1.Beijing Municipal Key Laboratory of New Energy Materials and Technologies, School of Materials Sciences and Engineering, University of Science and Technology Beijing, Beijing 100083, China
2.School of Optoelectronic Engineering & CQUPT-BUL Innovation Institute, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
Zhen Song (zsong@ustb.edu.cn)
Chonggeng Ma (cgma.ustc@gmail.com)
Quanlin Liu (qlliu@ustb.edu.cn)
纸质出版日期:2023-08-31,
网络出版日期:2023-07-25,
收稿日期:2023-04-24,
修回日期:2023-06-26,
录用日期:2023-06-27
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Intervalence charge transfer of Cr3+-Cr3+ aggregation for NIR-Ⅱ luminescence[J]. LSA, 2023,12(8):1686-1695.
Liu, S. Q. et al. Intervalence charge transfer of Cr3+-Cr3+ aggregation for NIR-Ⅱ luminescence. Light: Science & Applications, 12, 1686-1695 (2023).
Intervalence charge transfer of Cr3+-Cr3+ aggregation for NIR-Ⅱ luminescence[J]. LSA, 2023,12(8):1686-1695. DOI: 10.1038/s41377-023-01219-x.
Liu, S. Q. et al. Intervalence charge transfer of Cr3+-Cr3+ aggregation for NIR-Ⅱ luminescence. Light: Science & Applications, 12, 1686-1695 (2023). DOI: 10.1038/s41377-023-01219-x.
The increasing demand for high-contrast biological imaging
non-destructive testing
and infrared night vision can be addressed by the development of high-performance NIR light-emitting materials. Unlike lanthanide (Ln
3+
) with sharp-line multiplets and isolated Cr
3+
with NIR-Ⅰ emission
this study reports the first-ever NIR-Ⅱ broadband luminescence based on the intervalence charge transfer (IVCT) of Cr
3+
-Cr
3+
aggregation in gallate magentoplumbite. In particular
LaMgGa
11
O
19
:0.7Cr
3+
exhibits dual-emission (NIR-Ⅰ
890 nm and NIR-Ⅱ
1200 nm) with a full width at half maximum (FWHM) of 626 nm under 450 nm blue LED excitation. Moreover
this dual-emission exhibits anti-thermal quenching behavior (432% @ 290 K)
attributed to the energy transfer among multiple Cr
3+
centers. Cryogen absorption spectra
lifetimes decay (2.3 ms)
and electron paramagnetic experiments reveal the NIR-Ⅱ luminescence of the Cr
3+
-Cr
3+
→ Cr
2+
-Cr
4+
IVCT transition. The application of LaMgGa
11
O
19
:0.7Cr
3+
in NIR-Ⅱ biological imaging as an optical contrast agent
non-destructive testing
and night vision is demonstrated. This work provides new insights into broadband NIR-Ⅱ luminescence under UV-NIR excitation based on the IVCT of Cr
3+
-Cr
3+
aggregation.
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