadband absorption, surface-/defect-state-mediated excited-state regulation, flexible interfacial chemistry, and favorable dispersibility, CDs can function not only as emissive centers but also as interfacial energy-regulation units. In contrast, structurally identifiable RE-compound phases or RE-doped host matrices provide narrow-band emission, long-lived excited states, upconversion/downconversion responses, and host-lattice-dependent photophysical property regulation. Through heterogeneous interfacial coupling and energy-level matching, CDs/RE-compounds can exhibit multilevel photophysical behaviors involving energy migration, excited-state redistribution, radiative/nonradiative transition modulation, and multichannel luminescence outputs that are inaccessible in isolated systems. Herein, recent advances in CDs/RE-compounds are systematically summarized from the perspective of structure-interface-excited-state-function relationships. Particular emphasis is placed on how heterogeneous interfaces govern photophysical processes through intrinsic structural regulation, matrix/interfacial stabilization, energy-transfer processes, and independent multimodal emission. Representative construction strategies, including one-step synthesis and multistep assembly, are discussed together with their influences on interfacial architectures and luminescence behaviors. Emerging applications in biomedicine, sensing, optoelectronics, information encryption, and energy-related fields are further highlighted. Finally, current challenges and future opportunities are discussed. This review aims to provide a deeper mechanistic understanding of interfacial photophysical regulation in CDs/RE-compounds and to guide their evolution from empirical hybrid materials toward predictable multifunctional photonic systems.

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Publication Details

Journal
Coordination Chemistry Reviews
Published
2026-09-17
DOI
https://doi.org/10.1016/j.ccr.2026.218538
Primary Topic
Carbon and Quantum Dots Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Carbon dot/rare-earth compound composites: design principles, synthetic strategies, mechanisms, and applications

Wai‐Yeung Wong, Xiaolin Wang, Jianle Zhuang, Hanwu Dong et al.
Coordination Chemistry Reviews
Carbon and Quantum Dots Applications
article

Carbon dot/rare-earth compound composites: design principles, synthetic strategies, mechanisms, and applications

Wai‐Yeung Wong, Xiaolin Wang, Jianle Zhuang, Hanwu Dong, Yekai Shen, Chaofan Hu, Zhiyi Zhang, Bingfu Lei, Yingliang Liu, Lingyan Che, Mengting Chen, Xuejie Zhang
article en

Abstract

The integration of carbon dots (CDs) with rare-earth compounds (RE-compounds) has emerged as an important strategy for constructing multifunctional photofunctional systems capable of overcoming the intrinsic limitations of single-component luminescent materials. Owing to their broadband absorption, surface-/defect-state-mediated excited-state regulation, flexible interfacial chemistry, and favorable dispersibility, CDs can function not only as emissive centers but also as interfacial energy-regulation units. In contrast, structurally identifiable RE-compound phases or RE-doped host matrices provide narrow-band emission, long-lived excited states, upconversion/downconversion responses, and host-lattice-dependent photophysical property regulation. Through heterogeneous interfacial coupling and energy-level matching, CDs/RE-compounds can exhibit multilevel photophysical behaviors involving energy migration, excited-state redistribution, radiative/nonradiative transition modulation, and multichannel luminescence outputs that are inaccessible in isolated systems. Herein, recent advances in CDs/RE-compounds are systematically summarized from the perspective of structure-interface-excited-state-function relationships. Particular emphasis is placed on how heterogeneous interfaces govern photophysical processes through intrinsic structural regulation, matrix/interfacial stabilization, energy-transfer processes, and independent multimodal emission. Representative construction strategies, including one-step synthesis and multistep assembly, are discussed together with their influences on interfacial architectures and luminescence behaviors. Emerging applications in biomedicine, sensing, optoelectronics, information encryption, and energy-related fields are further highlighted. Finally, current challenges and future opportunities are discussed. This review aims to provide a deeper mechanistic understanding of interfacial photophysical regulation in CDs/RE-compounds and to guide their evolution from empirical hybrid materials toward predictable multifunctional photonic systems.

Coordination Chemistry ReviewsVol. 570
South China Agricultural University (CN), Hong Kong Polytechnic University (HK)
National Natural Science Foundation of China, Hong Kong Polytechnic University, Major Projects of Guangdong Education Department for Foundation Research and Applied Research
Openalex Percentile: Top 25%
Carbon and Quantum Dots Applications
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