상세 보기
Conformationally Constrained Bidentate Ligands Drive Record-High NIR Quantum Yield in Cu Nanoclusters
- Liu, Ze-Yu;
- Han, Bao-Liang;
- Wei, Min;
- Hu, Ling-Yun;
- Luo, Geng-Geng;
- ... Kim, Taeyeon;
- 외 3명
WEB OF SCIENCE
1SCOPUS
1초록
Atom-precise copper nanoclusters (Cu NCs) with near-infrared (NIR) luminescence show promise in biomedical and optoelectronic applications, due to their cost-effectiveness, low toxicity, and tunable photophysics. However, their practical application is limited by extremely low NIR photoluminescence quantum yields (PLQYs) (<1%) at room-temperature (RT) in solution, as well as their pronounced sensitivity to oxidation. Here we present two structurally well-defined 15-nuclear Cu NCs, the monophosphine-stabilized copper-thiolate cluster [Cu-15(TPP)(6)(PET)(13)](2+) (Cu-15-TPP) and its diphosphine analogue [Cu-15(DPPB)(3)(PET)(12)H](2+) (Cu-15-DPPB), which exhibit drastically different NIR PLQYs. Single-crystal X-ray diffraction (SC-XRD) reveals that both NCs feature a comparable triple-helical Cu-9 core but distinct surface ligand arrangements. In Cu-15-DPPB, the diphosphine chelator DPPB adopts a cis-cis conformation to rigidify ligand shell. In contrast, the monodentate TPP ligand in Cu-15-TPP leads to a less rigidified ligand shell. This structural disparity enables a 186-fold enhancement in NIR PLQY for Cu-15-DPPB (37.2% in nondegassed solution and 46% in the solid state at RT) versus Cu-15-TPP (0.2% in solution), with emission maxima at similar to 750 nm. The 37.2% PLQY of Cu-15-DPPB is the highest reported for solution-phase NIR-emitting Cu-thiolate NCs. Excited-state dynamics studies unveil that this surface rigidification accelerates intersystem crossing (ISC) to populate triplet-state with boosted radiative decay (similar to 157-fold higher), and suppresses the nonradiative decay (similar to 0.53-fold lower). These findings demonstrate that ligand conformational engineering offers a new strategy to overcome intrinsic limitations of Cu-based emitters (e.g., weak spin-orbit coupling and slow intersystem crossing), and develop high-performance solution-phase RT NIR luminescent Cu NCs.
- 제목
- Conformationally Constrained Bidentate Ligands Drive Record-High NIR Quantum Yield in Cu Nanoclusters
- 저자
- Liu, Ze-Yu; Han, Bao-Liang; Wei, Min; Hu, Ling-Yun; Luo, Geng-Geng; Pan, Zhong-Hua; Yang, Zhi-Lin; Kim, Taeyeon; Sun, Di
- 발행일
- 2026-01-28
- 유형
- Article
- 권
- 148
- 호
- 3
- 페이지
- 2954 ~ 2962